Kindlin-2 controls angiogenesis through modulating Notch1 signaling

被引:0
作者
Yuechao Dong
Guixing Ma
Xiaoting Hou
Yingying Han
Zhen Ding
Wanze Tang
Litong Chen
Yangshan Chen
Bo Zhou
Feng Rao
Kaosheng Lv
Changzheng Du
Huiling Cao
机构
[1] Southern University of Science and Technology,Department of Biochemistry, School of Medicine, Southern University of Science and Technology, Guangdong Provincial Key Laboratory of Cell Microenvironment and Disease Research, Key University Laboratory of Met
[2] Southern University of Science and Technology,undefined
来源
Cellular and Molecular Life Sciences | 2023年 / 80卷
关键词
Endothelial Kindlin-2; Angiogenesis; Notch1; NICD;
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摘要
Kindlin-2 is critical for development and homeostasis of key organs, including skeleton, liver, islet, etc., yet its role in modulating angiogenesis is unknown. Here, we report that sufficient KINDLIN-2 is extremely important for NOTCH-mediated physiological angiogenesis. The expression of KINDLIN-2 in HUVECs is significantly modulated by angiogenic factors such as vascular endothelial growth factor A or tumor necrosis factor α. A strong co-localization of CD31 and Kindlin-2 in tissue sections is demonstrated by immunofluorescence staining. Endothelial-cell-specific Kindlin-2 deletion embryos die on E10.5 due to hemorrhage caused by the impaired physiological angiogenesis. Experiments in vitro show that vascular endothelial growth factor A-induced multiple functions of endothelial cells, including migration, matrix proteolysis, morphogenesis and sprouting, are all strengthened by KINDLIN-2 overexpression and severely impaired in the absence of KINDLIN-2. Mechanistically, we demonstrate that KINDLIN-2 inhibits the release of Notch intracellular domain through binding to and maintaining the integrity of NOTCH1. The impaired angiogenesis and avascular retinas caused by KINDLIN-2 deficiency can be rescued by DAPT, an inhibitor of γ-secretase which releases the intracellular domain from NOTCH1. Moreover, we demonstrate that high glucose stimulated hyperactive angiogenesis by increasing KINDLIN-2 expression could be prevented by KINDLIN-2 knockdown, indicating Kindlin-2 as a potential therapeutic target in treatment of diabetic retinopathy. Our study for the first time demonstrates the significance of Kindlin-2 in determining Notch-mediated angiogenesis during development and highlights Kindlin-2 as the potential therapeutic target in angiogenic diseases, such as diabetic retinopathy.
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  • [1] Ma Q(2020)Role of melatonin in controlling angiogenesis under physiological and pathological conditions Angiogenesis 23 91-104
  • [2] Reiter RJ(2023)A novel sprayable thermosensitive hydrogel coupled with zinc modified metformin promotes the healing of skin wound Bioact Mater 20 610-626
  • [3] Chen Y(2021)Propranolol participates in the treatment of infantile hemangioma by inhibiting HUVECs proliferation, migration, invasion, and tube formation Biomed Res Int 2021 6636891-927
  • [4] Liu Z(2017)Dll4 and Notch signalling couples sprouting angiogenesis and artery formation Nat Cell Biol 19 915-119
  • [5] Tang W(2008)Vascular permeability, vascular hyperpermeability and angiogenesis Angiogenesis 11 109-6200
  • [6] Liu J(2022)miR-155 regulates physiological angiogenesis but an miR-155-rich microenvironment disrupts the process by promoting unproductive endothelial sprouting Cell Mol Life Sci 79 208-2004
  • [7] Han Y(2020)Focal adhesion protein Kindlin-2 regulates bone homeostasis in mice Bone Res 2 2-4987
  • [8] Yan Q(2022)Kindlin-2 inhibits Nlrp3 inflammasome activation in nucleus pulposus to maintain homeostasis of the intervertebral disc Bone Res 10 5-5383
  • [9] Dong Y(2020)Kindlin-2 regulates skeletal homeostasis by modulating PTH1R in mice Signal Transduct Target Ther 5 297-6285
  • [10] Liu X(2015)Kindlin-2 controls TGF-beta signalling and Sox9 expression to regulate chondrogenesis Nat Commun 6 7531-2499