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Vasamsetti SB, Natarajan N, Sadaf S, Florentin J, Dutta P. Regulation of cardiovascular health and disease by visceral adipose tissue-derived metabolic hormones. J Physiol 2023; 601:2099-2120. [PMID: 35661362 PMCID: PMC9722993 DOI: 10.1113/jp282728] [Citation(s) in RCA: 12] [Impact Index Per Article: 6.0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/10/2021] [Accepted: 05/04/2022] [Indexed: 11/08/2022] Open
Abstract
Visceral adipose tissue (VAT) is a metabolic organ known to regulate fat mass, and glucose and nutrient homeostasis. VAT is an active endocrine gland that synthesizes and secretes numerous bioactive mediators called 'adipocytokines/adipokines' into systemic circulation. These adipocytokines act on organs of metabolic importance like the liver and skeletal muscle. Multiple preclinical and in vitro studies showed strong evidence of the roles of adipocytokines in the regulation of metabolic disorders like diabetes, obesity and insulin resistance. Adipocytokines, such as adiponectin and omentin, are anti-inflammatory and have been shown to prevent atherogenesis by increasing nitric oxide (NO) production by the endothelium, suppressing endothelium-derived inflammation and decreasing foam cell formation. By inhibiting differentiation of vascular smooth muscle cells (VSMC) into osteoblasts, adiponectin and omentin prevent vascular calcification. On the other hand, adipocytokines like leptin and resistin induce inflammation and endothelial dysfunction that leads to vasoconstriction. By promoting VSMC migration and proliferation, extracellular matrix degradation and inflammatory polarization of macrophages, leptin and resistin increase the risk of atherosclerotic plaque vulnerability and rupture. Additionally, the plasma concentrations of these adipocytokines alter in ageing, rendering older humans vulnerable to cardiovascular disease. The disturbances in the normal physiological concentrations of these adipocytokines secreted by VAT under pathological conditions impede the normal functions of various organs and affect cardiovascular health. These adipokines could be used for both diagnostic and therapeutic purposes in cardiovascular disease.
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Affiliation(s)
- Sathish Babu Vasamsetti
- Pittsburgh Heart, Lung, Blood, and Vascular Medicine Institute, University of Pittsburgh, Pittsburgh, PA, USA 15213
- Pittsburgh VA Medical Center-University Drive, University Drive C, Pittsburgh, PA, USA
| | - Niranjana Natarajan
- Pittsburgh Heart, Lung, Blood, and Vascular Medicine Institute, University of Pittsburgh, Pittsburgh, PA, USA 15213
| | - Samreen Sadaf
- Pittsburgh Heart, Lung, Blood, and Vascular Medicine Institute, University of Pittsburgh, Pittsburgh, PA, USA 15213
- Pittsburgh VA Medical Center-University Drive, University Drive C, Pittsburgh, PA, USA
| | - Jonathan Florentin
- Pittsburgh Heart, Lung, Blood, and Vascular Medicine Institute, University of Pittsburgh, Pittsburgh, PA, USA 15213
| | - Partha Dutta
- Pittsburgh Heart, Lung, Blood, and Vascular Medicine Institute, University of Pittsburgh, Pittsburgh, PA, USA 15213
- Pittsburgh VA Medical Center-University Drive, University Drive C, Pittsburgh, PA, USA
- Department of Bioengineering, Swanson School of Engineering, University of Pittsburgh, Pittsburgh, PA, USA, 15213
- Division of Cardiology, Department of Medicine, University of Pittsburgh, Pittsburgh, PA, USA, 15213
- Department of Immunology, University of Pittsburgh School of Medicine, Pittsburgh, PA 15213, USA
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Déglise S, Bechelli C, Allagnat F. Vascular smooth muscle cells in intimal hyperplasia, an update. Front Physiol 2023; 13:1081881. [PMID: 36685215 PMCID: PMC9845604 DOI: 10.3389/fphys.2022.1081881] [Citation(s) in RCA: 31] [Impact Index Per Article: 15.5] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/27/2022] [Accepted: 12/12/2022] [Indexed: 01/05/2023] Open
Abstract
Arterial occlusive disease is the leading cause of death in Western countries. Core contemporary therapies for this disease include angioplasties, stents, endarterectomies and bypass surgery. However, these treatments suffer from high failure rates due to re-occlusive vascular wall adaptations and restenosis. Restenosis following vascular surgery is largely due to intimal hyperplasia. Intimal hyperplasia develops in response to vessel injury, leading to inflammation, vascular smooth muscle cells dedifferentiation, migration, proliferation and secretion of extra-cellular matrix into the vessel's innermost layer or intima. In this review, we describe the current state of knowledge on the origin and mechanisms underlying the dysregulated proliferation of vascular smooth muscle cells in intimal hyperplasia, and we present the new avenues of research targeting VSMC phenotype and proliferation.
