World Journal of Emergency Medicine ›› 2022, Vol. 13 ›› Issue (1): 46-53.doi: 10.5847/wjem.j.1920-8642.2022.015
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Open Access
Xiao-fang Guo1, Shuang-shuang Gu1, Jun Wang2, Hao Sun1, Yu-juan Zhang3, Peng-fei Yu4, Jin-song Zhang1(
), Lei Jiang1(
)
Received:2021-01-16
Accepted:2021-08-20
Online:2021-11-05
Published:2022-01-01
Contact:
Jin-song Zhang,Lei Jiang
E-mail:zhangjso@njmu.edu.cn;racheljl@126.com
Xiao-fang Guo, Shuang-shuang Gu, Jun Wang, Hao Sun, Yu-juan Zhang, Peng-fei Yu, Jin-song Zhang, Lei Jiang. Protective effect of mesenchymal stem cell-derived exosomal treatment of hippocampal neurons against oxygen-glucose deprivation/reperfusion-induced injury[J]. World Journal of Emergency Medicine, 2022, 13(1): 46-53.
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URL: http://wjem.com.cn/EN/10.5847/wjem.j.1920-8642.2022.015
Figure 1.
Identification of MSCs and MSC-Exo. A: the morphology of the MSCs; B: differentiation of MSCs into osteoblasts; C: differentiation of MSCs into adipocytes; D: electron microscopic image of exosomes; E: Western blotting luminograms showing exosomal expressions of CD63 and Alix; F: PKH26-tagged (red fluorescence) exosomes in the neurunal cytoplasm. MSCs: mesenchymal stem cells; MSC-Exo: MSC-derived exosomes.
Figure 2.
Protective effects of MSC-Exo against OGD/R-induced injury in rat hippocampal neurons. A, C: the antiapoptotic activity of exosomes based on TUNEL staining; the apoptosis in hippocampal neurons was assessed as the ratio of TUNEL-positive cells to the total number of cells counted within five randomly chosen fields; B, D: intracellular ROS generation; the data were shown as the mean intensities in the entire fields of view in five random graphs and were expressed as the fold intensity relative to the intensity in the control group; E, F: representative images and quantitative analysis indicating the nuclear translocation of Nrf2. Compared with the control group, *P<0.05, **P<0.01; compared with the OGD/R group, #P<0.05, ##P<0.01. MSCs: mesenchymal stem cells; MSC-Exo: MSC-derived exosomes; OGD/R: oxygen-glucose deprivation/reperfusion; ROS: reactive oxygen species.
Figure 3.
Effects of exosomes on mitochondrial membrane potential and expression of mitochondrial function-associated genes. A, B: the mitochondrial membrane potential was described as the ratio of red to green fluorescence; C-K: effects of exosomes on the expression of mitochondrial function-associated genes in hippocampal neurons after oxygen-glucose deprivation/reperfusion (OGD/R)-induced injury. Compared with the control group, *P<0.05, **P<0.01; compared with the OGD/R group, #P<0.05, ##P<0.01.
Table 1
The comparison between groups
| Variables | Control group | OGD/R group | OGD/R+Exo group |
|---|---|---|---|
| Cell apoptosis | 1.00±0.05 | 2.61±0.16** | 1.15±0.29## |
| ROS | 1.00±0.30 | 1.64±0.47* | 1.16±0.68# |
| Cell viability | 1.00±0.10 | 0.69±0.06* | 0.80±0.10# |
| Nrf2 accumulation | 1.00±0.40 | 5.48±1.09** | 2.14±0.65## |
| SOD (U/mg) | 22.86±1.13 | 14.40±0.62* | 17.18±0.97# |
| GPx (U/mg) | 30.43±3.73 | 16.44±2.05* | 20.65±2.23# |
| Mitochondrial polarization to depolarization | 1.00±0.13 | 0.40±0.07** | 0.86±0.17 # |
| DJ1 | 1.00±0.11 | 0.72±0.10* | 1.09±0.05# |
| OPA1 | 1.00±0.20 | 0.14±0.01** | 0.52±0.08## |
| Mfn-1 | 1.00±0.06 | 0.79±0.08** | 1.04±0.02## |
| Mfn-2 | 1.00±0.48 | 0.73±0.42** | 1.07±0.11## |
| LRRK2 | 1.00±0.09 | 39.02±2.64** | 9.03±0.84## |
| PINK | 1.00±0.11 | 1.34±0.14* | 0.10±0.01## |
| 1 |
Lilja G, Nielsen N, Friberg H, Horn J, Kjaergaard J, Nilsson F, et al. Cognitive function in survivors of out-of-hospital cardiac arrest after target temperature management at 33 ℃ versus 36 ℃. Circulation. 2015; 131(15):1340-9.
