Literature DB >> 12835950

Mitochondrial ageing.

M Szibor1, J Holtz.   

Abstract

Mitochondria in largely postmitotic cells (e.g. cardiomyocytes, neurons or skeletal muscle myotubes) have a limited life span of a few weeks. Their replacement during normal turnover requires an intergenomic coordination between the mitochondrial genome (mtDNA, encoding for 13 protein subunits of the respiratory chain, two mitochondrial rRNAs and the 22 mitochondrial tRNAs) and the nuclear genome (encoding for more than 99 % of the mitochondrial proteins). The mtDNA contains only a very small non-coding region, it is exposed to radicals generated by the respiratory chain during aerobic ATP formation, and mitochondrial DNA repair capacity is rather low. Therefore, oxidative damage of mtDNA, accumulating with age, should affect mitochondrially encoded proteins, but the high number of mitochondrial genomes (roughly 10 per mitochondrion) allows a certain degree of heteroplasmy (different genomes within a mitochondrion) without effects on phenotype. Therefore, age-associated increments in mtDNA damage are to a major extent an epiphenomenon. On the other hand, however, there are clonal accumulations of damaged/mutated mtDNA within individual cells up to homoplasmy of mutant mtDNA, which are either neutral with regard to phenotype or which cause substantial phenotype alterations: hyporespiratory phenotype (less radicals and less ATP!) or a phenotype with a dysproportionate respiratory chain, i.e. partial defects within the chain with enhanced radical formation proximal to this defect and with enhanced susceptibility to oxidative stress-triggered apoptosis, probably explaining the progressive loss of cardiomyocytes with advanced age. Thus, a minority of age-associated alterations in mtDNA may explain important features of the ageing heart: myocyte losses and myocyte heterogeneity. However, documentation of definite proof for this possibility is lacking and may be difficult.

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Year:  2003        PMID: 12835950     DOI: 10.1007/s00395-003-0421-z

Source DB:  PubMed          Journal:  Basic Res Cardiol        ISSN: 0300-8428            Impact factor:   17.165


  12 in total

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2.  Absolute quantitation of a heteroplasmic mitochondrial DNA deletion using a multiplex three-primer real-time PCR assay.

Authors:  Bobby G Poe; Marian Navratil; Edgar A Arriaga
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3.  Stem Cells in Aging: Influence of Ontogenic, Genetic and Environmental Factors.

Authors:  Edmond J Yunis; Joaquin Zúñiga; Prasad S Koka; Zaheed Husain; Viviana Romero; Joel N H Stern; Masha Fridkis-Hareli
Journal:  J Stem Cells       Date:  2006

Review 4.  Integrating mitochondriomics in children's environmental health.

Authors:  Kelly J Brunst; Andrea A Baccarelli; Rosalind J Wright
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5.  Measurement of Mitochondrial Oxygen Consumption in Permeabilized Fibers of Drosophila Using Minimal Amounts of Tissue.

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6.  Detecting heteroplasmy from high-throughput sequencing of complete human mitochondrial DNA genomes.

Authors:  Mingkun Li; Anna Schönberg; Michael Schaefer; Roland Schroeder; Ivane Nasidze; Mark Stoneking
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7.  Oxidative damage of mitochondrial DNA in diabetes and its protection by manganese superoxide dismutase.

Authors:  Sally A Madsen-Bouterse; Qing Zhong; Ghulam Mohammad; Ye-Shih Ho; Renu A Kowluru
Journal:  Free Radic Res       Date:  2010-03

Review 8.  Cardiac aging and insulin resistance: could insulin/insulin-like growth factor (IGF) signaling be used as a therapeutic target?

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Journal:  Curr Pharm Des       Date:  2013       Impact factor: 3.116

Review 9.  Oxidative stress and transcriptional regulation in Alzheimer disease.

Authors:  Qingli Shi; Gary E Gibson
Journal:  Alzheimer Dis Assoc Disord       Date:  2007 Oct-Dec       Impact factor: 2.703

10.  Human serum metabolic profiles are age dependent.

Authors:  Zhonghao Yu; Guangju Zhai; Paula Singmann; Ying He; Tao Xu; Cornelia Prehn; Werner Römisch-Margl; Eva Lattka; Christian Gieger; Nicole Soranzo; Joachim Heinrich; Marie Standl; Elisabeth Thiering; Kirstin Mittelstraß; Heinz-Erich Wichmann; Annette Peters; Karsten Suhre; Yixue Li; Jerzy Adamski; Tim D Spector; Thomas Illig; Rui Wang-Sattler
Journal:  Aging Cell       Date:  2012-08-27       Impact factor: 9.304

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