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Affiliation(s)
| | | | - Florent Allagnat
- Department of Vascular Surgery, Lausanne University Hospital, Lausanne, Switzerland
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Dose-dependent impact of statin therapy intensity on circulating progenitor cells in patients undergoing percutaneous coronary intervention for the treatment of acute versus chronic coronary syndrome. PLoS One 2022; 17:e0267433. [PMID: 35587929 PMCID: PMC9119492 DOI: 10.1371/journal.pone.0267433] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/26/2021] [Accepted: 04/09/2022] [Indexed: 11/30/2022] Open
Abstract
Background By low-density lipoprotein (LDL) reduction, statins play an important role in cardiovascular risk modification. Incompletely understood pleiotropic statin effects include vasoprotection that might originate from mobilisation and differentiation of vascular progenitor cells. Data on the potentially differential impact of statin treatment intensity on circulating progenitor cells in patients undergoing percutaneous coronary intervention (PCI) are scarce. This study examines the potential association of different permanent statin treatment regimens on circulating progenitor cells in patients with coronary syndrome. Methods and results In a monocentric prospective all-comers study, 105 consecutive cases scheduled for coronary angiography due to either (A) non-invasive proof of ischemia and chronic coronary syndrome (CCS) or (B) troponin-positive acute coronary syndrome (ACS) were included. According to the 2018 American College of Cardiology Guidelines on Blood Cholesterol, patients were clustered depending on their respective permanent statin treatment regimen in either a high- to moderate-intensity statin treatment (HIST) or a low-intensity statin treatment (LIST) group. Baseline characteristics including LDL levels were comparable. From blood drawn at the time of PCI, peripheral blood mononuclear cells were isolated, cultivated and counted and, by density gradient centrifugation, levels of circulating progenitor cells were determined using fluorescence-activated cell sorting (FACS) analysis. In ACS patients both absolute and relative numbers of circulating early-outgrowth endothelial progenitor cells (EPCs) concurrently were significantly lower in the HIST group as compared to the LIST group. This effect was more pronounced in ACS patients than in CCS patients. Both in ACS and CCS patients, HIST caused a significant reduction of the number of circulating SMPCs. Conclusions In patients undergoing PCI, a dose intensity-dependent and LDL level-independent pro-differentiating vasoprotective pleiotropic capacity of statins for EPC and SMPC is demonstrated.
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Macabrey D, Longchamp A, Déglise S, Allagnat F. Clinical Use of Hydrogen Sulfide to Protect Against Intimal Hyperplasia. Front Cardiovasc Med 2022; 9:876639. [PMID: 35479275 PMCID: PMC9035533 DOI: 10.3389/fcvm.2022.876639] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/15/2022] [Accepted: 03/18/2022] [Indexed: 12/27/2022] Open
Abstract
Arterial occlusive disease is the narrowing of the arteries via atherosclerotic plaque buildup. The major risk factors for arterial occlusive disease are age, high levels of cholesterol and triglycerides, diabetes, high blood pressure, and smoking. Arterial occlusive disease is the leading cause of death in Western countries. Patients who suffer from arterial occlusive disease develop peripheral arterial disease (PAD) when the narrowing affects limbs, stroke when the narrowing affects carotid arteries, and heart disease when the narrowing affects coronary arteries. When lifestyle interventions (exercise, diet…) fail, the only solution remains surgical endovascular and open revascularization. Unfortunately, these surgeries still suffer from high failure rates due to re-occlusive vascular wall adaptations, which is largely due to intimal hyperplasia (IH). IH develops in response to vessel injury, leading to inflammation, vascular smooth muscle cells dedifferentiation, migration, proliferation and secretion of extra-cellular matrix into the vessel’s innermost layer or intima. Re-occlusive IH lesions result in costly and complex recurrent end-organ ischemia, and often lead to loss of limb, brain function, or life. Despite decades of IH research, limited therapies are currently available. Hydrogen sulfide (H2S) is an endogenous gasotransmitter derived from cysteine metabolism. Although environmental exposure to exogenous high H2S is toxic, endogenous H2S has important vasorelaxant, cytoprotective and anti-inflammatory properties. Its vasculo-protective properties have attracted a remarkable amount of attention, especially its ability to inhibit IH. This review summarizes IH pathophysiology and treatment, and provides an overview of the potential clinical role of H2S to prevent IH and restenosis.
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Affiliation(s)
- Diane Macabrey
- Department of Vascular Surgery, Lausanne University Hospital, Lausanne, Switzerland
- Department of Biomedical Sciences, University of Lausanne, Lausanne, Switzerland
| | - Alban Longchamp
- Department of Vascular Surgery, Lausanne University Hospital, Lausanne, Switzerland
- Department of Biomedical Sciences, University of Lausanne, Lausanne, Switzerland
| | - Sébastien Déglise
- Department of Vascular Surgery, Lausanne University Hospital, Lausanne, Switzerland
- Department of Biomedical Sciences, University of Lausanne, Lausanne, Switzerland
| | - Florent Allagnat
- Department of Vascular Surgery, Lausanne University Hospital, Lausanne, Switzerland
- Department of Biomedical Sciences, University of Lausanne, Lausanne, Switzerland
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Novikova OA, Laktionov PP, Karpenko AA. The roles of mechanotransduction, vascular wall cells, and blood cells in atheroma induction. Vascular 2018; 27:98-109. [PMID: 30157718 DOI: 10.1177/1708538118796063] [Citation(s) in RCA: 7] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/25/2022]
Abstract
BACKGROUND This paper describes and analyzes the cellular and molecular mechanisms underlying atherosclerosis development. In particular, the roles of monocytes/macrophages, smooth muscle cells, and vascular endothelium in the formation of stable/unstable atheromatous plaques, and the contributions of some processes to atheroma formation. METHODS AND RESULTS In this study we analyzed endothelium: function, dysfunction, and involvement into atherogenesis; cell proteins mediating mechanotransduction; proatherogenic role of monocytes; the role of macrophages in the development of unstable atheromatous plaques and smooth muscle cell origin in atherosclerosis. Smooth muscle cell phenotypic switching; their functioning; the ability to retain cholesterol and lipoproteins as well as secretion of pro- and anti-inflammatory molecules and extracellular matrix proteins, their response to extracellular stimuli secreted by other cells, and the effect of smooth muscle cells on the cells surrounding atheromatous plaques are fundamentally important for the insight into atherosclerosis molecular basis. CONCLUSION Atheromatous plaque transcriptome studies will be helpful in the identification of the key genes involved in atheroma transformation and development as well as discovery of the new targets for diagnosis and therapy.
