Extracellular Vesicles and Cx43-Gap Junction Channels Are the Main Routes for Mitochondrial Transfer from Ultra-Purified Mesenchymal Stem Cells, RECs

被引:15
作者
Yang, Jiahao [1 ]
Liu, Lu [1 ]
Oda, Yasuaki [1 ]
Wada, Keisuke [1 ]
Ago, Mako [1 ]
Matsuda, Shinichiro [2 ]
Hattori, Miho [1 ]
Goto, Tsukimi [1 ]
Ishibashi, Shuichi [3 ]
Kawashima-Sonoyama, Yuki [1 ]
Matsuzaki, Yumi [4 ]
Taketani, Takeshi [1 ]
机构
[1] Shimane Univ, Fac Med, Dept Pediat, 89-1 Enya cho, Izumo 6938501, Japan
[2] Shimane Univ Hosp, Dept Med Oncol, 89-1 Enya cho, Izumo 6938501, Japan
[3] Shimane Univ, Fac Med, Dept Digest & Gen Surg, 89-1 Enya cho, Izumo 6938501, Japan
[4] Shimane Univ, Fac Med, Dept Life Sci, 89-1 Enya cho, Izumo 6938501, Japan
关键词
rapidly expanding clones (RECs); mesenchymal stem cells (MSCs); extracellular vesicles (Evs); Cx43-gap junction channels (Cx43-GJCs); mitochondrial transfer; TUNNELING NANOTUBES; STROMAL CELLS; DNA; CONNEXIN43; REPAIR; OVEREXPRESSION; CARDIOMYOCYTES; MODELS; ACTIN;
D O I
10.3390/ijms241210294
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Mitochondria are essential organelles for maintaining intracellular homeostasis. Their dysfunction can directly or indirectly affect cell functioning and is linked to multiple diseases. Donation of exogenous mitochondria is potentially a viable therapeutic strategy. For this, selecting appropriate donors of exogenous mitochondria is critical. We previously demonstrated that ultra-purified bone marrow-derived mesenchymal stem cells (RECs) have better stem cell properties and homogeneity than conventionally cultured bone marrow-derived mesenchymal stem cells. Here, we explored the effect of contact and noncontact systems on three possible mitochondrial transfer mechanisms involving tunneling nanotubes, connexin 43 (Cx43)-mediated gap junction channels (GJCs), and extracellular vesicles (Evs). We show that Evs and Cx43-GJCs provide the main mechanism for mitochondrial transfer from RECs. Through these two critical mitochondrial transfer pathways, RECs could transfer a greater number of mitochondria into mitochondria-deficient (& rho;(0)) cells and could significantly restore mitochondrial functional parameters. Furthermore, we analyzed the effect of exosomes (EXO) on the rate of mitochondrial transfer from RECs and recovery of mitochondrial function. REC-derived EXO appeared to promote mitochondrial transfer and slightly improve the recovery of mtDNA content and oxidative phosphorylation in & rho;(0) cells. Thus, ultrapure, homogenous, and safe stem cell RECs could provide a potential therapeutic tool for diseases associated with mitochondrial dysfunction.
引用
收藏
页数:22
相关论文
共 56 条
  • [21] Mitochondrial DNA in extracellular vesicles declines with age
    Lazo, Stephanie
    Noren Hooten, Nicole
    Green, Jamal
    Eitan, Erez
    Mode, Nicolle A.
    Liu, Qing-Rong
    Zonderman, Alan B.
    Ezike, Ngozi
    Mattson, Mark P.
    Ghosh, Paritosh
    Evans, Michele K.
