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Ortega Serrano PV, Guzmán A, Hernández-Coronado CG, Castillo-Juárez H, Rosales-Torres AM. Reduction in the mRNA expression of sVEGFR1 and sVEGFR2 is associated with the selection of dominant follicle in cows. Reprod Domest Anim 2016; 51:985-991. [PMID: 27650571 DOI: 10.1111/rda.12777] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.6] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 06/09/2016] [Accepted: 08/02/2016] [Indexed: 11/28/2022]
Abstract
The vascular endothelial growth factor (VEGF) is essential for follicular development by promoting follicular angiogenesis, as well as for the proliferation and survival of granulosa cells. The biological effects of VEGF are regulated by two membrane receptors, VEGFR1 and VEGFR2, and two soluble receptors, sVEGFR1 and sVEGFR2, which play an antagonistic role. Thus, the objective of this study was to identify the mRNA expression pattern of total VEGF, VEGFR1, VEGFR2, sVEGFR1 and sVEGFR2 in bovine preselected follicles (PRF) and post-selected follicles (POF). The mRNA expression of these five genes in both granulosa cells (GC) and theca cells (TC) was compared between follicles classified as PRF and POF based on their diameter and on their ratio of estradiol/progesterone (E2/P4). Results showed a lower expression of mRNA of sVEGFR1 and sVEGFR2 in POF than in PRF (p < .05). Regarding the mRNA expression of total VEGF, VEGFR1 and VEGFR2, there was no difference between POF and PRF follicles (p > .05). Our results showed that the mRNA expression of VEGFR2 and sVEGFR1 was more abundant than the expression of VEGFR1 and sVEGFR2, while GC was the main source of mRNA for total VEGF. On the other hand, TC was the follicular compartment where the receptors were most expressed. Our results suggest that non-dominant follicles maintain a greater concentration of the mRNA expression of both membrane and soluble VEGF receptors. On the other hand, follicular dominance is related to a reduction in the mRNA expression of sVEGFR1 and sVEGFR2, which may favour VEGF binding with VEGFR2 and, hence, improve the follicular health and development.
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Affiliation(s)
- P V Ortega Serrano
- Universidad Autónoma Metropolitana-Xochimilco Estudiante de Posgrado en Ciencias Agropecuarias, Ciudad de México, México
| | - A Guzmán
- Laboratorio Bioquímica de la Reproducción, Departamento de Producción Agrícola y Animal, Universidad Autónoma Metropolitana-Xochimilco, Ciudad de México, México
| | - C G Hernández-Coronado
- Universidad Autónoma Metropolitana-Xochimilco Estudiante de Posgrado en Ciencias Agropecuarias, Ciudad de México, México
| | - H Castillo-Juárez
- Laboratorio Bioquímica de la Reproducción, Departamento de Producción Agrícola y Animal, Universidad Autónoma Metropolitana-Xochimilco, Ciudad de México, México
| | - A M Rosales-Torres
- Laboratorio Bioquímica de la Reproducción, Departamento de Producción Agrícola y Animal, Universidad Autónoma Metropolitana-Xochimilco, Ciudad de México, México
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Raghu H, Nalla AK, Gondi CS, Gujrati M, Dinh DH, Rao JS. uPA and uPAR shRNA inhibit angiogenesis via enhanced secretion of SVEGFR1 independent of GM-CSF but dependent on TIMP-1 in endothelial and glioblastoma cells. Mol Oncol 2011; 6:33-47. [PMID: 22177802 DOI: 10.1016/j.molonc.2011.11.008] [Citation(s) in RCA: 23] [Impact Index Per Article: 1.6] [Reference Citation Analysis] [Abstract] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/28/2011] [Revised: 11/22/2011] [Accepted: 11/23/2011] [Indexed: 12/31/2022] Open
Abstract
The uPA/uPAR system is known to play a critical role in angiogenesis of glioblastoma. Previously, we have shown that shRNA against uPA and uPAR attenuates angiogenesis by blocking nuclear translocation of angiogenin, inhibition of angiopoietin/Tie2 signaling, and regulating several other pro-angiogenic, angiostatic and anti-angiogenic molecules. Further analysis revealed that GM-CSF, a pleiotropic cytokine, was significantly inhibited in U87MG and 4910 co-cultures with endothelial cells transfected with shRNA against uPA and uPAR. The role of the uPA/uPAR system in this process is not completely understood. Analysis of tumor conditioned medium of U87MG, 4910 and HMECs transfected with shRNA against uPA or uPAR alone or in combination (pU2) revealed inhibition of GM-CSF-enhanced secretion of SVEGFR1 as shown by Western blotting and ELISA. Moreover, phosphorylation of JAK2 and STAT5, the downstream effectors of GM-CSF signaling, was also inhibited in all three cell lines. Phosphorylation at Tyr 166 position of the GM-CSFRβ subunit, the signal activating subunit of the GM-CSF receptor, was inhibited in HMEC, U87MG and 4910 cells. Further analysis revealed that shRNA against uPA and/or uPAR increased secretion of TIMP-1, which is known to enhance SVEGFR1 secretion in endothelial cells. Moreover, addition of purified uPA (with and without GM-CSF) activated JAK2/STAT5 signaling in HMEC. Exogenous addition of SVEGFR1 to pU2 tumor conditioned medium enhanced inhibition of VEGF-induced endothelial capillary tube formation as assessed by an in vitro angiogenesis assay. To determine the significance of these events in vivo, nude mice with pre-established tumors treated with shRNA against uPA and/or uPAR showed decreased levels of GM-CSF and increased levels of SVEGFR1 and TIMP-1 when compared with controls. Enhanced secretion of SVEGFR1 by puPA, puPAR and pU2 in endothelial and GBM cells was mediated indirectly by MMP-7 and augmented by ectodomain shedding of VEGFr1 by tyrosine phosphorylation at the 1213 position. Taken together, these results suggest that the uPA/uPAR system could prove beneficial as an indirect target for inhibition of angiogenesis in glioblastoma.
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Affiliation(s)
- Hari Raghu
- Department of Cancer Biology and Pharmacology, University of Illinois College of Medicine, Peoria, IL 61605, USA
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Gould PS, Gu M, Liao J, Ahmad S, Cudmore MJ, Ahmed A, Vatish M. Upregulation of Urotensin II Receptor in Preeclampsia Causes In Vitro Placental Release of Soluble Vascular Endothelial Growth Factor Receptor 1 in Hypoxia. Hypertension 2010; 56:172-8. [PMID: 20479331 DOI: 10.1161/hypertensionaha.110.152074] [Citation(s) in RCA: 18] [Impact Index Per Article: 1.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/14/2022]
Affiliation(s)
- Phillip S. Gould
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
| | - Mei Gu
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
| | - Jianqin Liao
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
| | - Shakil Ahmad
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
| | - Melissa J. Cudmore
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
| | - Asif Ahmed
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
| | - Manu Vatish
- From the Clinical Sciences Research Institute (P.S.G., M.G., J.L., M.V.), Warwick Medical School, University of Warwick, Coventry, United Kingdom; Albert Einstein College of Medicine (M.V.), Bronx, NY; Department of Reproductive and Vascular Biology (S.A., M.J.C., A.A.), Institute of Biomedical Research, Medical School, University of Birmingham, Edgbaston, Birmingham, West Midlands, United Kingdom; Birmingham Women’s Hospital (S.A., M.J.C., A.A.), Edgbaston, Birmingham, West Midlands, United
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