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Affiliation(s)
- Olga A Novikova
- 1 Department of Vascular and Hybrid Surgery, National Medical Research Institute Academician E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation
| | - Pavel P Laktionov
- 2 Laboratory of Molecular Medicine, SB RAS Institute of Chemical Biology and Fundamental Medicine; E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation.,3 E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation
| | - Andrey A Karpenko
- 1 Department of Vascular and Hybrid Surgery, National Medical Research Institute Academician E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation
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Novikova OA, Laktionov PP, Karpenko AA. Mechanisms Underlying Atheroma Induction: The Roles of Mechanotransduction, Vascular Wall Cells, and Blood Cells. Ann Vasc Surg 2018; 53:224-233. [PMID: 30012457 DOI: 10.1016/j.avsg.2018.04.030] [Citation(s) in RCA: 3] [Impact Index Per Article: 0.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/19/2018] [Revised: 04/13/2018] [Accepted: 04/19/2018] [Indexed: 02/06/2023]
Abstract
BACKGROUND The objective of this article is to review cellular mechanism of atherosclerosis (AS) development. The pathogenesis of AS comprises a sequence of biological events leading to build up of a dense or loose atheromatous plaque (AP). METHODS In this review, we tried to attempt to analyze the cellular mechanisms underlying AS development, including the roles of monocytes/macrophages and smooth muscle cells in the formation of stable/unstable APs. RESULTS As a rule, APs are formed in the regions with irregular blood flow; both mechanical perturbations of the vascular wall and several biological events contribute to plaque formation. Blood lipid/lipoprotein deposition, recruitment of monocytes/macrophages, foam cell formation, migration and proliferation of smooth muscle cells, secretion of extracellular matrix, and formation of the connective tissue in plaques are among the latter events. CONCLUSIONS The review briefs the contributions of different processes to atheroma formation and describes the molecular mechanisms involved in AS development. AP transcriptome studies will be helpful in the identification of the key genes involved in atheroma transformation and development as well as discovery of the new targets for diagnosis and therapy.
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Affiliation(s)
- Olga A Novikova
- E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation.
| | - Pavel P Laktionov
- Laboratory of Molecular Medicine, SB RAS Institute of Chemical Biology and Fundamental Medicine, E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation
| | - Andrey A Karpenko
- E.N. Meshalkin National Medical Research Center, Ministry of Health of Russian Federation, Novosibirsk, Russian Federation
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Zhang R, Wang Y, Zhu D, Dong F, Chen X. The protective effect of North Schisandra Lignans on vascular endothelial cell oxidation injuries. Technol Health Care 2016; 24 Suppl 2:S651-7. [PMID: 27163328 DOI: 10.3233/thc-161192] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/15/2022]
Abstract
BACKGROUND In this study, the authors cultivated ECV-304 in vitro and incubated cells with H2O2, established injury models, and induced oxidized endothelial cell apoptosis. This model makes it possible to choose suitable concentrations of North Schisandra Lignans. OBJECTIVE To study the protective effects of North Schisandra Lignans on human umbilical vein endothelial cell injuries. METHODS Endothelial cell growth and proliferation activity were detected through the MTT method. The colorimetric method was used to determine superoxide dismutase (SOD) activity in the cell culture solution, as well as malondialdehyde (MDA) content in the cell. RESULTS North Schisandra Lignans noticeably decreased ECV-304 cell injury induced by H2O2. Moderate and high concentrations of North Schisandra Lignans could significantly lower MDA content and heighten SOD activity. These differences were significant compared to the H2O2 group (P< 0.05). CONCLUSIONS North Schisandra Lignans had an obvious protective effect on ECV-304 injured by H2O2$. The mechanism decreases MDA production and heightened SOD activity.
