Key Laboratory of Freshwater Fish Reproduction and Development, Ministry of Education, Institute of Developmental Biology and Regenerative Medicine, Southwest University, Beibei, Chongqing 400715, China.
Chongqing Engineering Research Center of Medical Electronics and Information Technology, School of Biomedical Engineering and Informatics, Chongqing University of Posts and Telecommunications, Chongqing 400065, China.
Int J Mol Sci. 2022 Sep 11;23(18):10551. doi: 10.3390/ijms231810551.
There is accumulating evidence that macrophages play additional important roles in tissue damage besides their typical phagocytosis. Although the aggregation of macrophages on injured sites has long been observed, few researchers have focused on the role of the overall structure of macrophage aggregation. In this study, we developed a standardized traumatic brain injury (TBI) model in zebrafish larvae to mimic edema and brain tissue spillage symptoms after severe brain trauma. Using time-lapse imaging, we showed that macrophages/microglia in zebrafish larvae responded rapidly and dominated the surface of injured tissue, forming a meaningful honeycomb network structure through their compact aggregation and connection. Disrupting this structure led to fatal edema-like symptoms with severe loss of brain tissue. Using the RNA-Seq, together with the manipulation of in vitro cell lines, we found that collagen IV was indispensable to the formation of honeycomb network structures. Our study thus revealed a novel perspective regarding macrophages forming a protective compact structure with collagen IV. This honeycomb network structure acted as a physical barrier to prevent tissue loss and maintain brain homeostasis after TBI. This study may provide new evidence of macrophages' function for the rapid protection of brain tissue after brain injury.
越来越多的证据表明,巨噬细胞除了典型的吞噬作用外,在组织损伤中还发挥着额外的重要作用。尽管巨噬细胞在受伤部位的聚集早已被观察到,但很少有研究人员关注巨噬细胞聚集的整体结构的作用。在这项研究中,我们在斑马鱼幼虫中建立了标准化的创伤性脑损伤(TBI)模型,以模拟严重脑外伤后的水肿和脑组织溢出症状。通过延时成像,我们发现斑马鱼幼虫中的巨噬细胞/小胶质细胞迅速作出反应,占据受伤组织的表面,通过紧密聚集和连接形成有意义的蜂窝状网络结构。破坏这种结构会导致致命的类似水肿的症状,伴有严重的脑组织损失。通过 RNA-Seq 分析,结合体外细胞系的操作,我们发现胶原 IV 对形成蜂窝状网络结构是不可或缺的。因此,我们的研究揭示了巨噬细胞与胶原 IV 形成保护性紧密结构的新视角。这种蜂窝状网络结构充当物理屏障,防止 TBI 后组织损失并维持脑内平衡。这项研究可能为脑损伤后巨噬细胞迅速保护脑组织提供新的证据。