Literature DB >> 27444179

Loss of the antioxidant enzyme CuZnSOD (Sod1) mimics an age-related increase in absolute mitochondrial DNA copy number in the skeletal muscle.

Dustin R Masser1,2,3,4, Nicholas W Clark1, Holly Van Remmen4,5, Willard M Freeman6,7,8,9.   

Abstract

Mitochondria contain multiple copies of the circular mitochondrial genome (mtDNA) that encodes ribosomal RNAs and proteins locally translated for oxidative phosphorylation. Loss of mtDNA integrity, both altered copy number and increased mutations, is implicated in cellular dysfunction with aging. Published data on mtDNA copy number and aging is discordant which may be due to methodological limitations for quantifying mtDNA copy number. Existing quantitative PCR (qPCR) mtDNA copy number quantification methods provide only relative abundances and are problematic to normalize to different template input amounts and across tissues/sample types. As well, existing methods cannot quantify mtDNA copy number in subcellular isolates, such as isolated mitochondria and neuronal synaptic terminals, which lack nuclear genomic DNA for normalization. We have developed and validated a novel absolute mtDNA copy number quantitation method that uses chip-based digital polymerase chain reaction (dPCR) to count the number of copies of mtDNA and used this novel method to assess the literature discrepancy in which there is no clear consensus whether mtDNA numbers change with aging in skeletal muscle. Skeletal muscle in old mice was found to have increased absolute mtDNA numbers compared to young controls. Furthermore, young Sod1 -/- mice were assessed and show an age-mimicking increase in skeletal muscle mtDNA. These findings reproduce a number of previous studies that demonstrate age-related increases in mtDNA. This simple and cost effective dPCR approach should enable precise and accurate mtDNA copy number quantitation in mitochondrial studies, eliminating contradictory studies of mitochondrial DNA content with aging.

Entities:  

Keywords:  Aging; Digital PCR; Mitochondria; Sod1; Synaptosomes; mtDNA; mtDNA copy number

Mesh:

Substances:

Year:  2016        PMID: 27444179      PMCID: PMC5061674          DOI: 10.1007/s11357-016-9930-1

Source DB:  PubMed          Journal:  Age (Dordr)        ISSN: 0161-9152


  49 in total

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Authors:  Gustavo Barja
Journal:  Antioxid Redox Signal       Date:  2013-07-03       Impact factor: 8.401

2.  Low mitochondrial DNA content associates with familial longevity: the Leiden Longevity Study.

Authors:  N van Leeuwen; M Beekman; J Deelen; E B van den Akker; A J M de Craen; P E Slagboom; L M 't Hart
Journal:  Age (Dordr)       Date:  2014-02-20

3.  Decline in skeletal muscle mitochondrial function with aging in humans.

Authors:  Kevin R Short; Maureen L Bigelow; Jane Kahl; Ravinder Singh; Jill Coenen-Schimke; Sreekumar Raghavakaimal; K Sreekumaran Nair
Journal:  Proc Natl Acad Sci U S A       Date:  2005-03-30       Impact factor: 11.205

4.  Skeletal muscle mitochondrial DNA deletions are not increased in CuZn-superoxide dismutase deficient mice.

Authors:  Jonathan Wanagat; Nazanin Ahmadieh; Jason H Bielas; Nolan G Ericson; Holly Van Remmen
Journal:  Exp Gerontol       Date:  2014-11-20       Impact factor: 4.032

Review 5.  Mitochondrial hormesis and diabetic complications.

Authors:  Kumar Sharma
Journal:  Diabetes       Date:  2015-03       Impact factor: 9.461

6.  Precise determination of mitochondrial DNA copy number in human skeletal and cardiac muscle by a PCR-based assay: lack of change of copy number with age.

Authors:  Francis J Miller; Franklin L Rosenfeldt; Chunfang Zhang; Anthony W Linnane; Phillip Nagley
Journal:  Nucleic Acids Res       Date:  2003-06-01       Impact factor: 16.971

7.  Mitochondria, oxidative DNA damage, and aging.

Authors:  R M Anson; V A Bohr
Journal:  J Am Aging Assoc       Date:  2000-10

8.  Mitochondrial transcription factor A regulates mtDNA copy number in mammals.

Authors:  Mats I Ekstrand; Maria Falkenberg; Anja Rantanen; Chan Bae Park; Martina Gaspari; Kjell Hultenby; Pierre Rustin; Claes M Gustafsson; Nils-Göran Larsson
Journal:  Hum Mol Genet       Date:  2004-03-11       Impact factor: 6.150

9.  Increased superoxide in vivo accelerates age-associated muscle atrophy through mitochondrial dysfunction and neuromuscular junction degeneration.

