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Reed EC, Kim JD, Case AJ. Non-canonical hemoglobin: An updated review on its ubiquitous expression. Redox Biol 2025; 82:103602. [PMID: 40138914 PMCID: PMC11984994 DOI: 10.1016/j.redox.2025.103602] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/14/2025] [Revised: 03/13/2025] [Accepted: 03/18/2025] [Indexed: 03/29/2025] Open
Abstract
Hemoglobin, once thought to be exclusive to erythrocytes, has been identified to be expressed in various cell types over the past several decades. While hemoglobin's function within erythrocytes is primarily characterized as a gaseous transport molecule, its function within non-erythrocyte cells varies among different cell types, and in many cases, remains to be fully elucidated. Despite this variability, hemoglobin expression seems to broadly function as a redox modulator, whether it is involved in the hypoxic response, mitochondrial function, antioxidant balance or, like in erythrocytes, gas transport. This review provides an updated summary of the most recent discoveries of hemoglobin in non-erythrocyte cells. While discussing the function and regulation of this ubiquitous protein, we additionally compare these cell-specific details to identify commonalities throughout the diverse group of hemoglobin-expressing cells. Lastly, we discuss potential implications of non-canonical hemoglobin in various disease states such neurodegeneration, autoimmune disorders, psychological trauma, and hemoglobinopathies, while providing future directions for hemoglobin research.
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Affiliation(s)
- Emily C. Reed
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | | | - Adam J. Case
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
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2
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Dunaway L, Mills W, Eyo U, Isakson B. The Cells of the Vasculature: Advances in the Regulation of Vascular Tone in the Brain and Periphery. Basic Clin Pharmacol Toxicol 2025; 136:e70023. [PMID: 40143606 PMCID: PMC11947641 DOI: 10.1111/bcpt.70023] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/15/2024] [Revised: 02/20/2025] [Accepted: 03/07/2025] [Indexed: 03/28/2025]
Abstract
The vasculature is a complex tissue in which multiple cell types coordinate the regulation of tissue perfusion in response to hemodynamic and biochemical signals. Advances in this field are continuing to deepen our understanding of the relative importance of these cell types through the body. In the peripheral vasculature, tone is generated primarily by smooth muscle cells and regulated by endothelial cells, and neurons. In the brain parenchyma, unique cell types including pericytes, perivascular astrocytes and microglia, also contribute to the regulation of arterial and capillary tone. Here, we provide a cell-by-cell review of the regulation of vascular tone and highlight recent advances in the regulation of vascular tone in both the periphery and cerebral vasculature.
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Affiliation(s)
- Luke S. Dunaway
- Robert M. Berne Cardiovascular Research CenterUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
| | - William A. Mills
- Robert M. Berne Cardiovascular Research CenterUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
- Brain Immunology & Glia Center, Department of NeuroscienceUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
- Brain InstituteUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
| | - Ukpong B. Eyo
- Robert M. Berne Cardiovascular Research CenterUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
- Brain Immunology & Glia Center, Department of NeuroscienceUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
| | - Brant E. Isakson
- Robert M. Berne Cardiovascular Research CenterUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
- Department of Molecular Physiology and BiophysicsUniversity of Virginia School of MedicineCharlottesvilleVirginiaUSA
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3
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Luse MA, Schug WJ, Dunaway LS, Nyshadham S, Loeb SA, Carvalho A, Tessema R, Pavelic C, Keller TCS, Shu X, Ruddiman CA, Kosmach A, Sveeggen TM, Mitchell R, Bagher P, Minshal RD, Leitnger N, Columbus L, Levental KR, Levental I, Cortese-Krott M, Isakson BE. Nitrosation of CD36 Regulates Endothelial Function and Serum Lipids. Arterioscler Thromb Vasc Biol 2025. [PMID: 40242868 DOI: 10.1161/atvbaha.124.321964] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/07/2024] [Accepted: 03/24/2025] [Indexed: 04/18/2025]
Abstract
BACKGROUND During obesity, endothelial cells (ECs) become lipid laden, leading to endothelial dysfunction. We tested posttranslational modification on CD36 that may regulate EC lipid accumulation. METHODS We used an EC-specific Cav1 (caveolin-1) knockout mouse, nitrosation and palmitoylation assays, and whole animal Nγ-nitro-l-arginine methyl ester administration to examine blood lipids. RESULTS EC-specific Cav1 knockout male mice are hyperlipidemic regardless of diet but retain endothelial cell function. We found these mice have significantly increased NO in response to the lack of Cav1, and the presence or absence of NO toggled inversely EC lipid content and plasma lipid in mice. The NO nitrosated the fatty acid translocase CD36 at the same cysteines that are palmitoylated on CD36. The nitrosation of CD36 prevented its trafficking to the plasma membrane and decreased lipid accumulation. The physiological effect of this mechanism was a reliance on NO for endothelial function and not dilation. CONCLUSIONS This work suggests that CD36 nitrosation occurs as a protective mechanism to prevent EC lipotoxicity.
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Affiliation(s)
- Melissa A Luse
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
| | - Wyatt J Schug
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
| | - Luke S Dunaway
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
| | - Shruthi Nyshadham
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
| | - Skylar A Loeb
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
| | - Alicia Carvalho
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
| | - Rachel Tessema
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
| | - Caitlin Pavelic
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Pharmacology, University of Virginia School of Medicine, Charlottesville (C.P., C.A.R., N.L.)
| | - T C Stevenson Keller
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
| | - Xiaohong Shu
- College of Pharmacy, Dalian Medical University, China (X.S.)
| | - Claire A Ruddiman
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Pharmacology, University of Virginia School of Medicine, Charlottesville (C.P., C.A.R., N.L.)
| | - Anna Kosmach
- Department of Cellular and Integrative Physiology, University of Nebraska Medical Center, Omaha (A.K., T.M.S., R.M., P.B.)
| | - Timothy M Sveeggen
- Department of Cellular and Integrative Physiology, University of Nebraska Medical Center, Omaha (A.K., T.M.S., R.M., P.B.)
| | - Ray Mitchell
- Department of Cellular and Integrative Physiology, University of Nebraska Medical Center, Omaha (A.K., T.M.S., R.M., P.B.)
| | - Pooneh Bagher
- Department of Cellular and Integrative Physiology, University of Nebraska Medical Center, Omaha (A.K., T.M.S., R.M., P.B.)
| | | | - Norbert Leitnger
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Pharmacology, University of Virginia School of Medicine, Charlottesville (C.P., C.A.R., N.L.)
| | - Linda Columbus
- Department of Chemistry, University of Virginia, Charlottesville (L.C.)
| | - Kandice R Levental
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
| | - Ilya Levental
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
| | | | - Brant E Isakson
- Robert M. Berne Cardiovascular Research Center (M.A.L., W.J.S., L.S.D., S.N., S.A.L., A.C., R.T., C.P., T.C.S.K., C.A.R., N.L., B.E.I.)
- Department of Molecular Physiology and Biophysics (M.A.L., W.J.S., S.A.L., T.C.S.K., K.R.L., I.L., B.E.I.)