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Affiliation(s)
- Ruowen Zhang
- Beihua University Faculty of Medicine, Beihua University, Jilin, China
| | - Yilin Wang
- The First Clinical Medical College, Beijing University of Chinese Medicine, Beijing, China
| | - Dong Zhu
- The Second Clinical Medical College, Guangzhou University of Chinese Medicine, Guangzhou, Guangdong, China
| | - Fengying Dong
- Jilin Gynecology and Obstetrics Hospital, Jilin, China
| | - Xi Chen
- Pathogen Biology Department, College of Basic Medicine, Beihua University, Jilin, China
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Diao Y, Mohandas R, Lee P, Liu Z, Sautina L, Mu W, Li S, Wen X, Croker B, Segal MS. Effects of Long-Term Type I Interferon on the Arterial Wall and Smooth Muscle Progenitor Cells Differentiation. Arterioscler Thromb Vasc Biol 2016; 36:266-73. [DOI: 10.1161/atvbaha.115.306767] [Citation(s) in RCA: 20] [Impact Index Per Article: 2.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/02/2014] [Accepted: 11/11/2015] [Indexed: 12/11/2022]
Affiliation(s)
- Yanpeng Diao
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Rajesh Mohandas
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Pui Lee
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Zhiyu Liu
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Larysa Sautina
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Wei Mu
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Shiyu Li
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Xuerong Wen
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Byron Croker
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
| | - Mark S. Segal
- From the Division of Nephrology, Hypertension, and Renal Transplantation (Y.D., R.M., P.L., L.S., W.M., S.L., X.W., M.S.S.) and Department of Pathology (B.C.), University of Florida, Gainesville; North Florida/South Georgia Veterans Health System, Gainesville (R.M., B.C., M.S.S.); and Division of Urology, Department of Surgery, The 2nd Teaching Hospital of Dalian Medical University, Dalian, China (Z.L.)
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Wang Q, Li H, Yao Y, Lu G, Wang Y, Xia D, Zhou J. HB-EGF-Promoted Airway Smooth Muscle Cells and Their Progenitor Migration Contribute to Airway Smooth Muscle Remodeling in Asthmatic Mouse. THE JOURNAL OF IMMUNOLOGY 2016; 196:2361-7. [PMID: 26826248 DOI: 10.4049/jimmunol.1402126] [Citation(s) in RCA: 18] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Subscribe] [Scholar Register] [Received: 08/20/2014] [Accepted: 01/03/2016] [Indexed: 01/09/2023]
Abstract
The airway smooth muscle (ASM) cells' proliferation, migration, and their progenitor's migration are currently regarded as causative factors for ASM remodeling in asthma. Heparin-binding epidermal growth factor (HB-EGF), a potent mitogen and chemotactic factor, could promote ASM cell proliferation through MAPK pathways. In this study, we obtained primary ASM cells and their progenitors from C57BL/6 mice and went on to explore the role of HB-EGF in these cells migration and the underlying mechanisms. We found that recombinant HB-EGF (rHB-EGF) intratracheal instillation accelerated ASM layer thickening in an OVA-induced asthmatic mouse. Modified Boyden chamber assay revealed that rHB-EGF facilitate ASM cell migration in a dose-dependent manner and ASM cells from asthmatic mice had a greater migration ability than that from normal counterparts. rHB-EGF could stimulate the phosphorylation of ERK1/2 and p38 in ASM cells but further migration assay showed that only epidermal growth factor receptor inhibitor (AG1478) or p38 inhibitor (SB203580), but not ERK1/2 inhibitor (PD98059), could inhibit rHB-EGF-mediated ASM cells migration. Actin cytoskeleton experiments exhibited that rHB-EGF could cause actin stress fibers disassembly and focal adhesions formation of ASM cells through the activation of p38. Finally, airway instillation of rHB-EGF promoted the recruitment of bone marrow-derived smooth muscle progenitor cells, which were transferred via caudal vein, migrating into the airway from the circulation. These observations demonstrated that ASM remodeling in asthma might have resulted from HB-EGF-mediated ASM cells and their progenitor cells migration, via p38 MAPK-dependent actin cytoskeleton remodeling.
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Affiliation(s)
- Qing Wang
- Department of Respiratory and Critical Care Medicine, First Affiliated Hospital of Zhejiang University School of Medicine, Zhejiang University, Zhejiang 310003, People's Republic of China
| | - Hequan Li
- Department of Respiratory and Critical Care Medicine, First Affiliated Hospital of Zhejiang University School of Medicine, Zhejiang University, Zhejiang 310003, People's Republic of China;
| | - Yinan Yao
- Department of Respiratory and Critical Care Medicine, First Affiliated Hospital of Zhejiang University School of Medicine, Zhejiang University, Zhejiang 310003, People's Republic of China
| | - Guohua Lu
- Department of Respiratory and Critical Care Medicine, First Affiliated Hospital of Zhejiang University School of Medicine, Zhejiang University, Zhejiang 310003, People's Republic of China
| | - Yuehong Wang
