Volume 38 Issue 3
Mar.  2022
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Cai WX,Shen K,Cao T,et al.Effects of exosomes from human adipose-derived mesenchymal stem cells on pulmonary vascular endothelial cells injury in septic mice and its mechanism[J].Chin J Burns Wounds,2022,38(3):266-275.DOI: 10.3760/cma.j.cn501120-20211020-00362.
Citation: Cai WX,Shen K,Cao T,et al.Effects of exosomes from human adipose-derived mesenchymal stem cells on pulmonary vascular endothelial cells injury in septic mice and its mechanism[J].Chin J Burns Wounds,2022,38(3):266-275.DOI: 10.3760/cma.j.cn501120-20211020-00362.

Effects of exosomes from human adipose-derived mesenchymal stem cells on pulmonary vascular endothelial cells injury in septic mice and its mechanism

doi: 10.3760/cma.j.cn501120-20211020-00362
Funds:

Youth Science Foundation Project of National Natural Science Foundation of China 81601680

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  • Corresponding author: Tao Ke, Email: taoke918@fmmu.edu.cn
  • Received Date: 2021-10-20
  •   Objective  To investigate the effects of exosomes from human adipose-derived mesenchymal stem cells (ADSCs) on pulmonary vascular endothelial cells (PMVECs) injury in septic mice and its mechanism.  Methods  The experimental research method was adopted. The primary ADSCs were isolated and cultured from the discarded fresh adipose tissue of 3 patients (female, 10-25 years old), who were admitted to the First Affiliated Hospital of Air Force Medical University undergoing abdominal surgery, and the cell morphology was observed by inverted phase contrast microscope on the 5th day. The expressions of CD29, CD34, CD44, CD45, CD73, and CD90 of ADSCs in the third passage were detected by flow cytometry. The third to the fifth passage of ADSCs were collected, and their exosomes from the cell supernatant were obtained by differential ultracentrifugation, and the shape, particle size, and the protein expressions of CD9, CD63, tumor susceptibility gene 101 (TSG101), and β-actin of exosomes were detected, respectively, by transmission electron microscopy, nano-particle tracking analysis and Western blotting. Twenty-four adult male BALB/c mice were adopted and were divided into normal control group, caecal ligation perforation (CLP) alone group, and CLP+ADSC-exosome group with each group of 8 according to random number table (the same grouping method below) and were treated accordingly. At 24 h after operation, tumor necrosis factor (TNF-α) and interleukin 1β (IL-1β) levels of mice serum were detected by enzyme-linked immunosorbent assay, and lung tissue morphology of mice was detected by hematoxylin-eosin and myeloperoxidase staining, and the expression of 8-hydroxy-deoxyguanosine (8-OHdG) of mouse lung cells was detected by immunofluorescence method. Primary PMVECs were obtained from 1-month-old C57 mice regardless gender by tissue block method. The expression of CD31 of PMVECs was detected by immunofluorescence and flow cytometry. The third passage of PMVECs was co-cultured with ADSCs derived exosomes for 12 h, and the phagocytosis of exosomes by PMVECs was detected by PKH26 kit. The third passage of PMVECs were adopted and were divided into blank control group, macrophage supernatant alone group, and macrophage supernatant+ADSC-exosome group, with 3 wells in each group, which were treated accordingly. After 24 h, the content of reactive oxygen species in cells was detected by flow cytometry, the expression of 8-OHdG in cells was detected by immunofluorescence, and Transwell assay was used to determine the permeability of cell monolayer. The number of samples in above were all 3. Data were statistically analyzed with one-way analysis of variance and least significant difference t test.  Results  The primary ADSCs were isolated and cultured to day 5, growing densely in a spindle shape with a typical swirl-like. The percentages of CD29, CD44, CD73 and CD90 positive cells of ADSCs in the third passage were all >90%, and the percentages of CD34 and CD45 positive cells were <5%. Exosomes derived from ADSCs of the third to fifth passages showed a typical double-cavity disc-like structure with an average particle size of 103 nm, and the protein expressions of CD9, CD63 and TSG101 of exosomes were positive, while the protein expression of β-actin of exosomes was negative. At 24 h after operation, compared with those in normal control group, both the levels of TNF-α and