    [J]. AGING CELL, 2021, 20 (01)
  • [22] Paradoxical overexpression and translocation of connexin43 in homocysteine-treated endothelial cells
    Li, H
    Brodsky, S
    Kumari, S
    Valiunas, V
    Brink, P
    Kaide, JI
    Nasjletti, A
    Goligorsky, MS
    [J]. AMERICAN JOURNAL OF PHYSIOLOGY-HEART AND CIRCULATORY PHYSIOLOGY, 2002, 282 (06): : H2124 - H2133
  • [23] Mitochondrial Transfer from Bone Marrow Mesenchymal Stem Cells to Motor Neurons in Spinal Cord Injury Rats via Gap Junction
    Li, Heyangzi
    Wang, Chao
    He, Teng
    Zhao, Tengfei
    Chen, Ying-ying
    Shen, Yue-liang
    Zhang, Xiaoming
    Wang, Lin-lin
    [J]. THERANOSTICS, 2019, 9 (07): : 2017 - 2035
  • [24] Mitochondrial transfer from Wharton's jelly-derived mesenchymal stem cells to mitochondria-defective cells recaptures impaired mitochondrial function
    Lin, Hung-Yu
    Liou, Chia-Wei
    Chen, Shang-Der
    Hsu, Te-Yao
    Chuang, Jiin-Haur
    Wang, Pei-Wen
    Huang, Sheng-Teng
    Tiao, Mao-Meng
    Chen, Jin-Bor
    Lin, Tsu-Kung
    Chuang, Yao-Chung
    [J]. MITOCHONDRION, 2015, 22 : 31 - 44
  • [25] Mitochondrial Transfer of Wharton's Jelly Mesenchymal Stem Cells Eliminates Mutation Burden and Rescues Mitochondrial Bioenergetics in Rotenone-Stressed MELAS Fibroblasts
    Lin, Tsu-Kung
    Chen, Shang-Der
    Chuang, Yao-Chung
    Lan, Min-Yu
    Chuang, Jiin-Haur
    Wang, Pei-Wen
    Hsu, Te-Yao
    Wang, Feng-Sheng
    Tsai, Meng-Han
    Huang, Sheng-Teng
    Wang, Xiao-Wen
    Tsai, Po-Chin
    Lin, Hung-Yu
    Liou, Chia-Wei
    [J]. OXIDATIVE MEDICINE AND CELLULAR LONGEVITY, 2019, 2019
  • [26] The Ways of Actin: Why Tunneling Nanotubes Are Unique Cell Protrusions
    Ljubojevic, Nina
    Henderson, J. Michael
    Zurzolo, Chiara
    [J]. TRENDS IN CELL BIOLOGY, 2021, 31 (02) : 130 - 142
  • [27] Mitochondria-specific transgenic overexpression of connexin-43 simulates preconditioning-induced cytoprotection of stem cells
    Lu, Gang
    Haider, Husnain Kh
    Porollo, Aleksey
    Ashraf, Muhammad
    [J]. CARDIOVASCULAR RESEARCH, 2010, 88 (02) : 277 - 286
  • [28] LNGFR+THY-1+VCAM-1hi+ Cells Reveal Functionally Distinct Subpopulations in Mesenchymal Stem Cells
    Mabuchi, Yo
    Morikawa, Satoru
    Harada, Seiko
    Niibe, Kunimichi
    Suzuki, Sadafumi
    Renault-Mihara, Francois
    Houlihan, Diarmaid D.
    Akazawa, Chihiro
    Okano, Hideyuki
    Matsuzaki, Yumi
    [J]. STEM CELL REPORTS, 2013, 1 (02): : 152 - 165
  • [29] Mitochondrial DNA repair and aging
    Mandavilli, BS
    Santos, JH
    Van Houten, B
    [J]. MUTATION RESEARCH-FUNDAMENTAL AND MOLECULAR MECHANISMS OF MUTAGENESIS, 2002, 509 (1-2) : 127 - 151
  • [30] Delivery of mitochondria via extracellular vesicles-A new horizon in drug delivery
    Manickam, Devika S.
    [J]. JOURNAL OF CONTROLLED RELEASE, 2022, 343 : 400 - 407