Research on the microglial cell autophagy induced by bone marrow stromal cells and its potential molecular mechanism  

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  • 1. Department of Rehabilitation Medicine, The First Affiliated Hospital, Guangdong Pharmaceutical University, Guangzhou 510062, China; 2. Department of Rehabilitation Medicine, Guangdong Provincial People's Hospital, Guangzhou 510080, China

Received date: 2020-09-14

  Online published: 2021-06-02

Abstract

Objective To explore the possibility of bone marrow derived neural progenitor cells inducing microglia autophagy, and to identify the molecular mechanisms that might affect microglia growth through the identification of its metabolites and the isolation of exosomes. Methods The effects of exosomes on microglia were observed by cell biology and electron microscopy. The liposome metabolite types were identified by chemical reagent extraction and LCMS/MS detection technology. Results Molecular experiments have shown that this exosome can induce autophagy in microglia. The potential substances with the ratio of 4597 kinds of germplasm nuclei were detected in the culture medium of bone marrow-derived nerve progenitor cells, 304 kinds of known liposome metabolites were detected in the culture medium and bone marine-derived nerve progenitor cells. After excluding the inherent liposome metabolites in the culture medium, 51 kinds of potentially metabolized and secreted liposomes in the growth process of bone marrow derived nerve progenitor cells were obtained. These were all substances that can potentially cause autophagy in microglia. Conclusions Bone marrow derived nerve progenitor cells can induce autophagy in microglia and promote the initiation of immune response, during which liposome metabolites carried in exosomes of bone marrow derived nerve progenitor cells may play an important role.

Cite this article

Yuan Fengying, Zhang Mingxing, Shi Yihua, Li Meihui, Ou Jiayuan, Zhang Mingsheng , Bai Wenfang . Research on the microglial cell autophagy induced by bone marrow stromal cells and its potential molecular mechanism  [J]. Chinese Journal of Clinical Anatomy, 2021 , 39(3) : 302 -310 . DOI: 10.13418/j.issn.1001-165x.2021.03.011

References

[1]  耿介立, 俞羚, 孙亚蒙, 等. 急性缺血性卒中患者早期处理指南: 美国心脏协会/美国卒中协会的健康职业者指南[J]. 神经病学与神经康复学杂志, 2013, 10(1): 33-80. DOI: 10.3969/j.issn.1672-7061.2013. 01. 012.
[2]  杨坦, 刘华, 王肇光, 等. 应用于缺血缺氧性脑病治疗的神经干细胞移植: 现实与未来[J]. 中国组织工程研究, 2014, 18(1): 143-148.
[3]  安阳方, 汤永红. 神经干细胞移植治疗缺血性脑卒中的研究进展[J]. 中国动脉硬化杂志, 2017, 25(12): 1280-1286. DOI: 1007-3934(2017)25-12-1280-07.
[4]  Patrick MK, Travis CJ, Nikki MF, et al. Emerging therapies in traumatic brain injury[J]. Semin Neurol, 2015, 35(1): 83-100. DOI: 10.1055/s-0035-1544237.
[5]  Yasuhiro O, Akira E, Chisato M, et al. Induced pluripotent stem cells generated from P0-Cre; Z/EG transgenic mice[J]. PLoS One, 2015, 10(9): e0138620. DOI: 10.1371/journal.pone.0138620.
[6]  Nalin G, Roland GH, Sang-Mo Kg, et al. Long-Term safety, immunologic response, and imaging outcomes following neural stem cell transplantation for pelizaeus-merzbacher disease[J]. Stem Cell Reports, 2019, 13(2): 254-261. DOI: 10.1016/j.stemcr.2019.07.002.
[7]  He HY, Ren L, Guo T, et al. Neuronal autophagy aggravates microglial inflammatory injury by downregulating CX3CL1/fractalkine after ischemic stroke[J]. Neural Regen Res, 2019, 14(2): 280-288. DOI: 10.4103/1673-5374.244793.
[8]  Rajendran JCB, Robert FM. Accomplishments and challenges in stem cell imaging in vivo[J]. Drug Discov Today, 2019, 24(2): 492-504. DOI: 10.1016/j.drudis.2018.10.007.
[9]  冯玉, 白文芳, 许伟成, 等. 低频电磁场促进骨髓间充质干细胞移植修复大鼠脊髓损伤的实验研究[J]. 中国组织工程研究, 2013, 17(32): 5819-5826. DOI: 10.3969/j.issn.2095-4344.2013.32.012.
[10]Bai WF, Zhang YL, Xu WC, et al. Isolation and characterization of neural progenitor cells from bone marrow in cell replacement therapy of brain injury[J]. Front Cell Neurosci, 2020, 14: 49. DOI: 10.3389/fncel.2020.00049. 
[11]Chen XH, He YF, Lu F. Autophagy in stem cell biology: a perspective on stem cell self-renewal and differentiation[J]. Stem Cells Int, 2018, 9131397. DOI: 10.1155/2018/9131397.
[12]Priyanka P, Shyam SN, Paras KM. Stem cell-derived exosomes, autophagy, extracellular matrix turnover, and miRNAs in cardiac regeneration during stem cell therapy[J]. Stem Cell Rev, 2017, 13(1): 79-91. DOI: 10.1007/s12015-016-9696-y.
[13]Hu YJ, Zhang JY, Luo Q, et al. Nanostructured dihydroartemisinin plus epirubicin liposomes enhance treatment efficacy of breast cancer by inducing autophagy and apoptosis[J]. Nanomaterials (Basel), 2018, 8(10): 804. DOI: 10.3390/nano8100804.
[14]Wang Y, Shi KR, Zhang L, et al. Significantly enhanced tumor cellular and lysosomal hydroxychloroquine delivery by smart liposomes for optimal autophagy inhibition and improved antitumor efficiency with liposomal doxorubicin[J]. Autophagy, 2016, 12(6): 949-962. DOI: 10.1080/15548627.2016.1162930.
[15]刘清月. 人神经干细胞来源外泌体体外对缺氧再灌注损伤神经元的修复作用研究[D]. 山东大学, 2020. DOI: 10.27272/d.cnki.gshdu. 2020. 005055.
[16]周涵, 邓文文, 王冬梅, 等. 骨髓间充质干细胞源外泌体对大鼠颈动脉球囊损伤后circRNA和microRNA差异表达的影响[J]. 医学研究生学报, 2021, 34(4): 341-349. DOI: 10.16571/j.cnki.1008-8199. 2021. 04. 002.
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