ORAI1 Activates Proliferation of Lymphatic Endothelial Cells in Response to Laminar Flow Through Krüppel-Like Factors 2 and 4
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Y. Gwack | S. Srikanth | J. Peti-Peterdi | Young-Kwon Hong | Alex K. Wong | D. Choi | Sunju Lee | C. Koh | A. Hamik | Georgina Gyarmati | James L. Burford | Eunson Jung | Mingu Hong | Eunkyung Park | Young Jin N. Seong | Evgenii Boriushkin | Y. J. Seong | Dongwon Choi | Sonal Srikanth
[1] H. Vogel,et al. Laminar flow downregulates Notch activity to promote lymphatic sprouting , 2017, The Journal of clinical investigation.
[2] Qi-Long Ying,et al. Efficient Assessment of Developmental, Surgical and Pathological Lymphangiogenesis Using a Lymphatic Reporter Mouse and Its Embryonic Stem Cells , 2016, PloS one.
[3] Zinan Zhou,et al. Cerebral cavernous malformations arise from endothelial gain of MEKK3-KLF2/4 signaling , 2016, Nature.
[4] Xiaoqing Zeng,et al. Kruppel-like factor 2 inhibit the angiogenesis of cultured human liver sinusoidal endothelial cells through the ERK1/2 signaling pathway. , 2015, Biochemical and biophysical research communications.
[5] P. Davies,et al. Lymph flow regulates collecting lymphatic vessel maturation in vivo. , 2015, The Journal of clinical investigation.
[6] L. Pfeffer,et al. KLF4 Promotes Angiogenesis by Activating VEGF Signaling in Human Retinal Microvascular Endothelial Cells , 2015, PloS one.
[7] J. Moore,et al. Measurement of shear stress-mediated intracellular calcium dynamics in human dermal lymphatic endothelial cells , 2015, American journal of physiology. Heart and circulatory physiology.
[8] A. Zeiher,et al. Laminar Shear Stress Inhibits Endothelial Cell Metabolism via KLF2-Mediated Repression of PFKFB3 , 2015, Arteriosclerosis, thrombosis, and vascular biology.
[9] Tyler D Ross,et al. Vascular remodeling is governed by a VEGFR3-dependent fluid shear stress set point , 2014, eLife.
[10] N. Yuldasheva,et al. Piezo1 integration of vascular architecture with physiological force , 2014, Nature.
[11] Shu Chien,et al. Piezo1, a mechanically activated ion channel, is required for vascular development in mice , 2014, Proceedings of the National Academy of Sciences.
[12] Sharon Gerecht,et al. Recapitulating physiological and pathological shear stress and oxygen to model vasculature in health and disease , 2014, Scientific Reports.
[13] M. Ishikawa,et al. Endothelial Krüppel-like Factor 4 Regulates Angiogenesis and the Notch Signaling Pathway* , 2014, The Journal of Biological Chemistry.
[14] G. Eades,et al. The Krüppel-like factor 2 and Krüppel-like factor 4 genes interact to maintain endothelial integrity in mouse embryonic vasculogenesis , 2013, BMC Developmental Biology.
[15] B. Ray,et al. Loss of Epigenetic Kruppel-like Factor 4 Histone Deacetylase (KLF-4-HDAC)-mediated Transcriptional Suppression Is Crucial in Increasing Vascular Endothelial Growth Factor (VEGF) Expression in Breast Cancer* , 2013, The Journal of Biological Chemistry.
[16] D. Beech. Orai1 calcium channels in the vasculature , 2012, Pflügers Archiv - European Journal of Physiology.
[17] M. Saint-Geniez,et al. Role of shear-stress-induced VEGF expression in endothelial cell survival , 2012, Journal of Cell Science.
[18] M. Schwartz,et al. Lymphatics thrive on stress: mechanical force in lymphatic development , 2012, The EMBO journal.
