来源于内皮祖细胞的细胞外囊泡抑制补体和细胞因子介导的肾小球内皮细胞和足细胞损伤

D. Medica, R. Franzin, A. Stasi, G. Castellano, M. Migliori, V. Panichi, G. Camussi, V. Cantaluppi
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引用次数: 0

摘要

肾小球肾炎是一种以肾小球滤过屏障(GFB)渗透性增加为特征的肾脏炎症过程,伴有血尿和蛋白尿。肾小球内皮细胞(GEC)和足细胞是肾小球内皮细胞的一部分,通过旁分泌介质相互作用,维持肾小球内皮细胞的结构和功能完整性。免疫相关的补体级联激活和促炎细胞因子(CK)如tnf - α和IL-6通过引起急性肾小球损伤和向慢性肾脏疾病进展而改变GFB。内皮祖细胞(Endothelial Progenitor Cells, EPC)是一种在外周血中循环的骨髓来源的造血干细胞,通过释放细胞外囊泡(Extracellular Vesicles, EV)等旁分泌介质修复受损的内皮。ev是通过传递蛋白质、脂质和遗传物质(mRNA、microRNA、lncRNA)参与细胞间通讯的微粒。我们之前在不同的实验模型中证明了epc衍生的ev激活了静止内皮细胞的血管生成程序。本研究通过对体外有害条件下的内皮细胞和足细胞进行测试,评估了内皮细胞来源的ev对GFB的保护作用,并添加了CKs (tnf - α /IL-6)和补体蛋白C5a。首先,ev通过不同的整合素和l -选择素在gec和足细胞中内化。在gec中,ev通过调节基因表达和诱导生长因子(如VEGF和HGF)的释放,触发血管生成、毛细血管样结构的形成和细胞迁移。在CKs存在的情况下,EVs通过降低氧化应激来保护gec免于凋亡,并通过抑制粘附分子(ICAM-1、VCAM-1、E-selectin)的表达来阻止白细胞粘附。在足细胞上,ev可抑制细胞死亡和抑制ck诱导的肾素脱落。最后,在模拟GFB的共培养模型中,ev介导的对gec的生物作用间接保护足细胞免受ck介导的损伤。RNA酶预处理使其保护作用消失,提示RNA从ev转移到靶肾小球细胞的关键作用。总之,epc衍生的ev可以保护GFB免受补体和细胞因子诱导的损伤,这表明它们作为肾小球肾炎治疗剂的潜在作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extracellular Vesicles derived from Endothelial Progenitor Cells inhibit complement- and cytokine-mediated injury of renal glomerular endothelial cells and podocytes
Glomerulonephritis are renal inflammatory processes characterized by increased permeability of the Glomerular Filtration Barrier (GFB), with consequent hematuria and proteinuria. Glomerular endothelial cells (GEC) and podocytes are part of the GFB and contribute to maintaining its structural and functional integrity by interacting with each other through paracrine mediators. Immune-related complement cascade activation and pro-inflammatory cytokines (CK) such as TNF-alpha and IL-6 alter GFB by causing acute glomerular injury and progression toward chronic kidney disease. Endothelial Progenitor Cells (EPC) are bone-marrow-derived hematopoietic stem cells circulating in peripheral blood that repair injured endothelium by releasing paracrine mediators, such as Extracellular Vesicles (EV). EVs are microparticles involved in intercellular communication by transferring proteins, lipids, and genetic material (mRNA, microRNA, lncRNA). We previously demonstrated EPC-derived EVs activate an angiogenic program in quiescent endothelial cells in different experimental models. This study evaluates EPC-derived EVs' protective effects on GFB through tests on GECs and podocytes in vitro in detrimental conditions with CKs (TNF-alpha/IL-6) and complement protein C5a. First, EVs internalize in GECs and podocytes through different integrins and L-selectin. In GECs, EVs trigger angiogenesis, the formation of capillary-like structures, and cell migration by modulating gene expression and inducing the release of growth factors, such as VEGF and HGF. In the presence of CKs, EVs protect GECs from apoptosis by decreasing oxidative stress and prevent leukocyte adhesion by inhibiting adhesion molecules' expression (ICAM-1, VCAM-1, E-selectin). On podocytes, EVs inhibit cell death and prevent nephrin shedding induced by CKs. Last, in a co-culture model mimicking GFB, EV-mediated biological action on GECs protects podocytes indirectly from CK-mediated damage. RNase pre-treatment of EVs abrogated their protective effects, suggesting the crucial role of RNA transfer from EVs to target glomerular cells. In conclusion, EPC-derived EVs protect GFB from complement- and cytokine-induced damage, indicating their potential role as therapeutic agents for glomerulonephritis.
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