1
|
Muzorewa TT, Buerk DG, Jaron D, Barbee KA. Coordinated regulation of endothelial calcium signaling and shear stress-induced nitric oxide production by PKCβ and PKCη. Cell Signal 2021; 87:110125. [PMID: 34474112 DOI: 10.1016/j.cellsig.2021.110125] [Citation(s) in RCA: 1] [Impact Index Per Article: 0.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/23/2021] [Revised: 08/20/2021] [Accepted: 08/23/2021] [Indexed: 11/24/2022]
Abstract
BACKGROUND Protein Kinase C (PKC) is a promiscuous serine/threonine kinase regulating vasodilatory responses in vascular endothelial cells. Calcium-dependent PKCbeta (PKCβ) and calcium-independent PKCeta (PKCη) have both been implicated in the regulation and dysfunction of endothelial responses to shear stress and agonists. OBJECTIVE We hypothesized that PKCβ and PKCη differentially modulate shear stress-induced nitric oxide (NO) production by regulating the transduced calcium signals and the resultant eNOS activation. As such, this study sought to characterize the contribution of PKCη and PKCβ in regulating calcium signaling and endothelial nitric oxide synthase (eNOS) activation after exposure of endothelial cells to ATP or shear stress. METHODS Bovine aortic endothelial cells were stimulated in vitro under pharmacological inhibition of PKCβ with LY333531 or PKCη targeting with a pseudosubstrate inhibitor. The participation of PKC isozymes in calcium flux, eNOS phosphorylation and NO production was assessed following stimulation with ATP or shear stress. RESULTS PKCη proved to be a robust regulator of agonist- and shear stress-induced eNOS activation, modulating calcium fluxes and tuning eNOS activity by multi-site phosphorylation. PKCβ showed modest influence in this pathway, promoting eNOS activation basally and in response to shear stress. Both PKC isozymes contributed to the constitutive and induced phosphorylation of eNOS. The observed PKC signaling architecture is intricate, recruiting Src to mediate a portion of PKCη's control on calcium entry and eNOS phosphorylation. Elucidation of the importance of PKCη in this pathway was tempered by evidence of a single stimulus producing concurrent phosphorylation at ser1179 and thr497 which are antagonistic to eNOS activity. CONCLUSIONS We have, for the first time, shown in a single species in vitro that shear stress- and ATP-stimulated NO production are differentially regulated by classical and novel PKCs. This study furthers our understanding of the PKC isozyme interplay that optimizes NO production. These considerations will inform the ongoing design of drugs for the treatment of PKC-sensitive cardiovascular pathologies.
Collapse
Affiliation(s)
- Tenderano T Muzorewa
- School of Biomedical Engineering, Science, and Health Systems, Drexel University, 3141 Market St., Philadelphia, PA 19104, USA
| | - Donald G Buerk
- School of Biomedical Engineering, Science, and Health Systems, Drexel University, 3141 Market St., Philadelphia, PA 19104, USA
| | - Dov Jaron
- School of Biomedical Engineering, Science, and Health Systems, Drexel University, 3141 Market St., Philadelphia, PA 19104, USA
| | - Kenneth A Barbee
- School of Biomedical Engineering, Science, and Health Systems, Drexel University, 3141 Market St., Philadelphia, PA 19104, USA.
| |
Collapse
|
2
|
Grinnell KL, Harrington EO. Interplay between FAK, PKCδ, and p190RhoGAP in the regulation of endothelial barrier function. Microvasc Res 2011; 83:12-21. [PMID: 21549132 DOI: 10.1016/j.mvr.2011.04.005] [Citation(s) in RCA: 16] [Impact Index Per Article: 1.1] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/20/2011] [Revised: 04/15/2011] [Accepted: 04/16/2011] [Indexed: 11/16/2022]
Abstract
Disruption of either intercellular or extracellular junctions involved in maintaining endothelial barrier function can result in increased endothelial permeability. Increased endothelial permeability, in turn, allows for the unregulated movement of fluid and solutes out of the vasculature and into the surrounding connective tissue, contributing to a number of disease states, including stroke and pulmonary edema (Ermert et al., 1995; Lee and Slutsky, 2010; van Hinsbergh, 1997; Waller et al., 1996; Warboys et al., 2010). Thus, a better understanding of the molecular mechanisms by which endothelial cell junction integrity is controlled is necessary for development of therapies aimed at treating such conditions. In this review, we will discuss the functions of three signaling molecules known to be involved in regulation of endothelial permeability: focal adhesion kinase (FAK), protein kinase C delta (PKCδ), and p190RhoGAP (p190). We will discuss the independent functions of each protein, as well as the interplay that exists between them and the effects of such interactions on endothelial function.