doi: 10.1161/CIRCULATIONAHA.114.014414 |
| 2 |
Puyal J, Ginet V, Clarke PGH. Multiple interacting cell death mechanisms in the mediation of excitotoxicity and ischemic brain damage: a challenge for neuroprotection. Prog Neurobiol. 2013; 105:24-48.
doi: 10.1016/j.pneurobio.2013.03.002 |
| 3 |
Liao LY, Lau BWM, Sánchez-Vidaña DI, Gao Q. Exogenous neural stem cell transplantation for cerebral ischemia. Neural Regen Res. 2019; 14(7):1129-37.
doi: 10.4103/1673-5374.251188 |
| 4 |
Ryu B, Sekine H, Homma J, Kobayashi T, Kobayashi E, Kawamata T, et al. Allogeneic adipose-derived mesenchymal stem cell sheet that produces neurological improvement with angiogenesis and neurogenesis in a rat stroke model. J Neurosurg. 2020; 132(2):442-55.
doi: 10.3171/2018.11.JNS182331 |
| 5 |
Rani S, Ryan AE, Griffin MD, Ritter T. Mesenchymal stem cell-derived extracellular vesicles: toward cell-free therapeutic applications. Mol Ther. 2015; 23(5):812-23.
doi: 10.1038/mt.2015.44 |
| 6 |
Munoz JL, Bliss SA, Greco SJ, Ramkissoon SH, Ligon KL, Rameshwar P. Delivery of functional anti-miR-9 by mesenchymal stem cell-derived exosomes to glioblastoma multiforme cells conferred chemosensitivity. Mol Ther Nucleic Acids. 2013; 2:e126.
doi: 10.1038/mtna.2013.60 |
| 7 |
Zhang J, Jiang N, Zhang L, Meng C, Zhao J, Wu J. NLRP6 expressed in astrocytes aggravates neurons injury after OGD/R through activating the inflammasome and inducing pyroptosis. Int Immunopharmacol. 2020; 80:106183.
doi: 10.1016/j.intimp.2019.106183 |
| 8 |
Gu SS, Kang XW, Wang J, Guo XF, Sun H, Jiang L, et al. Effects of extracellular vesicles from mesenchymal stem cells on oxygen-glucose deprivation/reperfusion-induced neuronal injury. World J Emerg Med. 2021; 12(1):61-7.
doi: 10.5847/wjem.j.1920-8642.2021.01.010 |
| 9 |
Xian PP, Hei Y, Wang R, Wang T, Yang JL, Li JY, et al. Mesenchymal stem cell-derived exosomes as a nanotherapeutic agent for amelioration of inflammation-induced astrocyte alterations in mice. Theranostics. 2019; 9(20):5956-75.
doi: 10.7150/thno.33872 |
| 10 |
Zhang R, Xu M, Wang Y, Xie F, Zhang G, Qin X. Nrf2—a promising therapeutic target for defensing against oxidative stress in stroke. Mol Neurobiol. 2017; 54(8):6006-17.
doi: 10.1007/s12035-016-0111-0 |
| 11 |
Strom J, Xu B, Tian X, Chen QM. Nrf2 protects mitochondrial decay by oxidative stress. FASEB J. 2016; 30(1):66-80.
doi: 10.1096/fsb2.v30.1 |
| 12 |
Rushworth SA, Shah S, MacEwan DJ. TNF mediates the sustained activation of Nrf2 in human monocytes. J Immunol. 2011; 187(2):702-7.