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Reed EC, Silva VA, Giebel KR, Natour T, Lauten TH, Jojo CN, Schlieker AE, Case AJ. Hemoglobin alpha is a redox-sensitive mitochondrial-related protein in T-lymphocytes. Free Radic Biol Med 2025; 227:1-11. [PMID: 39586383 PMCID: PMC11757050 DOI: 10.1016/j.freeradbiomed.2024.11.044] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 09/16/2024] [Revised: 11/08/2024] [Accepted: 11/22/2024] [Indexed: 11/27/2024]
Abstract
Hemoglobin subunits, which form the well-characterized, tetrameric, oxygen-carrying protein, have recently been described to be expressed in various non-canonical cell types. However, the exact function of hemoglobin subunits within these cells remains to be fully elucidated. Herein, we report for the first time, the expression of hemoglobin alpha-a1 (Hba-a1) in T-lymphocytes and describe its role as a mitochondrial-associated antioxidant. Within naïve T-lymphocytes, Hba-a1 mRNA and HBA protein are present and highly induced by redox perturbations, particularly those arising from the mitochondria. Additionally, preliminary data using a T-lymphocyte specific Hba-a1 knock-out mouse model indicated that the loss of Hba-a1 led to an exacerbated production of mitochondrial reactive oxygen species and inflammatory cytokines after a stress challenge, further supporting the role of HBA acting to buffer the mitochondrial redox environment. Interestingly, we observed Hba-a1 expression to be significantly upregulated or downregulated depending on T-lymphocyte polarization and metabolic state, which appeared to be controlled by both transcriptional regulation and chromatin remodeling. Altogether, these data suggest Hba-a1 may function as a crucial mitochondrial-associated antioxidant and appears to possess critical and complex functions related to T-lymphocyte activation and differentiation.
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Affiliation(s)
- Emily C Reed
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Valeria A Silva
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Kristen R Giebel
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Tamara Natour
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Tatlock H Lauten
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Caroline N Jojo
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Abigail E Schlieker
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA
| | - Adam J Case
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, USA; Department of Medical Physiology, Texas A&M University, Bryan, TX, USA.
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5
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Taïb S, Durand J, Dehais V, Boulay AC, Martin S, Blugeon C, Jourdren L, Freydier R, Cohen-Salmon M, Hazan J, Brunet I. Vascular dysfunction is at the onset of oxaliplatin-induced peripheral neuropathy symptoms in mice. Life Sci Alliance 2025; 8:e202402791. [PMID: 39578077 PMCID: PMC11584327 DOI: 10.26508/lsa.202402791] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/23/2024] [Revised: 11/12/2024] [Accepted: 11/12/2024] [Indexed: 11/24/2024] Open
Abstract
Oxaliplatin-induced peripheral neuropathy (OIPN) is an adverse side effect of this chemotherapy used for gastrointestinal cancers. The continuous pain experienced by OIPN patients often results in the reduction or discontinuation of chemotherapy, thereby affecting patient survival. Several pathogenic mechanisms involving sensory neurons were shown to participate in the occurrence of OIPN symptoms. However, the dysfunction of the blood-nerve barrier as a source of nerve alteration had not been thoroughly explored. To characterise the vascular contribution to OIPN symptoms, we undertook two comparative transcriptomic analyses of mouse purified brain and sciatic nerve blood vessels (BVs) and nerve BVs after oxaliplatin or control administration. These analyses reveal distinct molecular landscapes between brain and nerve BVs and the up-regulation of transcripts involved in vascular contraction after oxaliplatin treatment. Anatomical examination of the nerve yet shows the preservation of BV architecture in the acute OIPN mouse model, although treated mice exhibit both neuropathic symptoms and enhanced vasoconstriction reflected by hypoxia. Moreover, vasodilators significantly reduce oxaliplatin-induced neuropathic symptoms and endoneurial hypoxia, establishing the key involvement of nerve blood flow in OIPN.
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Affiliation(s)
- Sonia Taïb
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Juliette Durand
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Vianney Dehais
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Anne-Cécile Boulay
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Sabrina Martin
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Corinne Blugeon
- Genomic Facility, Institut de Biologie de l'ENS (IBENS), École Normale Supérieure, CNRS UMR 8197, INSERM U1024, Université PSL, Paris, France
| | - Laurent Jourdren
- Genomic Facility, Institut de Biologie de l'ENS (IBENS), École Normale Supérieure, CNRS UMR 8197, INSERM U1024, Université PSL, Paris, France
| | - Rémi Freydier
- HydroSciences Montpellier, Université de Montpellier, CNRS, IRD, Montpellier, France
| | - Martine Cohen-Salmon
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Jamilé Hazan
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
| | - Isabelle Brunet
- Center for Interdisciplinary Research in Biology (CIRB), Collège de France, CNRS UMR 7241, INSERM U1050, Université PSL, Paris, France
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6
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Gonzalez M, Clayton S, Wauson E, Christian D, Tran QK. Promotion of nitric oxide production: mechanisms, strategies, and possibilities. Front Physiol 2025; 16:1545044. [PMID: 39917079 PMCID: PMC11799299 DOI: 10.3389/fphys.2025.1545044] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/13/2024] [Accepted: 01/07/2025] [Indexed: 02/09/2025] Open
Abstract
The discovery of nitric oxide (NO) and the role of endothelial cells (ECs) in its production has revolutionized medicine. NO can be produced by isoforms of NO synthases (NOS), including the neuronal (nNOS), inducible (iNOS), and endothelial isoforms (eNOS), and via the non-classical nitrate-nitrite-NO pathway. In particular, endothelium-derived NO, produced by eNOS, is essential for cardiovascular health. Endothelium-derived NO activates soluble guanylate cyclase (sGC) in vascular smooth muscle cells (VSMCs), elevating cyclic GMP (cGMP), causing vasodilation. Over the past four decades, the importance of this pathway in cardiovascular health has fueled the search for strategies to enhance NO bioavailability and/or preserve the outcomes of NO's actions. Currently approved approaches operate in three directions: 1) providing exogenous NO, 2) promoting sGC activity, and 3) preventing degradation of cGMP by inhibiting phosphodiesterase 5 activity. Despite clear benefits, these approaches face challenges such as the development of nitrate tolerance and endothelial dysfunction. This highlights the need for sustainable options that promote endogenous NO production. This review will focus on strategies to promote endogenous NO production. A detailed review of the mechanisms regulating eNOS activity will be first provided, followed by a review of strategies to promote endogenous NO production based on the levels of available preclinical and clinical evidence, and perspectives on future possibilities.