Collapse
Affiliation(s)
- Katie L Grinnell
- Vascular Research Laboratory, Providence VA Medical Center, Department of Medicine, Warren Alpert Medical School of Brown University, Providence, RI 02908, USA
| | | |
Collapse
|
5
|
Chen H, Fitzgerald R, Brown AT, Qureshi I, Breckenridge J, Kazi R, Wang Y, Wu Y, Zhang X, Mukunyadzi P, Eidt J, Moursi MM. Identification of a homocysteine receptor in the peripheral endothelium and its role in proliferation. J Vasc Surg 2005; 41:853-60. [PMID: 15886671 DOI: 10.1016/j.jvs.2005.02.021] [Citation(s) in RCA: 32] [Impact Index Per Article: 1.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/29/2022]
Abstract
BACKGROUND Homocysteine, a risk factor for atherosclerosis, increases intimal hyperplasia after carotid endarterectomy with associated smooth muscle cell proliferation and modulation of cytokines. The N-methyl-D-aspartate receptor (NMDAr), a glutamate-gated ion channel receptor, is associated with homocysteine-induced cerebrovascular injury; however, the receptor has not been identified in peripheral vascular cells, nor has any interaction with homocysteine been clarified. Our objectives were first, to identify NMDAr in rat carotid artery and rat aorta endothelial cells (RAEC); and second, to determine whether homocysteine activates NMDAr in the endothelium. METHODS NR1 and NR2A, two NMDAr subunits, were probed in rat carotid arteries by immunohistochemistry. RNA was isolated from RAECs, and expression of all NMDAr subunits (NR1, 2A, 2B, 2C, and 2D) were examined by RT-PCR and sequencing. For receptor protein expression, RAEC were incubated with different homocysteine concentrations and incubation times and also were treated with 50 microM homocysteine and/or preincubated with 50 microM dizocilpine MK-801, an NMDAr inhibitor. RESULTS Both NR1 and NR2A were expressed in rat carotid arteries. All NMDAr subunits were expressed in the RAECs, and there was 92% to 100% similarity compared with rat NMDAr from the National Center for Biotechnology Information (NCBI) GenBank. Homocysteine upregulated NR1 expression and increased cell proliferation. RAEC pretreatment with MK-801 reduced homocysteine-mediated cell proliferation. CONCLUSION This study is the first to show that NMDAr exists in the peripheral vasculature, and that homocysteine may act via NMDAr to increase intimal hyperplasia. CLINICAL RELEVANCE Our objectives included the identification of a homocysteine receptor in the peripheral vasculature. The possible inhibition of a homocysteine receptor to prevent intimal hyperplasia rather than treat established stenosis would make a significant clinical impact. This will open further avenues of study in determining the role of homocysteine in the pathogenesis of intimal hyperplasia.
