首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Eyeing the Extracellular Matrix in Vascular Development and Microvascular Diseases and Bridging the Divide between Vascular Mechanics and Function
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Eyeing the Extracellular Matrix in Vascular Development and Microvascular Diseases and Bridging the Divide between Vascular Mechanics and Function

机译:着眼于血管发育和微血管疾病的细胞外基质弥合血管力学与功能之间的鸿沟

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摘要

The extracellular matrix (ECM) is critical in all aspects of vascular development and health: supporting cell anchorage, providing structure, organization and mechanical stability, and serving as a sink for growth factors and sustained survival signals. Abnormal changes in ECM protein expression, organization, and/or properties, and the ensuing changes in vascular compliance affect vasodilator responses, microvascular pressure transmission, and collateral perfusion. The changes in microvascular compliance are independent factors initiating, driving, and/or exacerbating a plethora of microvascular diseases of the eye including diabetic retinopathy (DR) and vitreoretinopathy, retinopathy of prematurity (ROP), wet age-related macular degeneration (AMD), and neovascular glaucoma. Congruently, one of the major challenges with most vascular regenerative therapies utilizing localized growth factor, endothelial progenitor, or genetically engineered cell delivery, is the regeneration of blood vessels with physiological compliance properties. Interestingly, vascular cells sense physical forces, including the stiffness of their ECM, through mechanosensitive integrins, their associated proteins and the actomyosin cytoskeleton, which generates biochemical signals that culminate in a rapid expression of matricellular proteins such as cellular communication network 1 (CCN1) and CCN2 (aka connective tissue growth factor or CTGF). Loss or gain of function of these proteins alters genetic programs of cell growth, ECM biosynthesis, and intercellular signaling, that culminate in changes in cell behavior, polarization, and barrier function. In particular, the function of the matricellular protein CCN2/CTGF is critical during retinal vessel development and regeneration wherein new blood vessels form and invest a preformed avascular neural retina following putative gradients of matrix stiffness. These observations underscore the need for further in-depth characterization of the ECM-derived cues that dictate structural and functional properties of the microvasculature, along with the development of new therapeutic strategies addressing the ECM-dependent regulation of pathophysiological stiffening of blood vessels in ischemic retinopathies.
机译:细胞外基质(ECM)在血管发育和健康的各个方面都至关重要:支持细胞锚定,提供结构,组织和机械稳定性,并充当生长因子和持续生存信号的吸收者。 ECM蛋白表达,组织和/或特性的异常变化以及随之而来的血管顺应性变化会影响血管舒张剂反应,微血管压力传递和附带灌注。微血管顺应性的变化是引发,驱动和/或加重眼部微血管疾病的独立因素,这些疾病包括糖尿病性视网膜病变(DR)和玻璃体视网膜病变,早产儿视网膜病变(ROP),与年龄相关的湿性黄斑变性(AMD),和新生血管性青光眼。一致地,利用局部生长因子,内皮祖细胞或基因工程细胞递送的大多数血管再生疗法的主要挑战之一是具有生理顺应性的血管再生。有趣的是,血管细胞通过机械敏感的整联蛋白,其相关蛋白和放线菌素细胞骨架感知物理力,包括其ECM的刚度,从而产生生化信号,最终导致基质细胞蛋白的快速表达,例如细胞通讯网络1(CCN1)和CCN2(又名结缔组织生长因子或CTGF)。这些蛋白质功能的丧失或获得会改变细胞生长,ECM生物合成和细胞间信号传导的遗传程序,最终导致细胞行为,极化和屏障功能的改变。尤其是,基质细胞蛋白CCN2 / CTGF的功能在视网膜血管发育和再生过程中至关重要,其中,新血管根据假定的基质刚度梯度形成并投资了预先形成的无血管神经视网膜。这些观察结果强调,需要进一步深入表征表征ECM的结构和功能特性的ECM线索,以及开发新的治疗策略,以解决缺血性视网膜病变中血管病理生理性硬化的ECM依赖性调节。 。

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