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Affiliation(s)
| | | | | | | | - Quang-Kim Tran
- Department of Physiology and Pharmacology, Des Moines University Medicine and Health Sciences, West Des Moines, IA, United States
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7
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Brooks SD, Ruhl AP, Zeng X, Cruz P, Hassan SA, Kamenyeva O, Hakim MA, Ridley LA, Nagata BM, Kabat J, Ganesan S, Smith RL, Jackson M, Nino de Rivera J, McLure AJ, Jackson JM, Emeh RO, Tesfuzigta N, Laurence K, Joyce S, Yek C, Chea S, Alves DA, Isakson BE, Manning J, Davis JL, Ackerman HC. Sickle Trait and Alpha Thalassemia Increase NOS-Dependent Vasodilation of Human Arteries Through Disruption of Endothelial Hemoglobin-eNOS Interactions. Circulation 2025; 151:8-30. [PMID: 39633569 DOI: 10.1161/circulationaha.123.066003] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 06/16/2023] [Accepted: 09/06/2024] [Indexed: 12/07/2024]
Abstract
BACKGROUND Severe malaria is associated with impaired nitric oxide (NO) synthase (NOS)-dependent vasodilation, and reversal of this deficit improves survival in murine models. Malaria might have selected for genetic polymorphisms that increase endothelial NO signaling and now contribute to heterogeneity in vascular function among humans. One protein potentially selected for is alpha globin, which, in mouse models, interacts with endothelial NOS (eNOS) to negatively regulate NO signaling. We sought to evaluate the impact of alpha globin gene deletions on NO signaling and unexpectedly found human arteries use not only alpha but also beta globin to regulate eNOS. METHODS The eNOS-hemoglobin complex was characterized by multiphoton imaging, gene expression analysis, and coimmunoprecipitation studies of human resistance arteries. Novel contacts between eNOS and hemoglobin were mapped using molecular modeling and simulation. Pharmacological or genetic disruption of the eNOS-hemoglobin complex was evaluated using pressure myography. The association between alpha globin gene deletion and blood pressure was assessed in a population study. RESULTS Alpha and beta globin transcripts were detected in the endothelial layer of the artery wall. Imaging colocalized alpha and beta globin proteins with eNOS at myoendothelial junctions. Immunoprecipitation demonstrated that alpha globin and beta globin form a complex with eNOS and cytochrome b5 reductase. Modeling predicted negatively charged glutamic acids at positions 6 and 7 of beta globin to interact with positively charged arginines at positions 97 and 98 of eNOS. Arteries from donors with a glutamic acid-to-valine substitution at beta globin position 6 (sickle trait) exhibited increased NOS-dependent vasodilation. Alpha globin gene deletions were associated with decreased arterial alpha globin expression, increased NOS-dependent vasodilation, and lower blood pressure. Mimetic peptides that targeted the interactions between hemoglobin and eNOS recapitulated the effects of these genetic variants on human arterial vasoreactivity. CONCLUSIONS Alpha and beta globin subunits of hemoglobin interact with eNOS to restrict NO signaling in human resistance arteries. Malaria-protective genetic variants that alter the expression of alpha globin or the structure of beta globin are associated with increased NOS-dependent vasodilation. Targeting the hemoglobin-eNOS interface could potentially improve NO signaling in diseases of endothelial dysfunction such as severe malaria or chronic cardiovascular conditions.
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Affiliation(s)
- Steven D Brooks
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - A Parker Ruhl
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
- Pulmonary Branch, National Heart, Lung, and Blood Institute, Bethesda, MD (A.P.R.)
| | - Xianke Zeng
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Phillip Cruz
- Bioinformatics and Computational Biosciences Branch, Office of Cyber Infrastructure and Computational Biology (P.C., S.A.H.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Sergio A Hassan
- Bioinformatics and Computational Biosciences Branch, Office of Cyber Infrastructure and Computational Biology (P.C., S.A.H.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Olena Kamenyeva
- Research Technologies Branch, National Institute of Allergy and Infectious Diseases, Bethesda, MD (O.K., J.K., S.G.)
| | - Md Abdul Hakim
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Lauryn A Ridley
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Bianca M Nagata
- Infectious Disease Pathogenesis Section (B.M.N., D.A.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Juraj Kabat
- Research Technologies Branch, National Institute of Allergy and Infectious Diseases, Bethesda, MD (O.K., J.K., S.G.)
| | - Sundar Ganesan
- Research Technologies Branch, National Institute of Allergy and Infectious Diseases, Bethesda, MD (O.K., J.K., S.G.)
| | - Rachel L Smith
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Mary Jackson
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Jessica Nino de Rivera
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Alison J McLure
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Jarrett M Jackson
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Robert O Emeh
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Naomi Tesfuzigta
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Kyeisha Laurence
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Stacy Joyce
- Surgical Oncology Program, Center for Cancer Research, National Cancer Institute, Bethesda, MD (S.J., J.L.D.)
| | - Christina Yek
- International Center of Excellence in Research, National Institute of Allergy and Infectious Diseases, Phnom Penh, Cambodia (C.Y., S.C., J.M.)
- Critical Care Medicine Department, Clinical Center, National Institutes of Health, Bethesda, MD (C.Y.)
| | - Sophana Chea
- International Center of Excellence in Research, National Institute of Allergy and Infectious Diseases, Phnom Penh, Cambodia (C.Y., S.C., J.M.)
| | - Derron A Alves
- Infectious Disease Pathogenesis Section (B.M.N., D.A.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
| | - Brant E Isakson
- Robert M. Berne Cardiovascular Research Center (B.E.I.), University of Virginia School of Medicine, Charlottesville
- Department of Molecular Physiology and Biological Physics (B.E.I.), University of Virginia School of Medicine, Charlottesville
| | - Jessica Manning
- International Center of Excellence in Research, National Institute of Allergy and Infectious Diseases, Phnom Penh, Cambodia (C.Y., S.C., J.M.)
| | - Jeremy L Davis
- Surgical Oncology Program, Center for Cancer Research, National Cancer Institute, Bethesda, MD (S.J., J.L.D.)
| | - Hans C Ackerman
- Physiology Unit, Laboratory of Malaria and Vector Research (S.D.B., A.P.R., X.Z., M.A.H., L.A.R., R.L.S., M.J., J.N.d.R., A.J.M., J.M.J., R.O.E., N.T., K.L., H.C.A.), National Institute of Allergy and Infectious Diseases, Rockville, MD
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8
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Cartland SP, Patil MS, Kelland E, Le N, Boccanfuso L, Stanley CP, Cholan PM, Dona MI, Patrick R, McGrath J, Su QP, Alwis I, Ganss R, Powell JE, Harvey RP, Pinto AR, Griffith TS, Loa J, Aitken SJ, Robinson DA, Patel S, Kavurma MM. The generation of stable microvessels in ischemia is mediated by endothelial cell derived TRAIL. SCIENCE ADVANCES 2024; 10:eadn8760. [PMID: 39365855 PMCID: PMC11451529 DOI: 10.1126/sciadv.adn8760] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Subscribe] [Scholar Register] [Received: 01/04/2024] [Accepted: 08/28/2024] [Indexed: 10/06/2024]
Abstract
Reversal of ischemia is mediated by neo-angiogenesis requiring endothelial cell (EC) and pericyte interactions to form stable microvascular networks. We describe an unrecognized role for tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) in potentiating neo-angiogenesis and vessel stabilization. We show that the endothelium is a major source of TRAIL in the healthy circulation compromised in peripheral artery disease (PAD). EC deletion of TRAIL in vivo or in vitro inhibited neo-angiogenesis, pericyte recruitment, and vessel stabilization, resulting in reduced lower-limb blood perfusion with ischemia. Activation of the TRAIL receptor (TRAIL-R) restored blood perfusion and stable blood vessel networks in mice. Proof-of-concept studies showed that Conatumumab, an agonistic TRAIL-R2 antibody, promoted vascular sprouts from explanted patient arteries. Single-cell RNA sequencing revealed heparin-binding EGF-like growth factor in mediating EC-pericyte communications dependent on TRAIL. These studies highlight unique TRAIL-dependent mechanisms mediating neo-angiogenesis and vessel stabilization and the potential of repurposing TRAIL-R2 agonists to stimulate stable and functional microvessel networks to treat ischemia in PAD.