[19] G. Breier,et al. Mechanoinduction of lymph vessel expansion , 2012, The EMBO journal.
[20] R. Adams,et al. Mechanotransduction, PROX1, and FOXC2 cooperate to control connexin37 and calcineurin during lymphatic-valve formation. , 2012, Developmental cell.
[21] Y. Gwack,et al. ORAI1 Deficiency Impairs Activated T Cell Death and Enhances T Cell Survival , 2011, The Journal of Immunology.
[22] Alberto Smith,et al. Genes regulating lymphangiogenesis control venous valve formation and maintenance in mice. , 2011, The Journal of clinical investigation.
[23] H. Chung,et al. Visualization of lymphatic vessels by Prox1-promoter directed GFP reporter in a bacterial artificial chromosome-based transgenic mouse. , 2011, Blood.
[24] A. Barberis,et al. Ephrin-B2 controls VEGF-induced angiogenesis and lymphangiogenesis , 2010, Nature.
[25] Z. Jin,et al. Fluid shear stress stimulates phosphorylation-dependent nuclear export of HDAC5 and mediates expression of KLF2 and eNOS. , 2010, Blood.
[26] J. Breslin,et al. Lymphatic endothelial cells adapt their barrier function in response to changes in shear stress. , 2009, Lymphatic research and biology.
[27] Sreekanth H. Chalasani,et al. Imaging neural activity in worms, flies and mice with improved GCaMP calcium indicators , 2009, Nature Methods.
[28] J. Putney. Capacitative calcium entry: from concept to molecules , 2009, Immunological reviews.
[29] S. Jameson,et al. KLF2 transcription-factor deficiency in T cells results in unrestrained cytokine production and upregulation of bystander chemokine receptors. , 2009, Immunity.
[30] Saptarsi M. Haldar,et al. Kruppel-like Factor 2 Inhibits Hypoxia-inducible Factor 1α Expression and Function in the Endothelium* , 2009, The Journal of Biological Chemistry.
[31] P. Krieg,et al. Krüppel-like factor 2 cooperates with the ETS family protein ERG to activate Flk1 expression during vascular development , 2009, Development.
[32] V. Kalra,et al. Phosphate-buffered saline-based nucleofection of primary endothelial cells. , 2009, Analytical biochemistry.
[33] Young-Kwon Hong,et al. Prox1 physically and functionally interacts with COUP-TFII to specify lymphatic endothelial cell fate. , 2009, Blood.
[34] Xin-Yun Huang,et al. Orai1 and STIM1 are critical for breast tumor cell migration and metastasis. , 2009, Cancer cell.
[35] K. Rajewsky,et al. Hair Loss and Defective T- and B-Cell Function in Mice Lacking ORAI1 , 2008, Molecular and Cellular Biology.
[36] H. Augustin,et al. Flow‐dependent regulation of angiopoietin‐2 , 2008, Journal of cellular physiology.
[37] B. Sumpio,et al. Effects of different types of fluid shear stress on endothelial cell proliferation and survival , 2007, Journal of cellular physiology.
[38] E. Yildirim,et al. Orai proteins interact with TRPC channels and confer responsiveness to store depletion , 2007, Proceedings of the National Academy of Sciences.
[39] Gerard L Cote,et al. Lymph Flow, Shear Stress, and Lymphocyte Velocity in Rat Mesenteric Prenodal Lymphatics , 2006, Microcirculation.
[40] M. Rondaij,et al. KLF2 provokes a gene expression pattern that establishes functional quiescent differentiation of the endothelium. , 2006, Blood.
[41] Bogdan Tanasa,et al. A mutation in Orai1 causes immune deficiency by abrogating CRAC channel function , 2006, Nature.
[42] Jay W. Shin,et al. Prox1 promotes lineage-specific expression of fibroblast growth factor (FGF) receptor-3 in lymphatic endothelium: a role for FGF signaling in lymphangiogenesis. , 2005, Molecular biology of the cell.