Collapse
Affiliation(s)
- Hongjiang Chen
- Department of Vascular Surgery, Central Arkansas Veterans Healthcare Systems, Little Rock, AR 72205, USA
| | | | | | | | | | | | | | | | | | | | | | | |
Collapse
|
7
|
Slevin M, Kumar S, Gaffney J. Angiogenic oligosaccharides of hyaluronan induce multiple signaling pathways affecting vascular endothelial cell mitogenic and wound healing responses. J Biol Chem 2002; 277:41046-59. [PMID: 12194965 DOI: 10.1074/jbc.m109443200] [Citation(s) in RCA: 257] [Impact Index Per Article: 11.2] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 11/06/2022] Open
Abstract
Hyaluronan (HA) is a large nonsulfated glycosaminoglycan and an important regulator of angiogenesis, in particular, the growth and migration of vascular endothelial cells. We have identified some of the key intermediates responsible for induction of mitogenesis and wound recovery. Treatment of bovine aortic endothelial cells with oligosaccharides of hyaluronan (o-HA) resulted in rapid tyrosine phosphorylation and plasma membrane translocation of phospholipase Cgamma1 (PLCgamma1). Cytoplasmic loading with inhibitory antibodies to PLCgamma1, Gbeta, and Galpha(i/o/t/z) inhibited activation of extracellular-regulated kinase 1/2 (ERK1/2). Treatment with the Galpha(i/o) inhibitor, pertussis toxin, reduced o-HA-induced PLCgamma1 tyrosine phosphorylation, protein kinase C (PKC) alpha and beta1/2 membrane translocation, ERK1/2 activation, mitogenesis, and wound recovery, suggesting a mechanism for o-HA-induced angiogenesis through G-proteins, PLCgamma1, and PKC. In particular, we demonstrated a possible role for PKCalpha in mitogenesis and PKCbeta1/2 in wound recovery. Using antisense oligonucleotides and the Ras farnesylation inhibitor FTI-277, we showed that o-HA-induced bovine aortic endothelial cell proliferation, wound recovery, and ERK1/2 activation were also partially dependent on Ras activation, and that o-HA-stimulated tyrosine phosphorylation of the adapter protein Shc, as well as its association with Sos1. Binding of Src to Shc was required for its activation and for Ras-dependent activation of ERK1/2, cell proliferation, and wound recovery. Neither Src nor Ras activation was inhibited by pertussis toxin, suggesting that their activation was independent of heterotrimeric G-proteins. However, the specific Src kinase inhibitor PP2 inhibited Gbeta subunit co-precipitation with PLCgamma1, suggesting a possible role for Src in activation of PLCgamma1 and interaction between two distinct o-HA-induced signaling pathways.
Collapse
Affiliation(s)
- Mark Slevin
- Department of Biological Sciences, Manchester Metropolitan University, Manchester M1 5GD, UK.
| | | | | |
Collapse
|
8
|
Mäkinen T, Veikkola T, Mustjoki S, Karpanen T, Catimel B, Nice EC, Wise L, Mercer A, Kowalski H, Kerjaschki D, Stacker SA, Achen MG, Alitalo K. Isolated lymphatic endothelial cells transduce growth, survival and migratory signals via the VEGF-C/D receptor VEGFR-3. EMBO J 2001; 20:4762-73. [PMID: 11532940 PMCID: PMC125596 DOI: 10.1093/emboj/20.17.4762] [Citation(s) in RCA: 631] [Impact Index Per Article: 26.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/16/2022] Open
Abstract
Vascular endothelial growth factor receptor-3 (VEGFR-3/Flt4) binds two known members of the VEGF ligand family, VEGF-C and VEGF-D, and has a critical function in the remodelling of the primary capillary vasculature of midgestation embryos. Later during development, VEGFR-3 regulates the growth and maintenance of the lymphatic vessels. In the present study, we have isolated and cultured stable lineages of blood vascular and lymphatic endothelial cells from human primary microvascular endothelium by using antibodies against the extracellular domain of VEGFR-3. We show that VEGFR-3 stimulation alone protects the lymphatic endothelial cells from serum deprivation-induced apoptosis and induces their growth and migration. At least some of these signals are transduced via a protein kinase C-dependent activation of the p42/p44 MAPK signalling cascade and via a wortmannin-sensitive induction of Akt phosphorylation. These results define the critical role of VEGF-C/VEGFR-3 signalling in the growth and survival of lymphatic endothelial cells. The culture of isolated lymphatic endothelial cells should now allow further studies of the molecular properties of these cells.
Collapse
Affiliation(s)
| | | | - Satu Mustjoki
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | | | - Bruno Catimel
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Edouard C. Nice
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Lyn Wise
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Andrew Mercer
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Heinrich Kowalski
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Dontscho Kerjaschki
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Steven A. Stacker
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Marc G. Achen
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| | - Kari Alitalo
- Molecular/Cancer Biology Laboratory and Ludwig Institute for Cancer Research, Haartman Institute and Helsinki University Hospital, Biomedicum Helsinki, University of Helsinki, FIN-00014 Helsinki,
Stem Cell Laboratory and Laboratory of Hematology, Department of Clinical Chemistry, Helsinki University Hospital, FIN-00029 Helsinki, Finland, Ludwig Institute for Cancer Research, Royal Melbourne Hospital, Victoria 3050, Australia, Department of Microbiology, University of Otago, Dunedin, New Zealand and Department of Pathology, University of Vienna Medical School, A-1090 Vienna, Austria Corresponding author e-mail:
| |
Collapse
|