Literature DB >> 25746175

Mitochondrial transfer from Wharton's jelly-derived mesenchymal stem cells to mitochondria-defective cells recaptures impaired mitochondrial function.

Hung-Yu Lin1, Chia-Wei Liou2, Shang-Der Chen3, Te-Yao Hsu4, Jiin-Haur Chuang5, Pei-Wen Wang6, Sheng-Teng Huang7, Mao-Meng Tiao8, Jin-Bor Chen9, Tsu-Kung Lin10, Yao-Chung Chuang11.   

Abstract

Adult mesenchymal stem cell (MSC)-conducted mitochondrial transfer has been recently shown to rescue cellular bioenergetics and prevent cell death caused by mitochondrial dysfunction. Wharton's jelly-derived MSCs (WJMSCs) harvested from postpartum umbilical cords are an accessible and abundant source of stem cells. This study aimed to determine the capability of WJMSCs to transfer their own mitochondria and rescue impaired oxidative phosphorylation (OXPHOS) and bioenergetics caused by mitochondrial DNA defects. To do this, WJMSCs were co-cultured with mitochondrial DNA (mtDNA)-depleted ρ(0) cells and the recapture of mitochondrial function was evaluated. WJMSCs were shown to be capable of transferring their own mitochondria into ρ(0) cells and underwent interorganellar mixture within these cells. Permissive culture media (BrdU-containing and pyruvate- and uridine-free) sieved out a survival cell population from the co-cultured WJMSCs (BrdU-sensitive) and ρ(0) cells (pyruvate/uridine-free). The survival cells had mtDNA identical to that of WJMSCs, whereas they expressed cellular markers identical to that of ρ(0) cells. Importantly, these ρ(0)-plus -WJMSC-mtDNA (ρ(+W)) cells recovered the expression of mtDNA-encoded proteins and exhibited functional oxygen consumption and respiratory control, as well as the activity of electron transport chain (ETC) complexes I, II, III and IV. In addition, ETC complex V-inhibitor-sensitive ATP production and metabolic shifting were also recovered. Furthermore, cellular behaviors including attachment-free proliferation, aerobic viability and OXPHOS-reliant cellular motility were also regained after mitochondrial transfer by WJMSCs. The therapeutic effect of WJMSCs-derived mitochondrial transfer was able to stably sustain for at least 45 passages. In conclusion, this study suggests that WJMSCs may serve as a potential therapeutic strategy for diseases linked to mitochondrial dysfunction through the donation of healthy mitochondria to cells with genetic mitochondrial defects.
Copyright © 2015 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Mitochondrial dysfunction; Mitochondrial transfer; Wharton's jelly mesenchymal stem cell

Mesh:

Year:  2015        PMID: 25746175     DOI: 10.1016/j.mito.2015.02.006

Source DB:  PubMed          Journal:  Mitochondrion        ISSN: 1567-7249            Impact factor:   4.160


  33 in total

1.  Mitochondrial transfer from mesenchymal stem cells improves neuronal metabolism after oxidant injury in vitro: The role of Miro1.

Authors:  Nancy Tseng; Scott C Lambie; Christopher Q Huynh; Bridget Sanford; Manisha Patel; Paco S Herson; D Ryan Ormond
Journal:  J Cereb Blood Flow Metab       Date:  2020-06-05       Impact factor: 6.200

Review 2.  Mitochondria in Acute Kidney Injury.

Authors:  Kenneth M Ralto; Samir M Parikh
Journal:  Semin Nephrol       Date:  2016-01       Impact factor: 5.299

Review 3.  New insights into targeting mitochondria in ischemic injury.

Authors:  Jingjing Jia; Haiqiang Jin; Ding Nan; Weiwei Yu; Yining Huang
Journal:  Apoptosis       Date:  2021-03-09       Impact factor: 4.677

Review 4.  Stem cell-derived mitochondria transplantation: A promising therapy for mitochondrial encephalomyopathy.

Authors:  Kaiming Liu; Zhijian Zhou; Mengxiong Pan; Lining Zhang
Journal:  CNS Neurosci Ther       Date:  2021-02-03       Impact factor: 5.243

5.  PGC-1α induced mitochondrial biogenesis in stromal cells underpins mitochondrial transfer to melanoma.

Authors:  Prakrit R Kumar; Mona Saad; Charlotte Hellmich; Jayna J Mistry; Jamie A Moore; Shannon Conway; Christopher J Morris; Kristian M Bowles; Marc D Moncrieff; Stuart A Rushworth
Journal:  Br J Cancer       Date:  2022-03-26       Impact factor: 9.075

6.  Magnetomitotransfer: An efficient way for direct mitochondria transfer into cultured human cells.

Authors:  Tanja Macheiner; Vera Heike Ingeborg Fengler; Marlene Agreiter; Tobias Eisenberg; Frank Madeo; Dagmar Kolb; Berthold Huppertz; Richard Ackbar; Karine Sargsyan
Journal:  Sci Rep       Date:  2016-10-21       Impact factor: 4.379

7.  Transit and integration of extracellular mitochondria in human heart cells.

Authors:  Douglas B Cowan; Rouan Yao; Jerusha K Thedsanamoorthy; David Zurakowski; Pedro J Del Nido; James D McCully
Journal:  Sci Rep       Date:  2017-12-12       Impact factor: 4.379

8.  Mitochondrial Transfer from Wharton's Jelly Mesenchymal Stem Cell to MERRF Cybrid Reduces Oxidative Stress and Improves Mitochondrial Bioenergetics.

Authors:  Yao-Chung Chuang; Chia-Wei Liou; Shang-Der Chen; Pei-Wen Wang; Jiin-Haur Chuang; Mao-Meng Tiao; Te-Yao Hsu; Hung-Yu Lin; Tsu-Kung Lin
Journal:  Oxid Med Cell Longev       Date:  2017-05-04       Impact factor: 6.543

Review 9.  The Functions, Methods, and Mobility of Mitochondrial Transfer Between Cells.

Authors:  Yiming Qin; Xin Jiang; Qi Yang; Jiaqi Zhao; Qiong Zhou; Yanhong Zhou
Journal:  Front Oncol       Date:  2021-05-10       Impact factor: 6.244

10.  Porcine Adipose-Derived Mesenchymal Stem Cells Retain Their Stem Cell Characteristics and Cell Activities While Enhancing the Expression of Liver-Specific Genes after Acute Liver Failure.

Authors:  Chenxia Hu; Ning Zhou; Jianzhou Li; Ding Shi; Hongcui Cao; Jun Li; Lanjuan Li
Journal:  Int J Mol Sci       Date:  2016-01-05       Impact factor: 5.923

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