Literature DB >> 26176921

Metabolic rescue in pluripotent cells from patients with mtDNA disease.

Hong Ma1, Clifford D L Folmes2, Jun Wu3, Robert Morey4, Sergio Mora-Castilla4, Alejandro Ocampo3, Li Ma3, Joanna Poulton5, Xinjian Wang6, Riffat Ahmed1, Eunju Kang1, Yeonmi Lee1, Tomonari Hayama1, Ying Li1, Crystal Van Dyken1, Nuria Marti Gutierrez1, Rebecca Tippner-Hedges1, Amy Koski1, Nargiz Mitalipov1, Paula Amato7, Don P Wolf8, Taosheng Huang6, Andre Terzic2, Louise C Laurent4, Juan Carlos Izpisua Belmonte3, Shoukhrat Mitalipov1.   

Abstract

Mitochondria have a major role in energy production via oxidative phosphorylation, which is dependent on the expression of critical genes encoded by mitochondrial (mt)DNA. Mutations in mtDNA can cause fatal or severely debilitating disorders with limited treatment options. Clinical manifestations vary based on mutation type and heteroplasmy (that is, the relative levels of mutant and wild-type mtDNA within each cell). Here we generated genetically corrected pluripotent stem cells (PSCs) from patients with mtDNA disease. Multiple induced pluripotent stem (iPS) cell lines were derived from patients with common heteroplasmic mutations including 3243A>G, causing mitochondrial encephalomyopathy and stroke-like episodes (MELAS), and 8993T>G and 13513G>A, implicated in Leigh syndrome. Isogenic MELAS and Leigh syndrome iPS cell lines were generated containing exclusively wild-type or mutant mtDNA through spontaneous segregation of heteroplasmic mtDNA in proliferating fibroblasts. Furthermore, somatic cell nuclear transfer (SCNT) enabled replacement of mutant mtDNA from homoplasmic 8993T>G fibroblasts to generate corrected Leigh-NT1 PSCs. Although Leigh-NT1 PSCs contained donor oocyte wild-type mtDNA (human haplotype D4a) that differed from Leigh syndrome patient haplotype (F1a) at a total of 47 nucleotide sites, Leigh-NT1 cells displayed transcriptomic profiles similar to those in embryo-derived PSCs carrying wild-type mtDNA, indicative of normal nuclear-to-mitochondrial interactions. Moreover, genetically rescued patient PSCs displayed normal metabolic function compared to impaired oxygen consumption and ATP production observed in mutant cells. We conclude that both reprogramming approaches offer complementary strategies for derivation of PSCs containing exclusively wild-type mtDNA, through spontaneous segregation of heteroplasmic mtDNA in individual iPS cell lines or mitochondrial replacement by SCNT in homoplasmic mtDNA-based disease.

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Year:  2015        PMID: 26176921     DOI: 10.1038/nature14546

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  30 in total

1.  A mutation in the tRNA(Leu)(UUR) gene associated with the MELAS subgroup of mitochondrial encephalomyopathies.

Authors:  Y Goto; I Nonaka; S Horai
Journal:  Nature       Date:  1990-12-13       Impact factor: 49.962

2.  A mitochondrial bioenergetic etiology of disease.

Authors:  Douglas C Wallace
Journal:  J Clin Invest       Date:  2013-04-01       Impact factor: 14.808

3.  Multiple independent occurrence of the 3243 mutation in mitochondrial tRNA(leuUUR) in patients with the MELAS phenotype.

Authors:  K J Morten; J Poulton; B Sykes
Journal:  Hum Mol Genet       Date:  1995-09       Impact factor: 6.150

4.  Nuclear genome transfer in human oocytes eliminates mitochondrial DNA variants.

Authors:  Daniel Paull; Valentina Emmanuele; Keren A Weiss; Nathan Treff; Latoya Stewart; Haiqing Hua; Matthew Zimmer; David J Kahler; Robin S Goland; Scott A Noggle; Robert Prosser; Michio Hirano; Mark V Sauer; Dieter Egli
Journal:  Nature       Date:  2012-12-19       Impact factor: 49.962

5.  Human embryonic stem cells derived by somatic cell nuclear transfer.

Authors:  Masahito Tachibana; Paula Amato; Michelle Sparman; Nuria Marti Gutierrez; Rebecca Tippner-Hedges; Hong Ma; Eunju Kang; Alimujiang Fulati; Hyo-Sang Lee; Hathaitip Sritanaudomchai; Keith Masterson; Janine Larson; Deborah Eaton; Karen Sadler-Fredd; David Battaglia; David Lee; Diana Wu; Jeffrey Jensen; Phillip Patton; Sumita Gokhale; Richard L Stouffer; Don Wolf; Shoukhrat Mitalipov
Journal:  Cell       Date:  2013-05-15       Impact factor: 41.582

6.  Metabolic plasticity in stem cell homeostasis and differentiation.

Authors:  Clifford D L Folmes; Petras P Dzeja; Timothy J Nelson; Andre Terzic
Journal:  Cell Stem Cell       Date:  2012-11-02       Impact factor: 24.633

7.  MITOMAP: a human mitochondrial genome database--2004 update.

Authors:  Marty C Brandon; Marie T Lott; Kevin Cuong Nguyen; Syawal Spolim; Shamkant B Navathe; Pierre Baldi; Douglas C Wallace
Journal:  Nucleic Acids Res       Date:  2005-01-01       Impact factor: 16.971