- Department of Respiratory and Critical Care Medicine, First Affiliated Hospital of Zhejiang University School of Medicine, Zhejiang University, Zhejiang 310003, People's Republic of China
| | - Dajing Xia
- School of Public Health, Zhejiang University, Hangzhou 310027, China; and Institute of Immunology, Zhejiang University, Hangzhou 310027, China
| | - Jianying Zhou
- Department of Respiratory and Critical Care Medicine, First Affiliated Hospital of Zhejiang University School of Medicine, Zhejiang University, Zhejiang 310003, People's Republic of China;
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Embryonic rat vascular smooth muscle cells revisited - a model for neonatal, neointimal SMC or differentiated vascular stem cells? Vasc Cell 2014; 6:6. [PMID: 24628920 PMCID: PMC3995523 DOI: 10.1186/2045-824x-6-6] [Citation(s) in RCA: 20] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/05/2013] [Accepted: 02/28/2014] [Indexed: 11/10/2022] Open
Abstract
BACKGROUND The A10 and A7r5 cell lines derived from the thoracic aorta of embryonic rat are widely used as models of non-differentiated, neonatal and neointimal vascular smooth muscle cells in culture. The recent discovery of resident multipotent vascular stem cells within the vessel wall has necessitated the identity and origin of these vascular cells be revisited. In this context, we examined A10 and A7r5 cell lines to establish the similarities and differences between these cell lines and multipotent vascular stem cells isolated from adult rat aortas by determining their differentiation state, stem cell marker expression and their multipotency potential in vitro. METHODS Vascular smooth muscle cell differentiation markers (alpha-actin, myosin heavy chain, calponin) and stem cell marker expression (Sox10, Sox17 and S100β) were assessed using immunocytochemistry, confocal microscopy, FACS analysis and real-time quantitative PCR. RESULTS Both A10 and A7r5 expressed vascular smooth muscle differentiation, markers, smooth muscle alpha - actin, smooth muscle myosin heavy chain and calponin. In parallel analysis, multipotent vascular stem cells isolated from rat aortic explants were immunocytochemically myosin heavy chain negative but positive for the neural stem cell markers Sox10+, a neural crest marker, Sox17+ the endoderm marker, and the glia marker, S100β+. This multipotent vascular stem cell marker profile was detected in both embryonic vascular cell lines in addition to the adventitial progenitor stem cell marker, stem cell antigen-1, Sca1+. Serum deprivation resulted in a significant increase in stem cell and smooth muscle cell differentiation marker expression, when compared to serum treated cells. Both cell types exhibited weak multipotency following adipocyte inductive stimulation. Moreover, Notch signaling blockade following γ-secretase inhibition with DAPT enhanced the expression of both vascular smooth muscle and stem cell markers. CONCLUSIONS We conclude that A10 and A7r5 cells share similar neural stem cell markers to both multipotent vascular stem cells and adventitial progenitors that are indicative of neointimal stem-derived smooth muscle cells. This may have important implications for their use in examining vascular contractile and proliferative phenotypes in vitro.
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11
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Fadini GP. A reappraisal of the role of circulating (progenitor) cells in the pathobiology of diabetic complications. Diabetologia 2014; 57:4-15. [PMID: 24173366 DOI: 10.1007/s00125-013-3087-6] [Citation(s) in RCA: 50] [Impact Index Per Article: 4.5] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 08/14/2013] [Accepted: 10/01/2013] [Indexed: 01/10/2023]
Abstract
Traditionally, the development of diabetic complications has been attributed to the biochemical pathways driving hyperglycaemic cell damage, while reparatory mechanisms have been long overlooked. A more comprehensive view of the balance between damage and repair suggests that an impaired regenerative capacity of bone marrow (BM)-derived cells strongly contributes to defective re-endothelisation and neoangiogenesis in diabetes. Although recent technological advances have redefined the biology and function of endothelial progenitor cells (EPCs), interest in BM-derived vasculotropic cells in the setting of diabetes and its complications remains high. Several circulating cell types of haematopoietic and non-haematopoietic origin are affected by diabetes and are potentially involved in the pathobiology of chronic complications. In addition to classical EPCs, these include circulating (pro-)angiogenic cells, polarised monocytes/macrophages (M1 and M2), myeloid calcifying cells and smooth muscle progenitor cells, having disparate roles in vascular biology. In parallel with the study of elusive progenitor cell phenotypes, it has been recognised that diabetes induces a profound remodelling of the BM stem cell niche. The alteration of circulating (progenitor) cells in the BM is now believed to be the link among distant end-organ complications. The field is rapidly evolving and interest is shifting from specific cell populations to the complex network of interactions that orchestrate trafficking of circulating vasculotropic cells.