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Affiliation(s)
- Siân P. Cartland
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
| | - Manisha S. Patil
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
| | - Elaina Kelland
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
| | - Natalie Le
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
| | - Lauren Boccanfuso
- Heart Research Institute, The University of Sydney, Sydney, Australia
| | - Christopher P. Stanley
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
| | | | | | - Ralph Patrick
- Victor Chang Cardiac Research Institute, Sydney, Australia
| | | | - Qian Peter Su
- School of Biomedical Engineering, University of Technology, Sydney, Australia
- Heart Research Institute, Sydney, Australia
| | - Imala Alwis
- Heart Research Institute, The University of Sydney, Sydney, Australia
| | - Ruth Ganss
- Harry Perkins Institute of Medical Research, The University of Western Australia, Perth, Australia
| | - Joseph E. Powell
- Garvan-Weizmann Centre for Cellular Genomics, Sydney, Australia
- UNSW Cellular Genomics Futures Institute, University of New South Wales, Sydney, Australia
| | - Richard P. Harvey
- Victor Chang Cardiac Research Institute, Sydney, Australia
- School of Clinical Medicine, Faculty of Medicine and Health, University of New South Wales, Sydney, Australia
- School of Biotechnology and Biomolecular Sciences, Faculty of Science, University of New South Wales, Sydney, Australia
| | | | | | - Jacky Loa
- Royal Prince Alfred Hospital, Sydney, Australia
| | - Sarah J. Aitken
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
- Faculty of Medicine and Health, The University of Sydney, Sydney, Australia
- Concord Institute of Academic Surgery, Concord Hospital, Sydney, Australia
| | - David A. Robinson
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
- Royal Prince Alfred Hospital, Sydney, Australia
| | - Sanjay Patel
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Royal Prince Alfred Hospital, Sydney, Australia
| | - Mary M. Kavurma
- Heart Research Institute, The University of Sydney, Sydney, Australia
- Centre for Peripheral Artery Disease, Heart Research Institute, Sydney, Australia
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9
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Reed EC, Silva VA, Giebel KR, Natour T, Lauten TH, Jojo CN, Schleiker AE, Case AJ. Hemoglobin alpha is a redox-sensitive mitochondrial-related protein in T-lymphocytes. BIORXIV : THE PREPRINT SERVER FOR BIOLOGY 2024:2024.09.16.613298. [PMID: 39345360 PMCID: PMC11429782 DOI: 10.1101/2024.09.16.613298] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Download PDF] [Subscribe] [Scholar Register] [Indexed: 10/01/2024]
Abstract
Hemoglobin subunits, which form the well-characterized, tetrameric, oxygen-carrying protein, have recently been described to be expressed in various non-canonical cell types. However, the exact function of hemoglobin subunits within these cells remains to be fully elucidated. Herein, we report for the first time, the expression of hemoglobin alpha-a1 (Hba-a1) in T-lymphocytes and describe its role as a mitochondrial-associated antioxidant. Within naïve T-lymphocytes, Hba-a1 mRNA and HBA protein are present and highly induced by redox perturbations, particularly those arising from the mitochondria. Additionally, preliminary data using a T-lymphocyte specific Hba-a1 knock-out mouse model indicated that the loss of Hba-a1 led to an exacerbated production of mitochondrial reactive oxygen species and inflammatory cytokines after a stress challenge, further supporting the role of HBA acting to buffer the mitochondrial redox environment. Interestingly, we observed Hba-a1 expression to be significantly upregulated or downregulated depending on T-lymphocyte polarization and metabolic state, which appeared to be controlled by both transcriptional regulation and chromatin remodeling. Altogether, these data suggest Hba-a1 may function as a crucial mitochondrial-associated antioxidant and appears to possess critical and complex functions related to T-lymphocyte activation and differentiation.
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Affiliation(s)
- Emily C. Reed
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Valeria A. Silva
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Kristen R. Giebel
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Tamara Natour
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Tatlock H. Lauten
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Caroline N. Jojo
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Abigail E. Schleiker
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
| | - Adam J. Case
- Department of Psychiatry and Behavioral Sciences, Texas A&M University, Bryan, TX, United States
- Department of Medical Physiology, Texas A&M University, Bryan, TX, United States
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10
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Dunaway LS, Saii K, LoBue A, Nyshadham S, Abib N, Heuser SK, Loeb SA, Simonsen U, Cortese-Krott MM, Isakson BE. The hemodynamic response to nitrite is acute and dependent upon tissue perfusion. Nitric Oxide 2024; 150:47-52. [PMID: 39097183 PMCID: PMC11330714 DOI: 10.1016/j.niox.2024.07.005] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/18/2024] [Revised: 07/15/2024] [Accepted: 07/31/2024] [Indexed: 08/05/2024]
Abstract
In the vasculature, nitric oxide (NO) is produced in the endothelium by endothelial nitric oxide synthase (eNOS) and is critical for the regulation of blood flow and blood pressure. Blood flow may also be regulated by the formation of nitrite-derived NO catalyzed by hemoproteins under hypoxic conditions. We sought to investigate whether nitrite administration may affect tissue perfusion and systemic hemodynamics in WT and eNOS knockout mice. We found that global eNOS KO mice show decreased tissue perfusion compared to WT mice by using laser speckle contrast imaging. To study both the acute and long-term effects of sodium nitrite (0, 0.1, 1, and 10 mg/kg) on peripheral blood flow and systemic blood pressure, a bolus of nitrite was delivered intraperitoneally every 24 h over 4 consecutive days. We found that nitrite administration resulted in a dose-dependent and acute increase in peripheral blood flow in eNOS KO mice but had no effects in WT mice. The nitrite induced changes in tissue perfusion were transient, as determined by intraindividual comparisons of tissue perfusion 24-h after injection. Accordingly, 10 mg/kg sodium nitrite acutely decreased blood pressure in eNOS KO mice but not in WT mice as determined by invasive Millar catheterization. Interestingly, we found the vasodilatory effects of nitrite to be inversely correlated to baseline tissue perfusion. These results demonstrate the nitrite acutely recovers hypoperfusion and hypertension in global eNOS KO mice and suggest the vasodilatory actions of nitrite are dependent upon tissue hypoperfusion.
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Affiliation(s)
- Luke S Dunaway
- Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Germany
| | - Khatera Saii
- Department of Biomedicine, Pulmonary and Cardiovascular Pharmacology, Aarhus University, Germany
| | - Anthea LoBue
- Myocardial Infarction Research Laboratory, Department of Cardiology, Pulmonology, and Angiology, Medical Faculty, Heinrich-Heine-University, Germany
| | - Shruthi Nyshadham
- Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Germany
| | - Nasim Abib
- Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Germany
| | - Sophia K Heuser
- Myocardial Infarction Research Laboratory, Department of Cardiology, Pulmonology, and Angiology, Medical Faculty, Heinrich-Heine-University, Germany
| | - Skylar A Loeb
- Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Germany; Department of Molecular Physiology and Biophysics, University of Virginia School of Medicine, Germany
| | - Ulf Simonsen
- Department of Biomedicine, Pulmonary and Cardiovascular Pharmacology, Aarhus University, Germany
| | - Miriam M Cortese-Krott
- Myocardial Infarction Research Laboratory, Department of Cardiology, Pulmonology, and Angiology, Medical Faculty, Heinrich-Heine-University, Germany
| | - Brant E Isakson
- Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Germany; Department of Molecular Physiology and Biophysics, University of Virginia School of Medicine, Germany.
