» Articles » PMID: 24075874

The Plant Mitochondrial Genome: Dynamics and Maintenance

Overview
Journal Biochimie
Specialty Biochemistry
Date 2013 Oct 1
PMID 24075874
Citations 148
Authors
Affiliations
Soon will be listed here.
Abstract

Plant mitochondria have a complex and peculiar genetic system. They have the largest genomes, as compared to organelles from other eukaryotic organisms. These can expand tremendously in some species, reaching the megabase range. Nevertheless, whichever the size, the gene content remains modest and restricted to a few polypeptides required for the biogenesis of the oxidative phosphorylation chain complexes, ribosomal proteins, transfer RNAs and ribosomal RNAs. The presence of autonomous plasmids of essentially unknown function further enhances the level of complexity. The physical organization of the plant mitochondrial DNA includes a set of sub-genomic forms resulting from homologous recombination between repeats, with a mixture of linear, circular and branched structures. This material is compacted into membrane-bound nucleoids, which are the inheritance units but also the centers of genome maintenance and expression. Recombination appears to be an essential characteristic of plant mitochondrial genetic processes, both in shaping and maintaining the genome. Under nuclear surveillance, recombination is also the basis for the generation of new mitotypes and is involved in the evolution of the mitochondrial DNA. In line with, or as a consequence of its complex physical organization, replication of the plant mitochondrial DNA is likely to occur through multiple mechanisms, potentially involving recombination processes. We give here a synthetic view of these aspects.

Citing Articles

The organelle genomes of the endangered seagrass reveal sequence divergences, massive gene transfer, and uncommon RNA editing types.

Yong Y, Wang Y, Wang D, Yuan X, Zhang Q Front Plant Sci. 2025; 16:1550467.

PMID: 40034153 PMC: 11873085. DOI: 10.3389/fpls.2025.1550467.


Features and evolutionary adaptations of the mitochondrial genome of W. W. Sm.

Chen R, Rao R, Wang C, Zhu D, Yuan F, Yue L Front Plant Sci. 2025; 15:1509669.

PMID: 39902196 PMC: 11788303. DOI: 10.3389/fpls.2024.1509669.


Mitochondrial Genome Insights into Evolution and Gene Regulation in .

Cui J, Yang Q, Zhang J, Ju C, Cui S Int J Mol Sci. 2025; 26(2).

PMID: 39859262 PMC: 11764873. DOI: 10.3390/ijms26020546.


De novo assembly of the complete mitochondrial genomes of two Camellia-oil tree species reveals their multibranch conformation and evolutionary relationships.

Xiao Z, Gu Y, Zhou J, Lu M, Wang J, Lu K Sci Rep. 2025; 15(1):2899.

PMID: 39843537 PMC: 11754599. DOI: 10.1038/s41598-025-86411-2.


The mitochondrial genome of H. Lév. & Vaniot, an endemic sedge in Korea.

Lee J, Choi S, Kim S Mitochondrial DNA B Resour. 2025; 10(1):88-93.

PMID: 39802349 PMC: 11721983. DOI: 10.1080/23802359.2024.2449090.