Authors:  Youngmok C Jang; Michael S Lustgarten; Yuhong Liu; Florian L Muller; Arunabh Bhattacharya; Hanyu Liang; Adam B Salmon; Susan V Brooks; Lisa Larkin; Christopher R Hayworth; Arlan Richardson; Holly Van Remmen
Journal:  FASEB J       Date:  2009-12-29       Impact factor: 5.191

10.  Absolute quantification by droplet digital PCR versus analog real-time PCR.

Authors:  Christopher M Hindson; John R Chevillet; Hilary A Briggs; Emily N Gallichotte; Ingrid K Ruf; Benjamin J Hindson; Robert L Vessella; Muneesh Tewari
Journal:  Nat Methods       Date:  2013-09-01       Impact factor: 28.547

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  8 in total

1.  Functional changes in the neural retina occur in the absence of mitochondrial dysfunction in a rodent model of diabetic retinopathy.

Authors:  Dustin R Masser; Laura Otalora; Nicholas W Clark; Michael T Kinter; Michael H Elliott; Willard M Freeman
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2.  Lifelong Ulk1-Mediated Autophagy Deficiency in Muscle Induces Mitochondrial Dysfunction and Contractile Weakness.

Authors:  Anna S Nichenko; Jacob R Sorensen; W Michael Southern; Anita E Qualls; Albino G Schifino; Jennifer McFaline-Figueroa; Jamie E Blum; Kayvan F Tehrani; Hang Yin; Luke J Mortensen; Anna E Thalacker-Mercer; Sarah M Greising; Jarrod A Call
Journal:  Int J Mol Sci       Date:  2021-02-16       Impact factor: 5.923

3.  Decreased mitochondrial D-loop region methylation mediates an increase in mitochondrial DNA copy number in CADASIL.

Authors:  Jiewen Zhang; Junkui Shang; Fengyu Wang; Xuejing Huo; Ruihua Sun; Zhixia Ren; Wan Wang; Miaomiao Yang; Gai Li; Dandan Gao; Ruijie Liu; Pingping Bai; Shuyi Wang; Yanliang Wang; Xi Yan
Journal:  Clin Epigenetics       Date:  2022-01-04       Impact factor: 6.551

4.  Scavenging mitochondrial hydrogen peroxide by peroxiredoxin 3 overexpression attenuates contractile dysfunction and muscle atrophy in a murine model of accelerated sarcopenia.

Authors:  Bumsoo Ahn; Rojina Ranjit; Parker Kneis; Hongyang Xu; Katarzyna M Piekarz; Willard M Freeman; Michael Kinter; Arlan Richardson; Qitao Ran; Susan V Brooks; Holly Van Remmen
Journal:  Aging Cell       Date:  2022-02-24       Impact factor: 9.304

5.  Transgenic expression of SOD1 specifically in neurons of Sod1 deficient mice prevents defects in muscle mitochondrial function and calcium handling.

Authors:  Yu Su; Bumsoo Ahn; Peter C D Macpherson; Rojina Ranjit; Dennis R Claflin; Holly Van Remmen; Susan V Brooks
Journal:  Free Radic Biol Med       Date:  2021-02-06       Impact factor: 7.376

6.  Role of Signaling Molecules in Mitochondrial Stress Response.

Authors:  Shauna Hill; Kavithalakshmi Sataranatarajan; Holly Van Remmen
Journal:  Front Genet       Date:  2018-07-10       Impact factor: 4.599

7.  Mitochondrial oxidative stress impairs contractile function but paradoxically increases muscle mass via fibre branching.

Authors:  Bumsoo Ahn; Rojina Ranjit; Pavithra Premkumar; Gavin Pharaoh; Katarzyna M Piekarz; Satoshi Matsuzaki; Dennis R Claflin; Kaitlyn Riddle; Jennifer Judge; Shylesh Bhaskaran; Kavithalakshmi Satara Natarajan; Erika Barboza; Benjamin Wronowski; Michael Kinter; Kenneth M Humphries; Timothy M Griffin; Willard M Freeman; Arlan Richardson; Susan V Brooks; Holly Van Remmen
Journal:  J Cachexia Sarcopenia Muscle       Date:  2019-02-01       Impact factor: 12.910

8.  Reduced mitochondrial D-loop methylation levels in sporadic amyotrophic lateral sclerosis.

Authors:  Andrea Stoccoro; Adam R Smith; Lorena Mosca; Alessandro Marocchi; Francesca Gerardi; Christian Lunetta; Cristina Cereda; Stella Gagliardi; Katie Lunnon; Lucia Migliore; Fabio Coppedè
Journal:  Clin Epigenetics       Date:  2020-09-11       Impact factor: 6.551

  8 in total

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