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Affiliation(s)
- G P Fadini
- Department of Medicine, University Hospital of Padova, University of Padova, Via Giustiniani, 2, 35100, Padova, Italy,
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Fadini GP, Avogaro A. Dipeptidyl peptidase-4 inhibition and vascular repair by mobilization of endogenous stem cells in diabetes and beyond. Atherosclerosis 2013; 229:23-9. [DOI: 10.1016/j.atherosclerosis.2013.04.007] [Citation(s) in RCA: 43] [Impact Index Per Article: 3.6] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 01/22/2013] [Revised: 02/28/2013] [Accepted: 04/08/2013] [Indexed: 12/13/2022]
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Chen KC, Juo SHH. MicroRNAs in atherosclerosis. Kaohsiung J Med Sci 2012; 28:631-40. [DOI: 10.1016/j.kjms.2012.04.001] [Citation(s) in RCA: 28] [Impact Index Per Article: 2.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 01/03/2012] [Accepted: 02/20/2012] [Indexed: 02/04/2023] Open
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Fledderus JO, van Oostrom O, de Kleijn DPV, den Ouden K, Penders AF, Gremmels H, de Bree P, Verhaar MC. Increased amount of bone marrow-derived smooth muscle-like cells and accelerated atherosclerosis in diabetic apoE-deficient mice. Atherosclerosis 2012; 226:341-7. [PMID: 23219222 DOI: 10.1016/j.atherosclerosis.2012.11.017] [Citation(s) in RCA: 7] [Impact Index Per Article: 0.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 10/30/2012] [Revised: 11/13/2012] [Accepted: 11/14/2012] [Indexed: 10/27/2022]
Abstract
AIMS Atherosclerotic plaque development is accelerated in patients with diabetes. Bone marrow-derived smooth muscle-like cells have been detected in neointima and diabetes has a numerical and functional effect on circulating vascular progenitor cells. We hypothesized that an increased number of bone marrow-derived smooth muscle-like cells correlates with accelerated atherosclerosis in diabetic apoE-deficient mice. METHODS ApoE(-/-) mice were subjected to total body irradiation and transplanted with bone marrow cells from GFP-transgenic mice. Mice were rendered diabetic by streptozotocin injection and examined after 4, 8, 11 and 15 weeks of diabetes. RESULTS Diabetic mice showed a larger plaque area and a higher number of smooth muscle-like cells compared to non-diabetic mice at 11 and 15 weeks after diabetes induction. Bone marrow-derived smooth muscle-like cells were detected in atherosclerotic plaques of both diabetic and control mice, but numbers were higher in plaques of diabetic mice 11 weeks after induction of diabetes. The higher number of bone marrow-derived smooth muscle-like cells in plaque was associated with an increase in in vitro differentiation of smooth muscle-like cells from spleen mononuclear cells in diabetic mice. CONCLUSIONS Diabetes increases the number of bone marrow-derived smooth muscle-like cells in atherosclerotic plaques and the differentiation of mononuclear cells towards smooth muscle-like cells, which may contribute to accelerated atherosclerotic plaque development in diabetic apoE(-/-) mice.
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Affiliation(s)
- J O Fledderus
- Laboratory of Renal and Vascular Biology, Department of Nephrology and Hypertension, F03.227, University Medical Center Utrecht, Heidelberglaan 100, 3584 CX Utrecht, The Netherlands
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15
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Fadini GP. A diseased bone marrow fuels atherosclerosis in diabetes. Atherosclerosis 2012; 226:337-8. [PMID: 23228877 DOI: 10.1016/j.atherosclerosis.2012.11.015] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 11/12/2012] [Accepted: 11/13/2012] [Indexed: 11/17/2022]
Abstract
Diabetes accelerates atherosclerosis through shortage of vascular regenerative cells derived from the bone marrow (BM). In addition, diabetes shifts the differentiation of BM progenitor cells to pro-calcific and smooth muscle phenotypes. In a paper published in Atherosclerosis, Fledderus et al. demonstrate that the accelerated atherosclerosis in diabetic ApoE(-/-) mice is associated with an increased amount of BM-derived smooth muscle cells in the plaques. The role of ApoE in the regulation of vascular BM progenitors may explain inconsistencies in the literature on the contribution of extraparietal cells to atherosclerotic lesions. Herein, the pathophysiological meaning of a deranged kinetic of smooth muscle progenitor cells in diabetes is discussed.
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Fadini GP, Rattazzi M, Matsumoto T, Asahara T, Khosla S. Emerging role of circulating calcifying cells in the bone-vascular axis. Circulation 2012; 125:2772-81. [PMID: 22665885 DOI: 10.1161/circulationaha.112.090860] [Citation(s) in RCA: 67] [Impact Index Per Article: 5.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 12/13/2022]
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17
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Wang CH, Lee YS, Lin SJ, Mei HF, Lin SY, Liu MH, Chen JR, Cherng WJ. Surface Markers of Heterogeneous Peripheral Blood–Derived Smooth Muscle Progenitor Cells. Arterioscler Thromb Vasc Biol 2012; 32:1875-83. [DOI: 10.1161/atvbaha.112.245852] [Citation(s) in RCA: 17] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/17/2023]
Affiliation(s)
- Chao-Hung Wang
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Yun-Shien Lee
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Shing-Jong Lin
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Hsiu-Fu Mei
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Sheng-Yuan Lin
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Min-Hui Liu
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Jim-Ray Chen
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
| | - Wen-Jin Cherng
- From the Heart Failure Center, Division of Cardiology, Department of Internal Medicine, Chang Gung Memorial Hospital, Keelung, Taiwan (C.-H.W., H.-F. M., S.-Y.L., M.-H.L., W.-J.C.); Department of Pathology, Chang Gung University College of Medicine, Taoyuan, Taiwan (J.-R.C.); Department of Biotechnology, Ming Chuan University, Taoyuan, Taiwan (Y.-S.L.); and Institute of Clinical Medicine, National Yang-Ming University, Taipei, Taiwan (S.-J.L., C.-H.W.)