IL-1β of mice serum in CLP alone group were significantly increased (with t values of 28.76 and 29.69, respectively, P<0.01); compared with those in CLP alone group, both the content of TNF-α and IL-1β of mice serum in CLP+ADSC-exosome group was significantly decreased (with t values of 9.90 and 4.76, respectively, P<0.05 or P<0.01). At 24 h after surgery, the pulmonary tissue structure of mice in normal control group was clear and complete without inflammatory cell infiltration; compared with those in normal control group, the pulmonary tissue edema and inflammatory cell infiltration of mice in CLP alone group were more obvious; compared with those in CLP alone group, the pulmonary tissue edema and inflammatory cell infiltration of mice in CLP+ADSC-exosome group were significantly reduced. At 24 h after operation, endothelial cells in lung tissues of mice in 3 groups showed positive expression of CD31; compared with that in normal control group, the fluorescence intensity of 8-OHdG positive cells of the lung tissues of mice in CLP alone group was significantly increased, and compared with that in CLP alone group, the fluorescence intensity of 8-OHdG positive cells in the lung tissues of mice in CLP+ADSC-exosome group was significantly decreased. The PMVECs in the 3rd passage showed CD31 positive expression by immunofluorescence, and the result of flow cytometry showed that CD31 positive cells accounted for 99.5%. At 12 h after co-culture, ADSC-derived exosomes were successfully phagocytose by PMVECs and entered its cytoplasm. At 12 h after culture of the third passage of PMVECs, compared with that in blank control group, the fluorescence intensity of reactive oxygen species of PMVECs in macrophage supernatant alone group was significantly increased (t=15.73, P<0.01); compared with that in macrophage supernatant alone group, the fluorescence intensity of reactive oxygen species of PMVECs in macrophage supernatant+ADSC-exosome group was significantly decreased (t=4.72, P<0.01). At 12 h after culture of the third passage of PMVECs, and the 8-OHdG positive fluorescence intensity of PMVECs in macrophage supernatant alone group was significantly increased; and compared with that in blank control group, the 8-OHdG positive fluorescence intensity of PMVECs in macrophage+ADSC-exosome supernatant group was between blank control group and macrophage supernatant alone group. At 12 h after culture of the third passage PMVECs, compared with that in blank control group, the permeability of PMVECs monolayer in macrophage supernatant alone group was significantly increased (t=6.34, P<0.01); compared with that in macrophage supernatant alone group, the permeability of PMVECs monolayer cells in macrophage supernatant+ADSC-exosome group was significantly decreased (t=2.93, P<0.05).  Conclusions  Exosomes derived from ADSCs can ameliorate oxidative damage in mouse lung tissue, decrease the level of reactive oxygen species, 8-OHdG expression, and permeability of PMVECs induced by macrophage supernatant.

     

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  • [1]
    RuddKE, JohnsonSC, AgesaKM, et al. Global, regional, and national sepsis incidence and mortality, 1990-2017: analysis for the Global Burden of Disease Study[J]. Lancet, 2020, 395 (10219):200-211.DOI: 10.1016/S0140-6736(19)32989-7.
    [2]
    YoungP,MackleD,BellomoR,et al.Conservative oxygen therapy for mechanically ventilated adults with sepsis: a post hoc analysis of data from the intensive care unit randomized trial comparing two approaches to oxygen therapy (ICU-ROX)[J].Intensive Care Med,2020,46(1):17-26.DOI: 10.1007/s00134-019-05857-x.
    [3]
    StanskiNL,WongHR.Prognostic and predictive enrichment in sepsis[J].Nat Rev Nephrol,2020,16(1):20-31.DOI: 10.1038/s41581-019-0199-3.
    [4]
    KomorowskiM.Clinical management of sepsis can be improved by artificial intelligence: yes[J].Intensive Care Med,2020,46(2):375-377.DOI: 10.1007/s00134-019-05898-2.
    [5]
    黎鳌.黎鳌烧伤学[M].上海:上海科学技术出版社,2001.
    [6]
    黄巧冰.内皮细胞屏障与烧伤后血管通透性的关系及机制[J].中华烧伤杂志,2007,23(5):324-326.DOI: 10.3760/cma.j.issn.1009-2587.2007.05.002.
    [7]
    ManiatisNA, KotanidouA, CatravasJD, et al. Endothelial pathomechanisms in acute lung injury[J].Vascul Pharmacol,2008,49(4/6):119-133.DOI: 10.1016/j.vph.2008.06.009.
    [8]
    DelanoMJ,WardPA.Sepsis-induced immune dysfunction:can immune therapies reduce mortality?[J].J Clin Invest,2016,126(1):23-31.DOI: 10.1172/JCI82224.
