Zhang Yi, Liu Zhongwu, Chopp Michael, Millman Michael, Li Yanfeng, Cepparulo Pasquale, Kemper Amy, Li Chao, Zhang Li, Zhang Zheng Gang
Department of Neurology, Henry Ford Hospital, Detroit, MI, USA.
Department of Physics, Oakland University, Rochester, MI, USA.
Neural Regen Res. 2025 Jan 1;20(1):224-233. doi: 10.4103/NRR.NRR-D-22-01292. Epub 2024 Mar 1.
JOURNAL/nrgr/04.03/01300535-202501000-00030/figure1/v/2024-05-14T021156Z/r/image-tiff Axonal remodeling is a critical aspect of ischemic brain repair processes and contributes to spontaneous functional recovery. Our previous in vitro study demonstrated that exosomes/small extracellular vesicles (sEVs) isolated from cerebral endothelial cells (CEC-sEVs) of ischemic brain promote axonal growth of embryonic cortical neurons and that microRNA 27a (miR-27a) is an elevated miRNA in ischemic CEC-sEVs. In the present study, we investigated whether normal CEC-sEVs engineered to enrich their levels of miR-27a (27a-sEVs) further enhance axonal growth and improve neurological outcomes after ischemic stroke when compared with treatment with non-engineered CEC-sEVs. 27a-sEVs were isolated from the conditioned medium of healthy mouse CECs transfected with a lentiviral miR-27a expression vector. Small EVs isolated from CECs transfected with a scramble vector (Scra-sEVs) were used as a control. Adult male mice were subjected to permanent middle cerebral artery occlusion and then were randomly treated with 27a-sEVs or Scra-sEVs. An array of behavior assays was used to measure neurological function. Compared with treatment of ischemic stroke with Scra-sEVs, treatment with 27a-sEVs significantly augmented axons and spines in the peri-infarct zone and in the corticospinal tract of the spinal grey matter of the denervated side, and significantly improved neurological outcomes. In vitro studies demonstrated that CEC-sEVs carrying reduced miR-27a abolished 27a-sEV-augmented axonal growth. Ultrastructural analysis revealed that 27a-sEVs systemically administered preferentially localized to the pre-synaptic active zone, while quantitative reverse transcription-polymerase chain reaction and Western Blot analysis showed elevated miR-27a, and reduced axonal inhibitory proteins Semaphorin 6A and Ras Homolog Family Member A in the peri-infarct zone. Blockage of the Clathrin-dependent endocytosis pathway substantially reduced neuronal internalization of 27a-sEVs. Our data provide evidence that 27a-sEVs have a therapeutic effect on stroke recovery by promoting axonal remodeling and improving neurological outcomes. Our findings also suggest that suppression of axonal inhibitory proteins such as Semaphorin 6A may contribute to the beneficial effect of 27a-sEVs on axonal remodeling.
轴突重塑是缺血性脑修复过程的一个关键方面,有助于自发功能恢复。我们之前的体外研究表明,从缺血性脑的脑内皮细胞(CEC-sEVs)中分离出的外泌体/小细胞外囊泡(sEVs)可促进胚胎皮质神经元的轴突生长,并且微小RNA 27a(miR-27a)是缺血性CEC-sEVs中一种上调的微小RNA。在本研究中,我们调查了与未改造的CEC-sEVs治疗相比,经过工程改造以富集其miR-27a水平的正常CEC-sEVs(27a-sEVs)是否能进一步增强轴突生长并改善缺血性中风后的神经功能结局。27a-sEVs从用慢病毒miR-27a表达载体转染的健康小鼠CEC的条件培养基中分离得到。从用乱序载体转染的CEC中分离出的小囊泡(Scra-sEVs)用作对照。成年雄性小鼠接受永久性大脑中动脉闭塞,然后随机接受27a-sEVs或Scra-sEVs治疗。使用一系列行为学检测来测量神经功能。与用Scra-sEVs治疗缺血性中风相比,用27a-sEVs治疗显著增加了梗死灶周围区域以及失神经侧脊髓灰质皮质脊髓束中的轴突和棘突,并显著改善了神经功能结局。体外研究表明,携带减少的miR-27a的CEC-sEVs消除了27a-sEVs增强的轴突生长。超微结构分析显示,全身给药的27a-sEVs优先定位于突触前活性区,而定量逆转录-聚合酶链反应和蛋白质免疫印迹分析显示梗死灶周围区域中miR-27a升高,轴突抑制蛋白信号素6A和Ras同源家族成员A减少。网格蛋白依赖性内吞途径的阻断显著降低了27a-sEVs的神经元内化。我们的数据提供了证据表明27a-sEVs通过促进轴突重塑和改善神经功能结局对中风恢复具有治疗作用。我们的研究结果还表明,抑制轴突抑制蛋白如信号素6A可能有助于27a-sEVs对轴突重塑的有益作用。