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11
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Abbineni PS, Baid S, Weiss MJ. A moonlighting job for α-globin in blood vessels. Blood 2024; 144:834-844. [PMID: 38848504 PMCID: PMC11830976 DOI: 10.1182/blood.2023022192] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/11/2024] [Revised: 05/08/2024] [Accepted: 05/28/2024] [Indexed: 06/09/2024] Open
Abstract
ABSTRACT Red blood cells express high levels of hemoglobin A tetramer (α2β2) to facilitate oxygen transport. Hemoglobin subunits and related proteins are also expressed at lower levels in other tissues across the animal kingdom. Physiological functions for most nonerythroid globins likely derive from their ability to catalyze reduction-oxidation (redox) reactions via electron transfer through heme-associated iron. An interesting example is illustrated by the recent discovery that α-globin without β-globin is expressed in some arteriolar endothelial cells (ECs). α-globin binds EC nitric oxide (NO) synthase (eNOS) and degrades its enzymatic product NO, a potent vasodilator. Thus, depletion of α-globin in ECs or inhibition of its association with eNOS causes arteriolar relaxation and lowering of blood pressure in mice. Some of these findings have been replicated in isolated human blood vessels, and genetic studies are tractable in populations in which α-thalassemia alleles are prevalent. Two small studies identified associations between loss of α-globin genes in humans and NO-regulated vascular responses elicited by local hypoxia-induced blood flow or thermal stimulation. In a few larger population-based studies, no associations were detected between loss of α-globin genes and blood pressure, ischemic stroke, or pulmonary hypertension. In contrast, a significant positive association between α-globin gene copy number and kidney disease was detected in an African American cohort. Further studies are required to define comprehensively the expression of α-globin in different vascular beds and ascertain their overall impact on normal and pathological vascular physiology.
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Affiliation(s)
- Prabhodh S. Abbineni
- Department of Microbiology and Immunology, Stritch School of Medicine, Loyola University Chicago, Maywood, IL
| | - Srishti Baid
- Life Sciences Institute, University of Michigan, Ann Arbor, MI
| | - Mitchell J. Weiss
- Department of Hematology, St Jude Children’s Research Hospital, Memphis, TN
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12
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Moreno-Domínguez A, Colinas O, Arias-Mayenco I, Cabeza JM, López-Ogayar JL, Chandel NS, Weissmann N, Sommer N, Pascual A, López-Barneo J. Hif1α-dependent mitochondrial acute O 2 sensing and signaling to myocyte Ca 2+ channels mediate arterial hypoxic vasodilation. Nat Commun 2024; 15:6649. [PMID: 39103356 PMCID: PMC11300585 DOI: 10.1038/s41467-024-51023-3] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/15/2024] [Accepted: 07/23/2024] [Indexed: 08/07/2024] Open
Abstract
Vasodilation in response to low oxygen (O2) tension (hypoxic vasodilation) is an essential homeostatic response of systemic arteries that facilitates O2 supply to tissues according to demand. However, how blood vessels react to O2 deficiency is not well understood. A common belief is that arterial myocytes are O2-sensitive. Supporting this concept, it has been shown that the activity of myocyte L-type Ca2+channels, the main ion channels responsible for vascular contractility, is reversibly inhibited by hypoxia, although the underlying molecular mechanisms have remained elusive. Here, we show that genetic or pharmacological disruption of mitochondrial electron transport selectively abolishes O2 modulation of Ca2+ channels and hypoxic vasodilation. Mitochondria function as O2 sensors and effectors that signal myocyte Ca2+ channels due to constitutive Hif1α-mediated expression of specific electron transport subunit isoforms. These findings reveal the acute O2-sensing mechanisms of vascular cells and may guide new developments in vascular pharmacology.
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Affiliation(s)
- Alejandro Moreno-Domínguez
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain
- Departamento de Fisiología Médica y Biofísica, Facultad de Medicina, Universidad de Sevilla, Seville, Spain
- Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Madrid, Spain
| | - Olalla Colinas
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain
- Departamento de Fisiología Médica y Biofísica, Facultad de Medicina, Universidad de Sevilla, Seville, Spain
- Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Madrid, Spain
| | - Ignacio Arias-Mayenco
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain
| | - José M Cabeza
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain
| | - Juan L López-Ogayar
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain
| | - Navdeep S Chandel
- Division of Pulmonary and Critical Care Medicine, Department of Medicine, Northwestern University, Chicago, IL, USA
| | - Norbert Weissmann
- Excellence Cluster Cardiopulmonary System, University of Giessen and Marburg Lung Centre (UGMLC), German Centre for Lung Research (DZL), Justus-Liebig-University, Giessen, Germany
| | - Natascha Sommer
- Excellence Cluster Cardiopulmonary System, University of Giessen and Marburg Lung Centre (UGMLC), German Centre for Lung Research (DZL), Justus-Liebig-University, Giessen, Germany
| | - Alberto Pascual
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain
- Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Madrid, Spain
| | - José López-Barneo
- Instituto de Biomedicina de Sevilla (IBiS), Hospital Universitario Virgen del Rocío/CSIC/Universidad de Sevilla, Seville, Spain.
- Departamento de Fisiología Médica y Biofísica, Facultad de Medicina, Universidad de Sevilla, Seville, Spain.
- Centro de Investigación Biomédica en Red sobre Enfermedades Neurodegenerativas (CIBERNED), Madrid, Spain.
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13
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Silva-Cunha M, Lacchini R, Tanus-Santos JE. Facilitating Nitrite-Derived S-Nitrosothiol Formation in the Upper Gastrointestinal Tract in the Therapy of Cardiovascular Diseases. Antioxidants (Basel) 2024; 13:691. [PMID: 38929130 PMCID: PMC11200996 DOI: 10.3390/antiox13060691] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/23/2024] [Revised: 05/30/2024] [Accepted: 05/31/2024] [Indexed: 06/28/2024] Open
Abstract
Cardiovascular diseases (CVDs) are often associated with impaired nitric oxide (NO) bioavailability, a critical pathophysiological alteration in CVDs and an important target for therapeutic interventions. Recent studies have revealed the potential of inorganic nitrite and nitrate as sources of NO, offering promising alternatives for managing various cardiovascular conditions. It is now becoming clear that taking advantage of enzymatic pathways involved in nitrite reduction to NO is very relevant in new therapeutics. However, recent studies have shown that nitrite may be bioactivated in the acidic gastric environment, where nitrite generates NO and a variety of S-nitrosating compounds that result in increased circulating S-nitrosothiol concentrations and S-nitrosation of tissue pharmacological targets. Moreover, transnitrosation reactions may further nitrosate other targets, resulting in improved cardiovascular function in patients with CVDs. In this review, we comprehensively address the mechanisms and relevant effects of nitrate and nitrite-stimulated gastric S-nitrosothiol formation that may promote S-nitrosation of pharmacological targets in various CVDs. Recently identified interfering factors that may inhibit these mechanisms and prevent the beneficial responses to nitrate and nitrite therapy were also taken into consideration.
