Caporali Andrea, Meloni Marco, Nailor Audrey, Mitić Tijana, Shantikumar Saran, Riu Federica, Sala-Newby Graciela B, Rose Lorraine, Besnier Marie, Katare Rajesh, Voellenkle Christine, Verkade Paul, Martelli Fabio, Madeddu Paolo, Emanueli Costanza
School of Clinical Sciences, Bristol Heart Institute, Bristol BS2 8HW, UK.
University/British Heart Foundation Centre for Cardiovascular Science, The Queen's Medical Research Institute, University of Edinburgh, Edinburgh EH16 4TJ, UK.
Nat Commun. 2015 Aug 13;6:8024. doi: 10.1038/ncomms9024.
The communication between vascular endothelial cells (ECs) and pericytes in the microvasculature is fundamental for vascular growth and homeostasis; however, these processes are disrupted by diabetes. Here we show that modulation of p75(NTR) expression in ECs exposed to high glucose activates transcription of miR-503, which negatively affects pericyte function. p75(NTR) activates NF-κB to bind the miR-503 promoter and upregulate miR-503 expression in ECs. NF-κB further induces activation of Rho kinase and shedding of endothelial microparticles carrying miR-503, which transfer miR-503 from ECs to vascular pericytes. The integrin-mediated uptake of miR-503 in the recipient pericytes reduces expression of EFNB2 and VEGFA, resulting in impaired migration and proliferation. We confirm operation of the above mechanisms in mouse models of diabetes, in which EC-derived miR-503 reduces pericyte coverage of capillaries, increased permeability and impaired post-ischaemic angiogenesis in limb muscles. Collectively, our data demonstrate that miR-503 regulates pericyte-endothelial crosstalk in microvascular diabetic complications.
微血管中血管内皮细胞(ECs)与周细胞之间的通讯对于血管生长和稳态至关重要;然而,这些过程会被糖尿病破坏。在此,我们表明,在暴露于高葡萄糖环境的内皮细胞中调节p75(NTR)表达会激活miR-503的转录,这会对周细胞功能产生负面影响。p75(NTR)激活NF-κB以结合miR-503启动子并上调内皮细胞中miR-503的表达。NF-κB进一步诱导Rho激酶的激活以及携带miR-503的内皮微粒的脱落,这些微粒将miR-503从内皮细胞转移至血管周细胞。整合素介导的受体周细胞对miR-503的摄取会降低EFNB2和VEGFA的表达,导致迁移和增殖受损。我们在糖尿病小鼠模型中证实了上述机制的作用,其中内皮细胞来源的miR-503减少了毛细血管的周细胞覆盖,增加了通透性,并损害了肢体肌肉缺血后的血管生成。总体而言,我们的数据表明miR-503在微血管糖尿病并发症中调节周细胞 - 内皮细胞的相互作用。