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Do mitochondrial DNA and metabolic rate complement each other in determination of the mammalian maximum longevity?
Gilad Lehmann1, Elena Segal, Khachik K Muradian
1The Shraga Segal Department of Microbiology and Immunology, Center for Multidisciplinary Research on Aging, Ben-Gurion University of the Negev, Beer-Sheva, Israel.
Abstract:
In animal cells, mitochondria are semiautonomous organelles of virtually "hostile" (bacterial) origin, with their own code and genome (mtDNA). The semiautonomy and restricted resources could result in occasional "conflicts of interests" with other cellular components, in which mitochondria have greater chances to be "the weakest link," thus limiting longevity. Two principal questions are addressed: (1) to what extent the mammalian maximum life span (MLS) is associated with mtDNA base composition? (2) Does mtDNA base composition correlate with another important mitochondria-associated variable-resting metabolic rate (RMR)-and whether they complement each other in determination of MLS? Analysis of 140 mammalian species revealed significant correlations between MLS and the content of the four mtDNA nucleotides, especially noted for GC pairs (r(2) = 0.42; p < 10(-17)). The most remarkable finding of this study is that multivariate stepwise analysis selected only the GC content and RMR, which together explained 77% of variation in MLS (p < 10(-25)). To the authors' knowledge, it is the highest coefficient of MLS determination that has ever been reported for a comparable sample size. Taking into account substantial errors in estimation of MLS and RMR, it could mean that the GC and RMR explain most of the MLS biological variation. Other putative players in MLS determination should have relatively small contribution or their effects should be realized via the same channels. Although further research is clearly warranted, the extraordinary high correlation of mtDNA GC and RMR with MLS suggests a "direct hitting" of the core longevity targets, inferring mitochondria as a primary object for longevity-promoting interventions.
Insights
Mitochondrial DNA (mtDNA) GC content and resting metabolic rate (RMR) significantly correlate with mammalian maximum life span (MLS). Together, these factors explain a substantial portion of MLS variation, highlighting mitochondria
Area of Science:
- Mitochondrial biology
- Gerontology
- Comparative genomics
Background:
- Mitochondria, originating from bacteria, possess their own genome (mtDNA) and can experience conflicts within animal cells.
- This
- weakest link
- status may limit organismal longevity.
- Mitochondrial DNA base composition and resting metabolic rate (RMR) are potential determinants of maximum life span (MLS).
Purpose of the Study:
- To investigate the association between mammalian maximum life span (MLS) and mitochondrial DNA (mtDNA) base composition.
- To determine if mtDNA base composition correlates with resting metabolic rate (RMR) and if they jointly influence MLS.
Main Methods:
- Analysis of mtDNA nucleotide content across 140 mammalian species.
- Multivariate stepwise analysis to identify key predictors of MLS.
- Correlation analysis between MLS, mtDNA GC content, and RMR.
Main Results:
- Significant correlations were found between MLS and mtDNA nucleotide content, particularly GC pairs (r(2) = 0.42).
- Multivariate analysis revealed that mtDNA GC content and RMR together explained 77% of the variation in MLS (p < 10(-25)).
- This represents the highest determination coefficient for MLS reported for a comparable sample size.
Conclusions:
- Mitochondrial DNA GC content and RMR are major determinants of mammalian maximum life span (MLS).
- These factors likely target core longevity mechanisms, suggesting mitochondria as a key focus for longevity interventions.
- Further research is warranted, but findings strongly implicate mitochondria in regulating lifespan.
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