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Affiliation(s)
- Mila Silva-Cunha
- Department of Pharmacology, Ribeirao Preto Medical School, University of Sao Paulo, Ribeirao Preto 14049-900, Brazil;
| | - Riccardo Lacchini
- Department of Psychiatric Nursing and Human Sciences, Ribeirao Preto College of Nursing, University of Sao Paulo, Ribeirao Preto 14040-902, Brazil;
| | - Jose E. Tanus-Santos
- Department of Pharmacology, Ribeirao Preto Medical School, University of Sao Paulo, Ribeirao Preto 14049-900, Brazil;
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14
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Sakamuri SSVP, Sure VN, Oruganti L, Wisen W, Chandra PK, Liu N, Fonseca VA, Wang X, Klein J, Katakam PVG. Acute severe hypoglycemia alters mouse brain microvascular proteome. J Cereb Blood Flow Metab 2024; 44:556-572. [PMID: 37944245 PMCID: PMC10981402 DOI: 10.1177/0271678x231212961] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 05/01/2023] [Revised: 09/12/2023] [Accepted: 10/05/2023] [Indexed: 11/12/2023]
Abstract
Hypoglycemia increases the risk related to stroke and neurodegenerative diseases, however, the underlying mechanisms are unclear. For the first time, we studied the effect of a single episode (acute) of severe (ASH) and mild (AMH) hypoglycemia on mouse brain microvascular proteome. After four-hour fasting, insulin was administered (i.p) to lower mean blood glucose in mice and induce ∼30 minutes of ASH (∼30 mg/dL) or AMH (∼75 mg/dL), whereas a similar volume of saline was given to control mice (∼130 mg/dL). Blood glucose was allowed to recover over 60 minutes either spontaneously or by 20% dextrose administration (i.p). Twenty-four hours later, the brain microvessels (BMVs) were isolated, and tandem mass tag (TMT)-based quantitative proteomics was performed using liquid chromatography-mass spectrometry (LC/MS). When compared to control, ASH significantly downregulated 13 proteins (p ≤ 0.05) whereas 23 proteins showed a strong trend toward decrease (p ≤ 0.10). When compared to AMH, ASH significantly induced the expression of 35 proteins with 13 proteins showing an increasing trend. AMH downregulated only 3 proteins. ASH-induced downregulated proteins are involved in actin cytoskeleton maintenance needed for cell shape and migration which are critical for blood-brain barrier maintenance and angiogenesis. In contrast, ASH-induced upregulated proteins are RNA-binding proteins involved in RNA splicing, transport, and stability. Thus, ASH alters BMV proteomics to impair cytoskeletal integrity and RNA processing which are critical for cerebrovascular function.
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Affiliation(s)
- Siva SVP Sakamuri
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
| | - Venkata N Sure
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
| | - Lokanatha Oruganti
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
| | - William Wisen
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
| | - Partha K Chandra
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
- Neuroscience Program, Tulane Brain Institute, Tulane University, New Orleans, LA, USA
| | - Ning Liu
- Neuroscience Program, Tulane Brain Institute, Tulane University, New Orleans, LA, USA
- Clinical Neuroscience Research Center, New Orleans, LA, USA
- Department of Neurosurgery, Tulane University School of Medicine, New Orleans, LA, USA
| | - Vivian A Fonseca
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
- Department of Medicine, Tulane University School of Medicine, New Orleans, LA, USA
| | - Xiaoying Wang
- Neuroscience Program, Tulane Brain Institute, Tulane University, New Orleans, LA, USA
- Clinical Neuroscience Research Center, New Orleans, LA, USA
- Department of Neurosurgery, Tulane University School of Medicine, New Orleans, LA, USA
| | - Jennifer Klein
- Department of Biochemistry & Molecular Biology, Louisiana State University School of Medicine, New Orleans, LA, USA
| | - Prasad VG Katakam
- Department of Pharmacology, Tulane University School of Medicine, New Orleans, LA, USA
- Neuroscience Program, Tulane Brain Institute, Tulane University, New Orleans, LA, USA
- Clinical Neuroscience Research Center, New Orleans, LA, USA
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15
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Chatzinikolaou PN, Margaritelis NV, Paschalis V, Theodorou AA, Vrabas IS, Kyparos A, D'Alessandro A, Nikolaidis MG. Erythrocyte metabolism. Acta Physiol (Oxf) 2024; 240:e14081. [PMID: 38270467 DOI: 10.1111/apha.14081] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 07/03/2023] [Revised: 12/11/2023] [Accepted: 01/01/2024] [Indexed: 01/26/2024]
Abstract
Our aim is to present an updated overview of the erythrocyte metabolism highlighting its richness and complexity. We have manually collected and connected the available biochemical pathways and integrated them into a functional metabolic map. The focus of this map is on the main biochemical pathways consisting of glycolysis, the pentose phosphate pathway, redox metabolism, oxygen metabolism, purine/nucleoside metabolism, and membrane transport. Other recently emerging pathways are also curated, like the methionine salvage pathway, the glyoxalase system, carnitine metabolism, and the lands cycle, as well as remnants of the carboxylic acid metabolism. An additional goal of this review is to present the dynamics of erythrocyte metabolism, providing key numbers used to perform basic quantitative analyses. By synthesizing experimental and computational data, we conclude that glycolysis, pentose phosphate pathway, and redox metabolism are the foundations of erythrocyte metabolism. Additionally, the erythrocyte can sense oxygen levels and oxidative stress adjusting its mechanics, metabolism, and function. In conclusion, fine-tuning of erythrocyte metabolism controls one of the most important biological processes, that is, oxygen loading, transport, and delivery.
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Affiliation(s)
- Panagiotis N Chatzinikolaou
- Department of Physical Education and Sports Science at Serres, Aristotle University of Thessaloniki, Serres, Greece
| | - Nikos V Margaritelis
- Department of Physical Education and Sports Science at Serres, Aristotle University of Thessaloniki, Serres, Greece
| | - Vassilis Paschalis
- School of Physical Education and Sport Science, National and Kapodistrian University of Athens, Athens, Greece
| | - Anastasios A Theodorou
- Department of Life Sciences, School of Sciences, European University Cyprus, Nicosia, Cyprus
| | - Ioannis S Vrabas
- Department of Physical Education and Sports Science at Serres, Aristotle University of Thessaloniki, Serres, Greece
| | - Antonios Kyparos
- Department of Physical Education and Sports Science at Serres, Aristotle University of Thessaloniki, Serres, Greece
| | - Angelo D'Alessandro
- Department of Biochemistry and Molecular Genetics, University of Colorado Anschutz Medical Campus, Aurora, Colorado, USA
| | - Michalis G Nikolaidis
- Department of Physical Education and Sports Science at Serres, Aristotle University of Thessaloniki, Serres, Greece
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16
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Thomas G, Banton KL, Garrett R, Palacio CH, Acuna D, Madayag R, Bar-Or D. Hypoxia Dysregulates the Transcription of Myoendothelial Junction Proteins Involved with Nitric Oxide Production in Brain Endothelial Cells. Biomedicines 2023; 12:75. [PMID: 38255181 PMCID: PMC10813549 DOI: 10.3390/biomedicines12010075] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/04/2023] [Revised: 12/20/2023] [Accepted: 12/22/2023] [Indexed: 01/24/2024] Open
Abstract
Myoendothelial junctions (MEJs) are structures that allow chemical signals to be transmitted between endothelial cells (ECs) and vascular smooth muscle cells, which control vascular tone. MEJs contain hemoglobin alpha (Hbα) and endothelial nitric oxide synthase (eNOS) complexes that appear to control the production and scavenging of nitric oxide (NO) along with the activity of cytochrome b5 reductase 3 (CYB5R3). The aim of this study was to examine how hypoxia affected the regulation of proteins involved in the production of NO in brain ECs. In brief, human brain microvascular endothelial cells (HBMEC) were exposed to cobalt chloride (CoCl2), a hypoxia mimetic, and a transcriptional analysis was performed using primers for eNOS, CYB5R3, and Hbα2 with ΔΔCt relative gene expression normalized to GAPDH. NO production was also measured after treatment using 4,5-diaminofluorescein diacetate (DAF-DA), a fluorescent NO indicator. When HBMEC were exposed to CoCl2 for 48 h, eNOS and CYB5R3 messenger RNA significantly decreased (up to -17.8 ± 4.30-fold and -10.4 ± 2.8, respectively) while Hbα2 increased to detectable levels. Furthermore, CoCl2 treatment caused a redistribution of peripheral membrane-generated NO production to a perinuclear region. To the best of our knowledge, this is the first time this axis has been studied in brain ECs and these findings imply that hypoxia may cause dysregulation of proteins that regulate NO production in brain MEJs.