    [9]
    DouglasSD.Monocyte and macrophage reactions[J].Environ Health Perspect,1974,9:281-282.DOI: 10.1289/ehp.749281.
    [10]
    邹宪宝,李新宇.脓毒症致肺血管内皮细胞损伤机制的研究进展[J].现代生物医学进展,2009,9(22):4384-4386.
    [11]
    吴丽丽,梁群,曹雪丹.中医药保护脓毒症肺血管内皮细胞损伤的机制研究进展[J].中国中医急症,2021,30(1):172-175.DOI: 10.3969/j.issn.1004-745X.2021.01.050.
    [12]
    柴云飞,雷黎明,李鹏,等.血管内皮细胞损伤与脓毒症休克的相关性[J].实用医学杂志,2017,33(15):2529-2532.DOI: 10.3969/j.issn.1006-5725.2017.15.027.
    [13]
    PuCM,LiuCW,LiangCJ,et al.Adipose-derived stem cells protect skin flaps against ischemia/reperfusion injury via IL-6 expression[J].J Invest Dermatol,2017,137(6):1353-1362.DOI: 10.1016/j.jid.2016.12.030.
    [14]
    JoffreJ,HellmanJ,InceC,et al.Endothelial responses in sepsis[J].Am J Respir Crit Care Med,2020,202(3):361-370.DOI: 10.1164/rccm.201910-1911TR.
    [15]
    ColbertJF,SchmidtEP.Endothelial and microcirculatory function and dysfunction in sepsis[J].Clin Chest Med,2016,37(2):263-275.DOI: 10.1016/j.ccm.2016.01.009.
    [16]
    HamidzadehK,ChristensenSM,DalbyE,et al.Macrophages and the recovery from acute and chronic inflammation[J].Annu Rev Physiol,2017,79:567-592.DOI: 10.1146/annurev-physiol-022516-034348.
    [17]
    YangC,LuoL,BaiX,et al.Highly-expressed micoRNA-21 in adipose derived stem cell exosomes can enhance the migration and proliferation of the HaCaT cells by increasing the MMP-9 expression through the PI3K/AKT pathway[J].Arch Biochem Biophys,2020,681:108259.DOI: 10.1016/j.abb.2020.108259.
    [18]
    ZhangW,BaiX,ZhaoB,et al.Cell-free therapy based on adipose tissue stem cell-derived exosomes promotes wound healing via the PI3K/Akt signaling pathway[J].Exp Cell Res,2018,370(2):333-342.DOI: 10.1016/j.yexcr.2018.06.035.
    [19]
    WeiP,ZhongC,YangX,et al.Exosomes derived from human amniotic epithelial cells accelerate diabetic wound healing via PI3K-AKT-mTOR-mediated promotion in angiogenesis and fibroblast function[J/OL].Burns Trauma,2020,8:tkaa020[2022-03-01]. https://pubmed.ncbi.nlm.nih.gov/329234 90/.DOI: 10.1093/burnst/tkaa020.
    [20]
    HuP,YangQ,WangQ,et al.Mesenchymal stromal cells- exosomes:a promising cell-free therapeutic tool for wound healing and cutaneous regeneration[J/OL].Burns Trauma,2019,7:38[2022-03-02]. https://pubmed.ncbi.nlm.nih.gov/31890717/.DOI: 10.1186/s41038-019-0178-8.
    [21]
    HwangI,JoK,ShinKC,et al.GABA-stimulated adipose-derived stem cells suppress subcutaneous adipose inflammation in obesity[J].Proc Natl Acad Sci U S A,2019,116(24):11936-11945.DOI: 10.1073/pnas.1822067116.
    [22]
    DominguesCC,KunduN,KropotovaY,et al.Antioxidant- upregulated mesenchymal stem cells reduce inflammation and improve fatty liver disease in diet-induced obesity[J].Stem Cell Res Ther,2019,10(1):280.DOI: 10.1186/s13287-019-1393-8.
    [23]
    XieJ,JonesTJ,FengD,et al.Human adipose-derived stem cells suppress elastase-induced murine abdominal aortic inflammation and aneurysm expansion through paracrine factors[J].Cell Transplant,2017,26(2):173-189.DOI: 10.3727/096368916X692212.
    [24]
    TianM,TicerT,WangQ,et al.Adipose-derived biogenic nanoparticles for suppression of inflammation[J].Small,2020,16(10):e1904064.DOI: 10.1002/smll.201904064.
