» Articles » PMID: 15016765

Mitochondrial Transcription Factor A Regulates MtDNA Copy Number in Mammals

Overview
Journal Hum Mol Genet
Date 2004 Mar 16
PMID 15016765
Citations 414
Authors
Affiliations
Soon will be listed here.
Abstract

Mitochondrial DNA (mtDNA) copy number regulation is altered in several human mtDNA-mutation diseases and it is also important in a variety of normal physiological processes. Mitochondrial transcription factor A (TFAM) is essential for human mtDNA transcription and we demonstrate here that it is also a key regulator of mtDNA copy number. We initially performed in vitro transcription studies and determined that the human TFAM protein is a poor activator of mouse mtDNA transcription, despite its high capacity for unspecific DNA binding. Next, we generated P1 artificial chromosome (PAC) transgenic mice ubiquitously expressing human TFAM. The introduced human TFAM gene was regulated in a similar fashion as the endogenous mouse Tfam gene and expression of the human TFAM protein in the mouse did not result in down-regulation of the endogenous expression. The PAC-TFAM mice thus had a net overexpression of TFAM protein and this resulted in a general increase of mtDNA copy number. We used a combination of mice with TFAM overexpression and TFAM knockout and demonstrated that mtDNA copy number is directly proportional to the total TFAM protein levels also in mouse embryos. Interestingly, the expression of human TFAM in the mouse results in up-regulation of mtDNA copy number without increasing respiratory chain capacity or mitochondrial mass. It is thus possible to experimentally dissociate mtDNA copy number regulation from mtDNA expression and mitochondrial biogenesis in mammals in vivo. In conclusion, our results provide genetic evidence for a novel role for TFAM in direct regulation of mtDNA copy number in mammals.

Citing Articles

PPARGC1A regulates transcriptional control of mitochondrial biogenesis in early bovine embryos.

Idrees M, Haider Z, Perera C, Ullah S, Lee S, Lee S Front Cell Dev Biol. 2025; 12:1531378.

PMID: 39897080 PMC: 11782182. DOI: 10.3389/fcell.2024.1531378.


Mitochondrial DNA copy number alterations: Key players in the complexity of glioblastoma (Review).

Yusoff A, Mohd Khair S, Abd Radzak S Mol Med Rep. 2025; 31(3).

PMID: 39886971 PMC: 11795256. DOI: 10.3892/mmr.2025.13443.


Sequencing and characterizing human mitochondrial genomes in the biobank-based genomic research paradigm.

Luo L, Wang M, Liu Y, Li J, Bu F, Yuan H Sci China Life Sci. 2025; .

PMID: 39843848 DOI: 10.1007/s11427-024-2736-7.


Hotspots for Disease-Causing Mutations in the Mitochondrial TIM23 Import Complex.

Jain S, Paz E, Azem A Genes (Basel). 2025; 15(12.

PMID: 39766801 PMC: 11675802. DOI: 10.3390/genes15121534.


Mitochondrial-cytochrome c oxidase II promotes glutaminolysis to sustain tumor cell survival upon glucose deprivation.

Yi Y, Wang G, Zhang W, Yu S, Fei J, An T Nat Commun. 2025; 16(1):212.

PMID: 39747079 PMC: 11695821. DOI: 10.1038/s41467-024-55768-9.