Literature DB >> 27636016

Mesenchymal Stromal Cells Deficient in Autophagy Proteins Are Susceptible to Oxidative Injury and Mitochondrial Dysfunction.

Sailaja Ghanta1,2, Konstantin Tsoyi1, Xiaoli Liu1,2, Kiichi Nakahira3, Bonna Ith1, Anna A Coronata1, Laura E Fredenburgh1, Joshua A Englert1, Claude A Piantadosi4, Augustine M K Choi3, Mark A Perrella1,2.   

Abstract

Oxidative stress resulting from inflammatory responses that occur during acute lung injury and sepsis can initiate changes in mitochondrial function. Autophagy regulates cellular processes in the setting of acute lung injury, sepsis, and oxidative stress by modulating the immune response and facilitating turnover of damaged cellular components. We have shown that mesenchymal stromal cells (MSCs) improve survival in murine models of sepsis by also regulating the immune response. However, the effect of autophagy on MSCs and MSC mitochondrial function during oxidative stress is unknown. This study investigated the effect of depletion of autophagic protein microtubule-associated protein 1 light chain 3B (LC3B) and beclin 1 (BECN1) on the response of MSCs to oxidative stress. MSCs were isolated from wild-type (WT) and LC3B-/- or Becn1+/- mice. MSCs from the LC3B-/- and Becn1+/- animals had increased susceptibility to oxidative stress-induced cell death as compared with WT MSCs. The MSCs depleted of autophagic proteins also had impaired mitochondrial function (decreased intracellular ATP, reduced mitochondrial membrane potential, and increased mitochondrial reactive oxygen species production) under oxidative stress as compared with WT MSCs. In WT MSCs, carbon monoxide (CO) preconditioning enhanced autophagy and mitophagy, and rescued the cells from oxidative stress-induced death. CO preconditioning was not able to rescue the decreased survival of MSCs from the LC3B-/- and Becn1+/- animals, further supporting the tenet that CO exerts its cytoprotective effects via the autophagy pathway.

Entities:  

Keywords:  autophagy; carbon monoxide; mesenchymal stromal cells; mitochondria; oxidative stress

Mesh:

Substances:

Year:  2017        PMID: 27636016      PMCID: PMC5359535          DOI: 10.1165/rcmb.2016-0061OC

Source DB:  PubMed          Journal:  Am J Respir Cell Mol Biol        ISSN: 1044-1549            Impact factor:   6.914


  50 in total

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2.  Human mesenchymal stem cells efficiently manage oxidative stress.

Authors:  Araceli Valle-Prieto; Paulette A Conget
Journal:  Stem Cells Dev       Date:  2010-08-18       Impact factor: 3.272

3.  Autophagic protein LC3B confers resistance against hypoxia-induced pulmonary hypertension.

Authors:  Seon-Jin Lee; Akaya Smith; Lanping Guo; Tero-Pekka Alastalo; Molong Li; Hirofumi Sawada; Xiaoli Liu; Zhi-Hua Chen; Emeka Ifedigbo; Yang Jin; Carol Feghali-Bostwick; Stefan W Ryter; Hong Pyo Kim; Marlene Rabinovitch; Augustine M K Choi
Journal:  Am J Respir Crit Care Med       Date:  2010-10-01       Impact factor: 21.405

Review 4.  Regulation of autophagy in oxygen-dependent cellular stress.

Authors:  Stefan W Ryter; Augustine M K Choi
Journal:  Curr Pharm Des       Date:  2013       Impact factor: 3.116

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Authors:  Herbert W Virgin; Beth Levine
Journal:  Nat Immunol       Date:  2009-05       Impact factor: 25.606

Review 6.  Regulation mechanisms and signaling pathways of autophagy.

Authors:  Congcong He; Daniel J Klionsky
Journal:  Annu Rev Genet       Date:  2009       Impact factor: 16.830

7.  Methods for monitoring autophagy using GFP-LC3 transgenic mice.

Authors:  Noboru Mizushima
Journal:  Methods Enzymol       Date:  2009       Impact factor: 1.600

8.  Mesenchymal stromal cells improve survival during sepsis in the absence of heme oxygenase-1: the importance of neutrophils.

Authors:  Sean R R Hall; Konstantin Tsoyi; Bonna Ith; Robert F Padera; James A Lederer; Zhihong Wang; Xiaoli Liu; Mark A Perrella
Journal:  Stem Cells       Date:  2013-02       Impact factor: 6.277

Review 9.  Tightrope act: autophagy in stem cell renewal, differentiation, proliferation, and aging.

Authors:  Kanchan Phadwal; Alexander Scarth Watson; Anna Katharina Simon
Journal:  Cell Mol Life Sci       Date:  2012-06-05       Impact factor: 9.261

Review 10.  Carbon monoxide: present and future indications for a medical gas.