    [25]
    HongP, YangH, WuY, et al. The functions and clinical application potential of exosomes derived from adipose mesenchymal stem cells: a comprehensive review[J]. Stem Cell Res Ther,2019,10(1):242.DOI: 10.1186/s13287-019-1358-y.
    [26]
    沈括, 王许杰, 刘开拓, 等. 人脂肪间充质干细胞外泌体对小鼠RAW264.7细胞的炎症反应和小鼠全层皮肤缺损创面愈合的影响[J]. 中华烧伤与创面修复杂志, 2022, 38(3): 215-226. DOI: 10.3760/cma.j.cn501120-20201116-00477.
    [27]
    RittirschD,Huber-LangMS,FlierlMA,et al.Immunodesign of experimental sepsis by cecal ligation and puncture[J].Nat Protoc,2009,4(1):31-36.DOI: 10.1038/nprot.2008.214.
    [28]
    胡国栋,陈英华,刘爱华,等.一种改良的肺微血管内皮细胞培养方法[J].南方医科大学学报,2012,32(8):1151-1153.DOI: 10.3969/j.issn.1673-4254.2012.08.17.
    [29]
    QiuP,LiuY,ZhangJ.Review: the role and mechanisms of macrophage autophagy in sepsis[J].Inflammation,2019,42(1):6-19.DOI: 10.1007/s10753-018-0890-8.
    [30]
    VenetF,MonneretG.Advances in the understanding and treatment of sepsis-induced immunosuppression[J].Nat Rev Nephrol,2018,14(2):121-137.DOI: 10.1038/nrneph.2017.165.
    [31]
    GottsJE,MatthayMA.Sepsis: pathophysiology and clinical management[J].BMJ,2016,353:i1585.DOI: 10.1136/bmj.i1585.
    [32]
    MarshallJC.Sepsis definitions: a work in progress[J].Crit Care Clin,2018,34(1):1-14.DOI: 10.1016/j.ccc.2017.08.004.
    [33]
    FeehanKT,GilroyDW.Is resolution the end of inflammation?[J].Trends Mol Med,2019,25(3):198-214.DOI: 10.1016/j.molmed.2019.01.006.
    [34]
    JooHJ,KimJH,HongSJ.Adipose tissue-derived stem cells for myocardial regeneration[J].Korean Circ J,2017,47(2):151-159.DOI: 10.4070/kcj.2016.0207.
    [35]
    GlassGE,FerrettiP.Adipose-derived stem cells in aesthetic surgery[J].Aesthet Surg J,2019,39(4):423-438.DOI: 10.1093/asj/sjy160.
    [36]
    Moreno-ManzanoV,Mellado-LópezM,Morera-EsteveMJ,et al.Human adipose-derived mesenchymal stem cells accelerate decellularized neobladder regeneration[J].Regen Biomater,2020,7(2):161-169.DOI: 10.1093/rb/rbz049.
    [37]
    BandeiraF,GohTW,SetiawanM,et al.Cellular therapy of corneal epithelial defect by adipose mesenchymal stem cell-derived epithelial progenitors[J].Stem Cell Res Ther,2020,11(1):14.DOI: 10.1186/s13287-019-1533-1.
    [38]
    GuoJ,HuH,GoreckaJ,et al.Adipose-derived mesenchymal stem cells accelerate diabetic wound healing in a similar fashion as bone marrow-derived cells[J].Am J Physiol Cell Physiol,2018,315(6):C885-C896.DOI: 10.1152/ajpcell.00120.2018.
    [39]
    LaiTC,LeeTL,ChangYC,et al.MicroRNA-221/222 mediates ADSC-exosome-induced cardioprotection against ischemia/reperfusion by targeting PUMA and ETS-1[J].Front Cell Dev Biol,2020,8:569150.DOI: 10.3389/fcell.2020.569150.
    [40]
    ShenK,JiaY,WangX,et al.Exosomes from adipose-derived stem cells alleviate the inflammation and oxidative stress via regulating Nrf2/HO-1 axis in macrophages[J].Free Radic Biol Med,2021,165:54-66.DOI: 10.1016/j.freeradbiomed.2021.01.023.
    [41]
    ShiY, WangY, LiQ, et al.Immunoregulatory mechanisms of mesenchymal stem and stromal cells in inflammatory diseases [J]. Nat Rev Nephrol, 2018, 14(8): 493-507.DOI: 10.1038/s41581-018-0023-5.
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