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Affiliation(s)
- Gregory Thomas
- Trauma and Stroke Research Lab, 601 East Hampden Ave, Englewood, CO 80113, USA
| | - Kaysie L. Banton
- Trauma and Surgery Services, Swedish Medical Center, 501 East Hampden Ave, Englewood, CO 80113, USA
| | - Raymond Garrett
- Trauma and Stroke Research Lab, 601 East Hampden Ave, Englewood, CO 80113, USA
| | - Carlos H. Palacio
- Trauma and Surgery Services, South Texas Health System-McAllen, 301 West Expressway 83, McAllen, TX 78503, USA
| | - David Acuna
- Trauma and Surgery Services, Wesley Medical Center, 550 North Hillside St, Wichita, KS 67214, USA
| | - Robert Madayag
- Trauma and Surgery Services, Lutheran Medical Center, 8300 W. 38th Ave, Wheat Ridge, CO 80033, USA
| | - David Bar-Or
- Trauma and Stroke Research Lab, 601 East Hampden Ave, Englewood, CO 80113, USA
- Trauma and Surgery Services, Swedish Medical Center, 501 East Hampden Ave, Englewood, CO 80113, USA
- Trauma and Surgery Services, South Texas Health System-McAllen, 301 West Expressway 83, McAllen, TX 78503, USA
- Trauma and Surgery Services, Wesley Medical Center, 550 North Hillside St, Wichita, KS 67214, USA
- Department of Molecular Biology, Rocky Vista University, 8401 S Chambers Rd, Parker, CO 80134, USA
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17
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Sveeggen TM, Isakson BE, Straub AC, Bagher P. Bedding as a variable affecting fasting blood glucose and vascular physiology in mice. Am J Physiol Heart Circ Physiol 2023; 325:H338-H345. [PMID: 37389954 PMCID: PMC10435074 DOI: 10.1152/ajpheart.00168.2023] [Citation(s) in RCA: 4] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 03/21/2023] [Revised: 06/05/2023] [Accepted: 06/20/2023] [Indexed: 07/02/2023]
Abstract
Rodent husbandry requires careful consideration of environmental factors that may impact colony performance and subsequent physiological studies. Of note, recent reports have suggested corncob bedding may affect a broad range of organ systems. As corncob bedding may contain digestible hemicelluloses, trace sugars, and fiber, we hypothesized that corncob bedding impacts overnight fasting blood glucose and murine vascular function. Here, we compared mice housed on corncob bedding, which were then fasted overnight on either corncob or ALPHA-dri bedding, a virgin paper pulp cellulose alternative. Male and female mice were used from two noninduced, endothelial-specific conditional knockout strains [Cadherin 5-cre/ERT2, floxed hemoglobin-α1 (Hba1fl/fl) or Cadherin 5-cre/ERT2, floxed cytochrome-B5 reductase 3 (CyB5R3fl/fl)] on a C57BL/6J genetic background. After fasting overnight, initial fasting blood glucose was measured, and mice were anesthetized with isoflurane for measurement of blood perfusion via laser speckle contrast analysis using a PeriMed PeriCam PSI NR system. After a 15-min equilibration, the mice were injected intraperitoneally with the α1-adrenergic receptor agonist, phenylephrine (5 mg/kg), or saline, and monitored for changes in blood perfusion. After a 15-min response period, blood glucose was remeasured postprocedure. In both strains, mice fasted on corncob bedding had higher blood glucose than the pulp cellulose group. In the CyB5R3fl/fl strain, mice housed on corncob bedding displayed a significant reduction in phenylephrine-mediated change in perfusion. In the Hba1fl/fl strain, phenylephrine-induced change in perfusion was not different in the corncob group. This work suggests that corncob bedding, in part due to its ingestion by mice, could impact vascular measurements and fasting blood glucose. To promote scientific rigor and improve reproducibility, bedding type should be routinely included in published methods.NEW & NOTEWORTHY This study demonstrates real-time measurement of changes in perfusion to pharmacological treatment using laser speckle contrast analysis. Furthermore, this investigation revealed that fasting mice overnight on corncob bedding has differential effects on vascular function and that there was increased fasting blood glucose in mice fasted on corncob bedding compared with paper pulp cellulose bedding. This highlights the impact that bedding type can have on outcomes in vascular and metabolic research and reinforces the need for thorough and robust reporting of animal husbandry practices.
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Affiliation(s)
- Timothy M Sveeggen
- Cellular and Integrative Physiology, University of Nebraska Medical Center, Omaha, Nebraska, United States
| | - Brant E Isakson
- Department of Molecular Physiology and Biophysics, University of Virginia School of Medicine, Charlottesville, Virginia, United States
- Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, Virginia, United States
| | - Adam C Straub
- Department of Pharmacology and Chemical Biology, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, United States
- Heart, Lung, Blood and Vascular Medicine Institute, University of Pittsburgh School of Medicine, Pittsburgh, Pennsylvania, United States
| | - Pooneh Bagher
- Cellular and Integrative Physiology, University of Nebraska Medical Center, Omaha, Nebraska, United States
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18
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Ruddiman CA, Peckham R, Luse MA, Chen YL, Kuppusamy M, Corliss BA, Hall PJ, Lin CJ, Peirce SM, Sonkusare SK, Mecham RP, Wagenseil JE, Isakson BE. Polarized localization of phosphatidylserine in the endothelium regulates Kir2.1. JCI Insight 2023; 8:e165715. [PMID: 37014698 PMCID: PMC10243826 DOI: 10.1172/jci.insight.165715] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/26/2022] [Accepted: 03/29/2023] [Indexed: 04/05/2023] Open
Abstract
Lipid regulation of ion channels is largely explored using in silico modeling with minimal experimentation in intact tissue; thus, the functional consequences of these predicted lipid-channel interactions within native cellular environments remain elusive. The goal of this study is to investigate how lipid regulation of endothelial Kir2.1 - an inwardly rectifying potassium channel that regulates membrane hyperpolarization - contributes to vasodilation in resistance arteries. First, we show that phosphatidylserine (PS) localizes to a specific subpopulation of myoendothelial junctions (MEJs), crucial signaling microdomains that regulate vasodilation in resistance arteries, and in silico data have implied that PS may compete with phosphatidylinositol 4,5-bisphosphate (PIP2) binding on Kir2.1. We found that Kir2.1-MEJs also contained PS, possibly indicating an interaction where PS regulates Kir2.1. Electrophysiology experiments on HEK cells demonstrate that PS blocks PIP2 activation of Kir2.1 and that addition of exogenous PS blocks PIP2-mediated Kir2.1 vasodilation in resistance arteries. Using a mouse model lacking canonical MEJs in resistance arteries (Elnfl/fl/Cdh5-Cre), PS localization in endothelium was disrupted and PIP2 activation of Kir2.1 was significantly increased. Taken together, our data suggest that PS enrichment to MEJs inhibits PIP2-mediated activation of Kir2.1 to tightly regulate changes in arterial diameter, and they demonstrate that the intracellular lipid localization within the endothelium is an important determinant of vascular function.
