Zhang Lili, Thalakiriyawa Dineshi Sewvandi, Liu Jiawei, Yang Shengyan, Wang Yan, Dissanayaka Waruna Lakmal
Hospital of Stomatology, Guanghua School of Stomatology, Guangdong Provincial Key Laboratory of Stomatology, Sun Yat-sen University, Guangzhou, 510055, Guangdong, China.
Applied Oral Sciences and Community Dental Care, Faculty of Dentistry, Prince Philip Dental Hospital, The University of Hong Kong, 34 Hospital Road, Sai Ying Pun, Hong Kong, Hong Kong SAR.
Stem Cell Res Ther. 2025 Jan 26;16(1):25. doi: 10.1186/s13287-025-04149-0.
Achieving a stable vasculature is crucial for tissue regeneration. Endothelial cells initiate vascular morphogenesis, followed by mural cells that stabilize new vessels. This study investigated the in vivo effects of Sema4D-Plexin-B1 signaling on stem cells from human exfoliated deciduous teeth (SHED)-supported angiogenesis, focusing on its mechanism in PDGF-BB secretion. We also explored macrophages as an endogenous source of Sema4D for vascular stabilization.
The in vivo Matrigel plug angiogenesis assay was conducted to examine the impact of Sema4D on vessel formation and stabilization supported by SHED. Knockdown of Plexin-B1 in human umbilical vein endothelial cells (HUVECs) and PDGFR-β inhibitors were utilized to explore the fundamental regulatory mechanisms. Furthermore, the m6A methylation levels of total RNA and the expression of Methyltransferase-like 3 (METTL3) were assessed under conditions of Sema4D treatment in vitro. An ELISA was employed to measure the levels of Sema4D in the supernatants derived from THP-1 cell-mediated macrophages. Additionally, a three-dimensional vasculature-on-a-chip microfluidic device was used to investigate the role of M2c macrophage-derived Sema4D in the stabilization of vascular structures.
Sema4D induced the formation of a greater number of perfused vessels by HUVECs and enhanced the coverage of these vessels by SM22α-positive SHED (SM22αSHED). Conversely, the knockdown of the Plexin-B1 receptor in HUVECs or inhibition of PDGFR-β reversed the Sema4D-induced vascular stabilization, thereby confirming the regulatory role of the Plexin-B1/PDGF-BB axis in the recruitment of mural cells mediated by Sema4D. Mechanistically, Sema4D was found to upregulate the expression of methyltransferases, specifically METTL3, and to elevate the level of m6A modification in HUVECs. This modification was determined to be critical for enhancing PDGF-BB secretion, suggesting that Sema4D activates an epigenetic regulatory mechanism. Additionally, we investigated the secretion of Sema4D by various macrophage phenotypes, identifying that M2c macrophages secrete significant levels of Sema4D. This secretion recruited SM22αSHED as mural cells by inducing endothelial PDGF production on a vasculature-on-a-chip platform, indicating a potential role for macrophages in facilitating vascular stabilization.
Sema4D acts on Plexin-B1, inducing METTL3-mediated PDGF-BB secretion to recruit SHED to stabilize vessels. Macrophages could be a key source of Sema4D for vascular stabilization.
实现稳定的脉管系统对于组织再生至关重要。内皮细胞启动血管形态发生,随后是壁细胞使新血管稳定。本研究调查了Sema4D-Plexin-B1信号通路对人乳牙脱落干细胞(SHED)支持的血管生成的体内影响,重点关注其在血小板衍生生长因子-BB(PDGF-BB)分泌中的机制。我们还探索了巨噬细胞作为Sema4D的内源性来源对血管稳定的作用。
进行体内基质胶栓血管生成试验,以检查Sema4D对SHED支持的血管形成和稳定的影响。利用人脐静脉内皮细胞(HUVECs)中Plexin-B1的敲低和PDGFR-β抑制剂来探索基本调控机制。此外,在体外Sema4D处理条件下评估总RNA的m6A甲基化水平和甲基转移酶样3(METTL3)的表达。采用酶联免疫吸附测定法(ELISA)测量THP-1细胞介导的巨噬细胞上清液中Sema4D的水平。此外,使用三维芯片上血管微流控装置研究M2c巨噬细胞衍生的Sema4D在血管结构稳定中的作用。
Sema4D诱导HUVECs形成更多灌注血管,并增强了SM22α阳性SHED(SM22αSHED)对这些血管的覆盖。相反,HUVECs中Plexin-B1受体的敲低或PDGFR-β的抑制逆转了Sema4D诱导的血管稳定,从而证实了Plexin-B1/PDGF-BB轴在Sema4D介导的壁细胞募集中的调控作用。机制上,发现Sema4D上调甲基转移酶的表达,特别是METTL3,并提高HUVECs中m6A修饰的水平。这种修饰对于增强PDGF-BB分泌至关重要,表明Sema4D激活了一种表观遗传调控机制。此外,我们研究了各种巨噬细胞表型对Sema4D的分泌,发现M2c巨噬细胞分泌大量Sema4D。这种分泌通过在芯片上血管平台上诱导内皮细胞产生PDGF,招募SM22αSHED作为壁细胞,表明巨噬细胞在促进血管稳定方面具有潜在作用。
Sema4D作用于Plexin-B1,诱导METTL3介导的PDGF-BB分泌,以招募SHED来稳定血管。巨噬细胞可能是血管稳定中Sema4D的关键来源。