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Fadini GP. Developmental cardiovascular biology meets regenerative medicine at Islet-1. Atherosclerosis 2012; 223:282-3. [PMID: 22727190 DOI: 10.1016/j.atherosclerosis.2012.05.032] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 05/24/2012] [Accepted: 05/25/2012] [Indexed: 10/28/2022]
Affiliation(s)
- Gian Paolo Fadini
- Department of Medicine, University of Padova, Via Giustiniani, 2., 35100 Padova, Italy. ,
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Menegazzo L, Albiero M, Avogaro A, Fadini GP. Endothelial progenitor cells in diabetes mellitus. Biofactors 2012; 38:194-202. [PMID: 22488933 DOI: 10.1002/biof.1016] [Citation(s) in RCA: 64] [Impact Index Per Article: 4.9] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Received: 01/02/2012] [Accepted: 03/10/2012] [Indexed: 12/13/2022]
Abstract
Diabetes mellitus is associated with an increased risk of cardiovascular disease due to its negative impact on the vascular endothelium. The damaged endothelium is repaired by resident cells also through the contribution of a population of circulating cells derived from bone marrow. These cells, termed endothelial progenitor cells (EPCs) are involved in maintaining endothelial homeostasis and contributes to the formation of new blood vessels with a process called postnatal vasculogenesis. The mechanisms whereby these cells allow for protection of the cardiovascular system are still unclear; nevertheless, consistent evidences have shown that impairment and reduction of EPCs are hallmark features of type 1 and type 2 diabetes. Therefore, EPC alterations might have a pathogenic role in diabetic complications, thus becoming a potential therapeutic target. In this review, EPC alterations will be examined in the context of macrovascular and microvascular complications of diabetes, highlighting their roles and functions in the progression of the disease.
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Fadini GP, Avogaro A. It is all in the blood: the multifaceted contribution of circulating progenitor cells in diabetic complications. EXPERIMENTAL DIABETES RESEARCH 2012; 2012:742976. [PMID: 22548049 PMCID: PMC3324138 DOI: 10.1155/2012/742976] [Citation(s) in RCA: 36] [Impact Index Per Article: 2.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 01/09/2012] [Accepted: 01/27/2012] [Indexed: 12/21/2022]
Abstract
Diabetes mellitus (DM) is a worldwide growing disease and represents a huge social and healthcare problem owing to the burden of its complications. Micro- and macrovascular diabetic complications arise from excess damage through well-known biochemical pathways. Interestingly, microangiopathy hits the bone marrow (BM) microenvironment with features similar to retinopathy, nephropathy and neuropathy. The BM represents a reservoir of progenitor cells for multiple lineages, not limited to the hematopoietic system and including endothelial cells, smooth muscle cells, cardiomyocytes, and osteogenic cells. All these multiple progenitor cell lineages are profoundly altered in the setting of diabetes in humans and animal models. Reduction of endothelial progenitor cells (EPCs) along with excess smooth muscle progenitor (SMP) and osteoprogenitor cells creates an imbalance that promote the development of micro- and macroangiopathy. Finally, an excess generation of BM-derived fusogenic cells has been found to contribute to diabetic complications in animal models. Taken together, a growing amount of literature attributes to circulating progenitor cells a multi-faceted role in the pathophysiology of DM, setting a novel scenario that puts BM and the blood at the centre of the stage.
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Affiliation(s)
- Gian Paolo Fadini
- Department of Medicine, University of Padua, 35100 Padua, Italy
- Laboratory of Experimental Diabetology, Venetian Institute of Molecular Medicine (VIMM), 35100 Padua, Italy
| | - Angelo Avogaro
- Department of Medicine, University of Padua, 35100 Padua, Italy
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21
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Bonvini S, Albiero M, Ferretto L, Angelini A, Battocchio P, Fedrigo M, Piazza M, Thiene G, Avogaro A, Fadini GP, Grego F. The peritoneum as a natural scaffold for vascular regeneration. PLoS One 2012; 7:e33557. [PMID: 22438949 PMCID: PMC3306415 DOI: 10.1371/journal.pone.0033557] [Citation(s) in RCA: 11] [Impact Index Per Article: 0.8] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/07/2011] [Accepted: 02/16/2012] [Indexed: 11/25/2022] Open
Abstract
Objective The peritoneum has the same developmental origin as blood vessels, is highly reactive and poorly thrombogenic. We hypothesize that parietal peritoneum can sustain development and regeneration of new vessels. Methods and Results The study comprised two experimental approaches. First, to test surgical feasibility and efficacy of the peritoneal vascular autograft, we set up an autologous transplantation procedure in pigs, where a tubularized parietal peritoneal graft was covered with a metal mesh and anastomosed end-to-end in the infrarenal aorta. Second, to dissect the contribution of graft vs host cells to the newly developed vessel wall, we performed human-to-rat peritoneal patch grafting in the abdominal aorta and examined the origin of endothelial and smooth muscle cells. In pig experiments, the graft remodeled to an apparently normal blood vessel, without thrombosis. Histology confirmed arterialization of the graft with complete endothelial coverage and neointimal hyperplasia in the absence of erosion, inflammation or thrombosis. In rats, immunostaining for human mitochondri revealed that endothelial cells and smooth muscle cells rarely were of human origin. Remodeling of the graft was mainly attributable to local cells with no clear evidence of c-kit+ endothelial progenitor cells or c-kit+ resident perivascular progenitor cells. Conclusions The parietal peritoneum can be feasibly used as a scaffold to sustain the regeneration of blood vessels, which appears to occur through the contribution of host-derived resident mature cells.
