Department of Liberal Arts and Sciences, Kagawa Prefectural University of Health Sciences, Hara 281-1, Mure, Takamatsu, Kagawa, 761-0123, Japan.
Department of Medical Technology, Kagawa Prefectural University of Health Sciences, Hara 281-1, Mure, Takamatsu, Kagawa, 761-0123, Japan.
Biochem Biophys Res Commun. 2019 Dec 3;520(2):304-310. doi: 10.1016/j.bbrc.2019.10.040. Epub 2019 Oct 8.
Pericytes are mural cells that cover small blood vessels. While defects in pericyte coverage are known to be involved in various vessel related pathologies, including diabetic retinopathy, the molecular mechanisms underlying pericyte coverage are not fully understood. In this study, we investigated the contribution of the forkhead transcription factor FOXO1 in endothelial cells to pericyte coverage in the developing retina. We observed retinal pericytes in tamoxifen-inducible endothelium-specific Foxo1 deletion mice. Tamoxifen was injected at postnatal day 1-3 and the retinas were harvested at P21. Our results demonstrated that Foxo1 deletion in the endothelium affected arteriole pericyte morphology without altering pericyte number, proliferation, and apoptosis. We hypothesized that abnormal pericyte morphogenesis in the knockout retina was caused by impaired pericyte differentiation. FOXO1 silencing by siRNA in the primary artery endothelium further revealed that THBS1 (thrombospondin 1), which promotes pericyte differentiation via TGFβ activation, was reduced in the FOXO1-deficient endothelium. Immunohistochemistry of FOXO1 knockout mice showed reduced numbers of phospho-Smad3 arteriole pericytes compared with wild-type mice. In addition, endothelium-pericyte co-culture analysis revealed that pericytes cultured with FOXO1-deficient endothelial cells failed to differentiate sufficiently; this failure was partially rescued by the addition of recombinant THBS1 to the supernatant. The findings suggest that endothelial FOXO1 contributes to pericyte differentiation via regulation of THBS1 expression. This study provides new insights into the molecular mechanism of pericyte coverage in the context of endothelium-derived regulation and highlights a new therapeutic target for pericyte-related pathology.
周细胞是覆盖小血管的壁细胞。虽然已知周细胞覆盖的缺陷与各种血管相关的病理有关,包括糖尿病视网膜病变,但周细胞覆盖的分子机制尚未完全了解。在这项研究中,我们研究了叉头转录因子 FOXO1 在血管内皮细胞中的作用,以了解其对发育中视网膜周细胞覆盖的影响。我们观察了在他莫昔芬诱导的内皮细胞特异性 Foxo1 缺失小鼠中的视网膜周细胞。在出生后第 1-3 天注射他莫昔芬,然后在 P21 时收获视网膜。结果表明,内皮细胞中 Foxo1 的缺失影响小动脉周细胞的形态,而不改变周细胞的数量、增殖和凋亡。我们假设,敲除视网膜中异常的周细胞形态发生是由于周细胞分化受损所致。在初级动脉内皮细胞中用 siRNA 沉默 FOXO1 进一步表明,通过 TGFβ 激活促进周细胞分化的 THBS1(血小板反应蛋白 1)在 FOXO1 缺陷的内皮细胞中减少。FOXO1 敲除小鼠的免疫组织化学显示,与野生型小鼠相比,磷酸化 Smad3 小动脉周细胞的数量减少。此外,内皮细胞-周细胞共培养分析表明,与 FOXO1 缺陷的内皮细胞共培养的周细胞未能充分分化;通过向上清液中添加重组 THBS1,这种失败得到部分挽救。这些发现表明,内皮细胞 FOXO1 通过调节 THBS1 表达促进周细胞分化。这项研究为内皮细胞衍生调节的周细胞覆盖的分子机制提供了新的见解,并强调了周细胞相关病理学的新治疗靶点。