doi: 10.4049/jimmunol.1004117 pmid: 21670314 |
| 13 |
Itoh K, Ye P, Matsumiya T, Tanji K, Ozaki T. Emerging functional cross-talk between the Keap1-Nrf2 system and mitochondria. J Clin Biochem Nutr. 2015; 56(2):91-7.
doi: 10.3164/jcbn.14-134 pmid: 25759513 |
| 14 |
Wen JJ, Porter C, Garg NJ. Inhibition of NFE2L2-antioxidant response element pathway by mitochondrial reactive oxygen species contributes to development of cardiomyopathy and left ventricular dysfunction in chagas disease. Antioxid Redox Signal. 2017; 27(9):550-66.
doi: 10.1089/ars.2016.6831 |
| 15 |
Xiao L, Xu XX, Zhang F, Wang M, Xu Y, Tang D, et al. The mitochondria-targeted antioxidant MitoQ ameliorated tubular injury mediated by mitophagy in diabetic kidney disease via Nrf2/PINK1. Redox Biol. 2017; 11:297-311.
doi: S2213-2317(16)30321-4 pmid: 28033563 |
| 16 |
Wang L, Shi Z, Wang X, Mu S, Xu X, Shen L, et al. Protective effects of bovine milk exosomes against oxidative stress in IEC-6 cells. Eur J Nutr. 2021; 60(1):317-27.
doi: 10.1007/s00394-020-02242-z |
| 17 |
Ricart KC, Bolisetty S, Johnson MS, Perez J, Agarwal A, Murphy MP, et al. The permissive role of mitochondria in the induction of haem oxygenase-1 in endothelial cells. Biochem J. 2009; 419(2):427-36.
doi: 10.1042/BJ20081350 |
| 18 | Yuan Y, Zhang YJ, Zhao SW, Chen J, Yang JL, Wang T, et al. Cadmium-induced apoptosis in neuronal cells is mediated by Fas/FasL-mediated mitochondrial apoptotic signaling pathway. Sci Rep. 2018; 8(1):1-11. |
| 19 | Zuo Y, Hu J, Xu X, Gao X, Wang Y, Zhu S. Sodium azide induces mitochondria-mediated apoptosis in PC12 cells through Pgc-1α-associated signaling pathway. Mol Med Rep. 2019; 19(3):2211-9. |
| 20 |
Maita C, Maita H, Iguchi-Ariga SM, Ariga H. Monomer DJ-1 and its N-terminal sequence are necessary for mitochondrial localization of DJ-1 mutants. PLoS One. 2013; 8(1):e54087.
doi: 10.1371/journal.pone.0054087 |
| 21 |
Zhang XL, Wang ZZ, Shao QH, Zhang Z, Li L, Guo ZY, et al. RNAi-mediated knockdown of DJ-1 leads to mitochondrial dysfunction via Akt/GSK-3ß and JNK signaling pathways in dopaminergic neuron-like cells. Brain Res Bull. 2019; 146:228-36.
doi: 10.1016/j.brainresbull.2019.01.007 |
| 22 | Riba A, Deres L, Eros K, Szabo A, Magyar K, Sumegi B, et al. Doxycycline protects against ROS-induced mitochondrial fragmentation and ISO-induced heart failure. PLoS One. 2017; 12(4):e0175195. |
| 23 |
Maksoud E, Liao EH, Haghighi AP. A neuron-glial trans-signaling cascade mediates LRRK2-induced neurodegeneration. Cell Rep. 2019; 26(7):1774-86.e4.
doi: S2211-1247(19)30106-8 pmid: 30759389 |
| 24 |
Wu XW, Li XM, Liu Y, Yuan NN, Li CW, Kang ZM, et al. Hydrogen exerts neuroprotective effects on OGD/R damaged neurons in rat hippocampal by protecting mitochondrial function via regulating mitophagy mediated by PINK1/Parkin signaling pathway. Brain Res. 2018; 1698:89-98.
doi: 10.1016/j.brainres.2018.06.028 |
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