8.  The challenges of mitochondrial replacement.

Authors:  Patrick F Chinnery; Lyndsey Craven; Shoukhrat Mitalipov; James B Stewart; Mary Herbert; Douglass M Turnbull
Journal:  PLoS Genet       Date:  2014-04-24       Impact factor: 5.917

9.  Towards germline gene therapy of inherited mitochondrial diseases.

Authors:  Masahito Tachibana; Paula Amato; Michelle Sparman; Joy Woodward; Dario Melguizo Sanchis; Hong Ma; Nuria Marti Gutierrez; Rebecca Tippner-Hedges; Eunju Kang; Hyo-Sang Lee; Cathy Ramsey; Keith Masterson; David Battaglia; David Lee; Diana Wu; Jeffrey Jensen; Phillip Patton; Sumita Gokhale; Richard Stouffer; Shoukhrat Mitalipov
Journal:  Nature       Date:  2012-10-24       Impact factor: 49.962

10.  MtDNA segregation in heteroplasmic tissues is common in vivo and modulated by haplotype differences and developmental stage.

Authors:  Ralf Steinborn; Gottfried Brem; Joerg Patrick Burgstaller; Iain G Johnston; Nick S Jones; Jana Albrechtová; Thomas Kolbe; Claus Vogl; Andreas Futschik; Corina Mayrhofer; Dieter Klein; Sonja Sabitzer; Mirjam Blattner; Christian Gülly; Joanna Poulton; Thomas Rülicke; Jaroslav Piálek
Journal:  Cell Rep       Date:  2014-06-06       Impact factor: 9.423

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  73 in total

1.  Natural underlying mtDNA heteroplasmy as a potential source of intra-person hiPSC variability.

Authors:  Ester Perales-Clemente; Alexandra N Cook; Jared M Evans; Samantha Roellinger; Frank Secreto; Valentina Emmanuele; Devin Oglesbee; Vamsi K Mootha; Michio Hirano; Eric A Schon; Andre Terzic; Timothy J Nelson
Journal:  EMBO J       Date:  2016-07-19       Impact factor: 11.598

2.  Genomic instability during reprogramming by nuclear transfer is DNA replication dependent.

Authors:  Gloryn Chia; Judith Agudo; Nathan Treff; Mark V Sauer; David Billing; Brian D Brown; Richard Baer; Dieter Egli
Journal:  Nat Cell Biol       Date:  2017-03-06       Impact factor: 28.824

3.  Mitochondrial Genomic Backgrounds Affect Nuclear DNA Methylation and Gene Expression.

Authors:  Carolyn J Vivian; Amanda E Brinker; Stefan Graw; Devin C Koestler; Christophe Legendre; Gerald C Gooden; Bodour Salhia; Danny R Welch
Journal:  Cancer Res       Date:  2017-06-29       Impact factor: 12.701

4.  The second genome: Effects of the mitochondrial genome on cancer progression.

Authors:  Adam D Scheid; Thomas C Beadnell; Danny R Welch
Journal:  Adv Cancer Res       Date:  2019-02-27       Impact factor: 6.242

Review 5.  Inherited mitochondrial genomic instability and chemical exposures.

Authors:  Sherine S L Chan
Journal:  Toxicology       Date:  2017-07-26       Impact factor: 4.221

6.  Mitochondrial Transfer by Photothermal Nanoblade Restores Metabolite Profile in Mammalian Cells.

Authors:  Ting-Hsiang Wu; Enrico Sagullo; Dana Case; Xin Zheng; Yanjing Li; Jason S Hong; Tara TeSlaa; Alexander N Patananan; J Michael McCaffery; Kayvan Niazi; Daniel Braas; Carla M Koehler; Thomas G Graeber; Pei-Yu Chiou; Michael A Teitell
Journal:  Cell Metab       Date:  2016-05-10       Impact factor: 27.287

Review 7.  Somatic Cell Nuclear Transfer Reprogramming: Mechanisms and Applications.

Authors:  Shogo Matoba; Yi Zhang
Journal:  Cell Stem Cell       Date:  2018-07-19       Impact factor: 24.633

8.  Spatially Restricting Bioorthogonal Nucleoside Biosynthesis Enables Selective Metabolic Labeling of the Mitochondrial Transcriptome.

Authors:  Kim Nguyen; Mahima B Aggarwal; Chao Feng; Gabriela Balderrama; Michael Fazio; Ali Mortazavi; Robert C Spitale
Journal:  ACS Chem Biol       Date:  2018-05-17       Impact factor: 5.100

9.  Emerging Frontiers in the Study of Molecular Evolution.

Authors:  David A Liberles; Belinda Chang; Kerry Geiler-Samerotte; Aaron Goldman; Jody Hey; Betül Kaçar; Michelle Meyer; William Murphy; David Posada; Andrew Storfer
Journal:  J Mol Evol       Date:  2020-04       Impact factor: 2.395

Review 10.  Mitochondria in pluripotent stem cells: stemness regulators and disease targets.

Authors:  Clifford Dl Folmes; Hong Ma; Shoukhrat Mitalipov; Andre Terzic
Journal:  Curr Opin Genet Dev       Date:  2016-03-05       Impact factor: 5.578

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