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Affiliation(s)
- Stefano Bonvini
- Vascular and Endovascular Surgery, Department of Cardiac, Thoracic and Vascular Sciences., University of Padova, Padova, Italy
- * E-mail: (GPF); (SB)
| | - Mattia Albiero
- Department of Medicine, University of Padova, Padova, Italy
- Laboratory of Experimental Diabetology, Venetian Institute of Molecular Medicine, Padova, Italy
| | - Luca Ferretto
- Vascular and Endovascular Surgery, Department of Cardiac, Thoracic and Vascular Sciences., University of Padova, Padova, Italy
| | - Annalisa Angelini
- Cardiovascular Pathology, Department of Cardiac, Thoracic and Vascular Sciences, University of Padova, Padova, Italy
| | - Piero Battocchio
- Vascular and Endovascular Surgery, Department of Cardiac, Thoracic and Vascular Sciences., University of Padova, Padova, Italy
| | - Marny Fedrigo
- Cardiovascular Pathology, Department of Cardiac, Thoracic and Vascular Sciences, University of Padova, Padova, Italy
| | - Michele Piazza
- Vascular and Endovascular Surgery, Department of Cardiac, Thoracic and Vascular Sciences., University of Padova, Padova, Italy
| | - Gaetano Thiene
- Cardiovascular Pathology, Department of Cardiac, Thoracic and Vascular Sciences, University of Padova, Padova, Italy
| | - Angelo Avogaro
- Department of Medicine, University of Padova, Padova, Italy
- Laboratory of Experimental Diabetology, Venetian Institute of Molecular Medicine, Padova, Italy
| | - Gian Paolo Fadini
- Department of Medicine, University of Padova, Padova, Italy
- Laboratory of Experimental Diabetology, Venetian Institute of Molecular Medicine, Padova, Italy
- * E-mail: (GPF); (SB)
| | - Franco Grego
- Vascular and Endovascular Surgery, Department of Cardiac, Thoracic and Vascular Sciences., University of Padova, Padova, Italy
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Procalcific phenotypic drift of circulating progenitor cells in type 2 diabetes with coronary artery disease. EXPERIMENTAL DIABETES RESEARCH 2012; 2012:921685. [PMID: 22474430 PMCID: PMC3299316 DOI: 10.1155/2012/921685] [Citation(s) in RCA: 33] [Impact Index Per Article: 2.5] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 12/09/2011] [Accepted: 12/21/2011] [Indexed: 12/20/2022]
Abstract
Diabetes mellitus (DM) alters circulating progenitor cells relevant for the pathophysiology of coronary artery disease (CAD). While endothelial progenitor cells (EPCs) are reduced, there is no data on procalcific polarization of circulating progenitors, which may contribute to vascular calcification in these patients. In a cohort of 107 subjects with and without DM and CAD, we analyzed the pro-calcific versus endothelial differentiation status of circulating CD34+ progenitor cells. Endothelial commitment was determined by expression of VEGFR-2 (KDR) and pro-calcific polarization by expression of osteocalcin (OC) and bone alkaline phosphatase (BAP). We found that DM patients had significantly higher expression of OC and BAP on circulating CD34+ cells than control subjects, especially in the presence of CAD. In patients with DM and CAD, the ratio of OC/KDR, BAP/KDR, and OC+BAP/KDR was about 3-fold increased than in other groups. EPCs cultured from DM patients with CAD occasionally formed structures highly suggestive of calcified nodules, and the expression of osteogenic markers by EPCs from control subjects was significantly increased in response to the toll-like receptor agonist LPS. In conclusion, circulating progenitor cells of diabetic patients show a phenotypic drift toward a pro-calcific phenotype that may be driven by inflammatory signals.
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Amelioration of glucose control mobilizes circulating pericyte progenitor cells in type 2 diabetic patients with microangiopathy. EXPERIMENTAL DIABETES RESEARCH 2012; 2012:274363. [PMID: 22474419 PMCID: PMC3299325 DOI: 10.1155/2012/274363] [Citation(s) in RCA: 12] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Subscribe] [Scholar Register] [Received: 12/05/2011] [Accepted: 12/20/2011] [Indexed: 11/30/2022]
Abstract
Chronic diabetic complications result from an imbalance between vascular damage and regeneration. Several circulating lineage-committed progenitor cells have been implicated, but no data are available on pericyte progenitor cells (PPCs). Based on the evidence that PPCs increase in cancer patients after chemotherapy, we explored whether circulating PPC levels are affected by glucose control in type 2 diabetic patients, in relation to the presence of chronic complications. We enumerated peripheral blood PPCs as Syto16+CD45−CD31−CD140b+ events by flow cytometry at baseline and after 3 and 6 months of glucose control by means of add-on basal insulin therapy on top of oral agents in 38 poorly controlled type 2 diabetic patients. We found that, in patients with microangiopathy (n = 23), the level of circulating PPCs increased about 2 fold after 3 months and then returned to baseline at 6 months. In patients without microangiopathy (control group, n = 15), PPCs remained fairly stable during the whole study period. No relationship was found between change in PPCs and macroangiopathy (either peripheral, coronary, or cerebrovascular). We conclude that glucose control transiently mobilizes PPCs diabetic patients with microangiopathy. Increase in PPCs may represent a vasoregenerative event or may be a consequence of ameliorated glucose control on microvascular lesions.
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