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Affiliation(s)
- Claire A. Ruddiman
- Robert M. Berne Cardiovascular Research Center
- Department of Pharmacology
| | | | - Melissa A. Luse
- Robert M. Berne Cardiovascular Research Center
- Department of Molecular Physiology and Biophysics, and
| | | | | | - Bruce A. Corliss
- Department of Biomedical Engineering, University of Virginia School of Engineering, Charlottesville, Virginia, USA
| | | | - Chien-Jung Lin
- Division of Cardiology, Division of Medicine, SSM Health St. Louis University Hospital, St. Louis, Missouri, USA
| | - Shayn M. Peirce
- Robert M. Berne Cardiovascular Research Center
- Department of Biomedical Engineering, University of Virginia School of Engineering, Charlottesville, Virginia, USA
| | - Swapnil K. Sonkusare
- Robert M. Berne Cardiovascular Research Center
- Department of Molecular Physiology and Biophysics, and
| | - Robert P. Mecham
- Department of Cell Biology and Physiology, Washington University School of Medicine, St. Louis, Missouri, USA
| | - Jessica E. Wagenseil
- Department of Mechanical Engineering and Materials Science, Washington University, St. Louis, Missouri, USA
| | - Brant E. Isakson
- Robert M. Berne Cardiovascular Research Center
- Department of Molecular Physiology and Biophysics, and
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19
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Sumi MP, Tupta B, Roychowdhury S, Comhair S, Asosingh K, Stuehr DJ, Erzurum SC, Ghosh A. Hemoglobin resident in the lung epithelium is protective for smooth muscle soluble guanylate cyclase function. Redox Biol 2023; 63:102717. [PMID: 37120930 PMCID: PMC10172757 DOI: 10.1016/j.redox.2023.102717] [Citation(s) in RCA: 5] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/22/2023] [Revised: 04/17/2023] [Accepted: 04/24/2023] [Indexed: 05/02/2023] Open
Abstract
Hemoglobin (Hb) present in the lung epithelium is of unknown significance. However Hb being an nitric oxide (NO) scavenger can bind to NO and reduce its deleterious effects. Hence we postulated an NO scavenging role for this lung Hb. Doing transwell co-culture with bronchial epithelial cells, A549/16-HBE (apical) and human airway smooth muscle cells (HASMCs as basal), we found that Hb can protect the smooth muscle soluble guanylyl cyclase (sGC) from excess NO. Inducing the apical A549/16-HBE cells with cytokines to trigger iNOS expression and NO generation caused a time dependent increase in SNO-sGC and this was accompanied with a concomitant drop in sGC-α1β1 heterodimerization. Silencing Hbαβ in the apical cells further increased the SNO on sGC with a faster drop in the sGC heterodimer and these effects were additive along with further silencing of thioredoxin 1 (Trx1). Since heme of Hb is critical for NO scavenging we determined the Hb heme in a mouse model of allergic asthma (OVA) and found that Hb in the inflammed OVA lungs was low in heme or heme-free relative to those of naïve lungs. Further we established a direct correlation between the status of the sGC heterodimer and the Hb heme from lung samples of human asthma, iPAH, COPD and cystic fibrosis. These findings present a new mechanism of protection of lung sGC by the epithelial Hb, and suggests that this protection maybe lost in asthma or COPD where lung Hb is unable to scavenge the NO due to it being heme-deprived.
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Affiliation(s)
- Mamta P Sumi
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Blair Tupta
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Sanjoy Roychowdhury
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Suzy Comhair
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Kewal Asosingh
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Dennis J Stuehr
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Serpil C Erzurum
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA
| | - Arnab Ghosh
- Department of Inflammation and Immunity, Lerner Research Institute, The Cleveland Clinic, Cleveland, OH, 44195, USA.
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20
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Scrivner O, Fletcher E, Hoffmann C, Li F, Wilkinson T, Miserlis D, Smith RS, Bohannon WT, Sutliff R, Jordan WD, Koutakis P, Brewster LP. Myoglobinemia, Peripheral Arterial Disease, and Patient Mortality. J Am Coll Surg 2023; 236:588-598. [PMID: 36656266 PMCID: PMC10010700 DOI: 10.1097/xcs.0000000000000554] [Citation(s) in RCA: 2] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/12/2022] [Accepted: 12/13/2022] [Indexed: 01/20/2023]
Abstract
BACKGROUND Peripheral arterial disease (PAD) causes leg muscle damage due to inadequate perfusion and increases cardiovascular events and mortality 2- to 3-fold. It is unclear if PAD is a biomarker for high-risk cardiovascular disease or if skeletal muscle injury harms arterial health. The objective of this work is to test if serum myoglobin levels (myoglobinemia) are a marker of PAD, and if so, whether myoglobin impairs vascular health. STUDY DESIGN Patient blood samples were collected from PAD and control (no PAD) patients and interrogated for myoglobin concentrations and nitric oxide bioavailability. Patient mortality over time was captured from the medical record. Myoglobin activity was tested on endothelial cells and arterial function. RESULTS Myoglobin is a biomarker for symptomatic PAD and was inversely related to nitric oxide bioavailability; 200 ng/mL myoglobin in vitro increased endothelial cell permeability in vitro and decreased nitrate bioavailability. Ex vivo, 100 ng/mL myoglobin increased vascular tone in naive murine aortas approximately 1.5 times, impairing absolute vessel relaxation. In vivo, we demonstrated that myoglobinemia caused impaired flow-mediated dilation in a porcine model. Patients presenting with myoglobin levels of 100 ng/mL or greater had significantly more deaths than those with myoglobin levels of less than 100 ng/mL. CONCLUSIONS Using a combination of patient data, in vitro, ex vivo, and in vivo testing, we found that myoglobin is a biomarker for symptomatic PAD and a potent regulator of arterial health that can increase vascular tone, increase vascular permeability, and cause endothelial dysfunction, all of which may contribute to the vulnerability of PAD patients to cardiovascular events and death.
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Affiliation(s)
- Ottis Scrivner
- From the Emory University Department of Surgery, Atlanta, GA (Scrivner, Hoffmann, Li, Jordan, Brewster)
| | - Emma Fletcher
- Baylor University, Department of Biology, Waco, TX (Fletcher, Wilkinson, Koutakis)
| | - Carson Hoffmann
- From the Emory University Department of Surgery, Atlanta, GA (Scrivner, Hoffmann, Li, Jordan, Brewster)
- Atlanta VA Medical Center, Atlanta, GA (Hoffmann, Brewster)
| | - Feifei Li
- From the Emory University Department of Surgery, Atlanta, GA (Scrivner, Hoffmann, Li, Jordan, Brewster)
| | - Trevor Wilkinson
- Baylor University, Department of Biology, Waco, TX (Fletcher, Wilkinson, Koutakis)
| | - Dimitrios Miserlis
- University of Texas Health Science Center San Antonio, Department of Surgery, San Antonio, TX (Miserlis)
| | - Robert S Smith
- Baylor Scott and White Medical Center, Department of Surgery, Temple, TX (Smith, Bohannon)
| | - William T Bohannon
- Baylor Scott and White Medical Center, Department of Surgery, Temple, TX (Smith, Bohannon)
| | - Roy Sutliff
- National Institutes of Health, National Heart, Lung, and Blood Institute, Lung Biology and Disease Branch, Atlanta, GA (Sutliff)
| | - William D Jordan
- From the Emory University Department of Surgery, Atlanta, GA (Scrivner, Hoffmann, Li, Jordan, Brewster)
| | - Panagiotis Koutakis
- Baylor University, Department of Biology, Waco, TX (Fletcher, Wilkinson, Koutakis)
| | - Luke P Brewster
- From the Emory University Department of Surgery, Atlanta, GA (Scrivner, Hoffmann, Li, Jordan, Brewster)
- Atlanta VA Medical Center, Atlanta, GA (Hoffmann, Brewster)
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