Authors:  Stefan W Ryter; Augustine M K Choi
Journal:  Korean J Intern Med       Date:  2013-02-27       Impact factor: 2.884

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  23 in total

1.  A phase I trial of low-dose inhaled carbon monoxide in sepsis-induced ARDS.

Authors:  Laura E Fredenburgh; Mark A Perrella; Diana Barragan-Bradford; Dean R Hess; Elizabeth Peters; Karen E Welty-Wolf; Bryan D Kraft; R Scott Harris; Rie Maurer; Kiichi Nakahira; Clara Oromendia; John D Davies; Angelica Higuera; Kristen T Schiffer; Joshua A Englert; Paul B Dieffenbach; David A Berlin; Susan Lagambina; Mark Bouthot; Andrew I Sullivan; Paul F Nuccio; Mamary T Kone; Mona J Malik; Maria Angelica Pabon Porras; Eli Finkelsztein; Tilo Winkler; Shelley Hurwitz; Charles N Serhan; Claude A Piantadosi; Rebecca M Baron; B Taylor Thompson; Augustine Mk Choi
Journal:  JCI Insight       Date:  2018-12-06

2.  Seeing CO in a New Light: Enhancing Autophagy in Mesenchymal Stromal Cells and Implications for Cell Therapy.

Authors:  Ana L Mora; Mauricio Rojas
Journal:  Am J Respir Cell Mol Biol       Date:  2017-03       Impact factor: 6.914

3.  Peripheral Blood Mononuclear Cells Demonstrate Mitochondrial Damage Clearance During Sepsis.

Authors:  Bryan D Kraft; Lingye Chen; Hagir B Suliman; Claude A Piantadosi; Karen E Welty-Wolf
Journal:  Crit Care Med       Date:  2019-05       Impact factor: 7.598

4.  Inhibition of mitophagy drives macrophage activation and antibacterial defense during sepsis.

Authors:  Danish Patoli; Franck Mignotte; Valérie Deckert; Alois Dusuel; Adélie Dumont; Aurélie Rieu; Antoine Jalil; Kevin Van Dongen; Thibaut Bourgeois; Thomas Gautier; Charlène Magnani; Naig Le Guern; Stéphane Mandard; Jean Bastin; Fatima Djouadi; Christine Schaeffer; Nina Guillaumot; Michel Narce; Maxime Nguyen; Julien Guy; Auguste Dargent; Jean-Pierre Quenot; Mickaël Rialland; David Masson; Johan Auwerx; Laurent Lagrost; Charles Thomas
Journal:  J Clin Invest       Date:  2020-11-02       Impact factor: 14.808

5.  Mesenchymal Stromal Cells Modulate Macrophages in Clinically Relevant Lung Injury Models by Extracellular Vesicle Mitochondrial Transfer.

Authors:  Thomas J Morrison; Megan V Jackson; Erin K Cunningham; Adrien Kissenpfennig; Daniel F McAuley; Cecilia M O'Kane; Anna D Krasnodembskaya
Journal:  Am J Respir Crit Care Med       Date:  2017-11-15       Impact factor: 21.405

6.  Prostaglandin E1 protects coronary microvascular function via the glycogen synthase kinase 3β-mitochondrial permeability transition pore pathway in rat hearts subjected to sodium laurate-induced coronary microembolization.

Authors:  Houyong Zhu; Yu Ding; Xiaoqun Xu; Meiya Li; Yangliang Fang; Beibei Gao; Hengyi Mao; Guoxin Tong; Liang Zhou; Jinyu Huang
Journal:  Am J Transl Res       Date:  2017-05-15       Impact factor: 4.060

Review 7.  Autophagy in fate determination of mesenchymal stem cells and bone remodeling.

Authors:  Xiao-Dan Chen; Jia-Li Tan; Yi Feng; Li-Jia Huang; Mei Zhang; Bin Cheng
Journal:  World J Stem Cells       Date:  2020-08-26       Impact factor: 5.326

Review 8.  Carbon monoxide in lung cell physiology and disease.

Authors:  Stefan W Ryter; Kevin C Ma; Augustine M K Choi
Journal:  Am J Physiol Cell Physiol       Date:  2017-11-08       Impact factor: 4.249

9.  Mesenchymal Stromal Cell Therapy: Does the Source Matter?

Authors:  Sailaja Ghanta; Min-Young Kwon; Ivan O Rosas; Xiaoli Liu; Mark A Perrella
Journal:  Crit Care Med       Date:  2018-02       Impact factor: 7.598

10.  Senescent Mesenchymal Stem Cells: Disease Mechanism and Treatment Strategy.

Authors:  Yajun Liu; Qian Chen
Journal:  Curr Mol Biol Rep       Date:  2020-10-28
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