[43] D. Mukhopadhyay,et al. Inhibition of Vascular Permeability Factor/Vascular Endothelial Growth Factor-mediated Angiogenesis by the Kruppel-like Factor KLF2* , 2005, Journal of Biological Chemistry.
[44] RyozoNagai,et al. Vascular Implications of the Krüppel-Like Family of Transcription Factors , 2005 .
[45] F. Kudo,et al. Differential effects of orbital and laminar shear stress on endothelial cells. , 2005, Journal of vascular surgery.
[46] K. Kaestner,et al. Loss of Klf4 in mice causes altered proliferation and differentiation and precancerous changes in the adult stomach. , 2005, Gastroenterology.
[47] Melody A Swartz,et al. Interstitial flow differentially stimulates blood and lymphatic endothelial cell morphogenesis in vitro. , 2004, Microvascular research.
[48] B. Berk,et al. Ligand-Independent Activation of Vascular Endothelial Growth Factor Receptor 2 by Fluid Shear Stress Regulates Activation of Endothelial Nitric Oxide Synthase , 2003, Circulation research.
[49] Melody A. Swartz,et al. Interstitial Flow as a Guide for Lymphangiogenesis , 2003, Circulation research.
[50] M. Swartz,et al. The Role of Interstitial Stress in Lymphatic Function and Lymphangiogenesis , 2002, Annals of the New York Academy of Sciences.
[51] Nathalie Perreault,et al. The zinc-finger transcription factor Klf4 is required for terminal differentiation of goblet cells in the colon. , 2002, Development.
[52] I Kimber,et al. Development of non-radio isotopic endpoint of murine local lymph node assay based on 5-bromo-2'-deoxyuridine (BrdU) incorporation. , 2001, Toxicology letters.
[53] S. Usami,et al. Molecular mechanism of endothelial growth arrest by laminar shear stress. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[54] M. Nehls,et al. Shear stress inhibits apoptosis of human endothelial cells , 1996, FEBS letters.
[55] P. Davies,et al. Flow-mediated endothelial mechanotransduction. , 1995, Physiological reviews.
[56] R M Nerem,et al. Vascular endothelial cell proliferation in culture and the influence of flow. , 1990, Biomaterials.
[57] C F Dewey,et al. The dynamic response of vascular endothelial cells to fluid shear stress. , 1981, Journal of biomechanical engineering.
[58] A. Zeiher,et al. Laminar Shear Stress Inhibits Endothelial Cell Metabolism via Krüppel-Like Factor 2 – Mediated Repression of 6-Phosphofructo-2-Kinase / Fructose-2 , 6-Biphosphatase-3 , 2014 .
[59] M. Trebak,et al. Emerging roles for native Orai Ca2+ channels in cardiovascular disease. , 2013, Current topics in membranes.
[60] Yuzhi Zhang,et al. Defining the regulation of KLF4 expression and its downstream transcriptional targets in vascular endothelial cells. , 2010, Biochemical and biophysical research communications.
[61] Z. Jin,et al. Fluid shear stress stimulates phosphorylation-dependent nuclear export of HDAC 5 and mediates expression of KLF 2 and eNOS , 2010 .
[62] Luo Yu-yu. Role of Krüppel-like transcription factors in endothelial biology , 2009 .
[63] R. Boon,et al. Key transcriptional regulators of the vasoprotective effects of shear stress , 2009, Hämostaseologie.
[64] W. Aird,et al. Hemodynamics in the Determination of Endothelial Phenotype and Flow Mechanotransduction , 2007 .
[65] A. Bollinger,et al. Flow velocity of single lymphatic capillaries in human skin. , 1996, The American journal of physiology.
[66] R K Jain,et al. Transport in lymphatic capillaries. II. Microscopic velocity measurement with fluorescence photobleaching. , 1996, The American journal of physiology.