The molecular mechanisms of crista formation: how mitochondria give themselves breathing room

Cristae are mitochondrial subcompartments that give the organelle its distinctive appearance. More significantly, mitochondria are the proverbial powerhouses as cristae house the molecular machinery underlying cellular respiration, a process that converts carbon sources into ATP by chemiosmosis. The form of cristae is invariably connected to their bioenergetic function. Here, we review our current understanding of the molecules underpinning crista formation. Not surprisingly, respiratory chain multiprotein complexes are involved in crista formation, with F1FO-ATP synthase dimers being eminent membrane sculptors. But crista formation also requires factors that are not directly part of the respiratory chain. The most ancient is the MICOS complex, which delineates the subcompartment and acts as a hub for crista biogenesis. The mitochondrial inner membrane (IM), from which cristae emerge, is remodelled by different dynamin-related proteins in animals and fungi. Cardiolipin is an integral component of the membranous fabric of the IM. To begin to grasp general design principles underlying crista formation, we synthesize findings from canonical animal and yeast experimental models with those from diverse protists and other eukaryotes. However, how these molecules are orchestrated during crista formation remains a hidden piece in our understanding of how cells differentiate in specialized forms. We highlight the few knowns about crista formation in a handful of organisms to guide research into the many unknowns about how complex subcompartments represented by mitochondrial cristae are formed.

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Publication Details

Journal
Biochemical Society Transactions
Published
2026-08-27
DOI
https://doi.org/10.1042/bst20260167
Primary Topic
Mitochondrial Function and Pathology
Type
article
Field-Weighted Citation Impact
0.00

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article

The molecular mechanisms of crista formation: how mitochondria give themselves breathing room

Lilia Colina-Tenorio, Alexander W. Bruce, Hassan Hashimi, Martina Bohuslavová
Biochemical Society Transactions
Mitochondrial Function and Pathology
article

The molecular mechanisms of crista formation: how mitochondria give themselves breathing room

Lilia Colina-Tenorio, Alexander W. Bruce, Hassan Hashimi, Martina Bohuslavová
article en

Abstract

Cristae are mitochondrial subcompartments that give the organelle its distinctive appearance. More significantly, mitochondria are the proverbial powerhouses as cristae house the molecular machinery underlying cellular respiration, a process that converts carbon sources into ATP by chemiosmosis. The form of cristae is invariably connected to their bioenergetic function. Here, we review our current understanding of the molecules underpinning crista formation. Not surprisingly, respiratory chain multiprotein complexes are involved in crista formation, with F1FO-ATP synthase dimers being eminent membrane sculptors. But crista formation also requires factors that are not directly part of the respiratory chain. The most ancient is the MICOS complex, which delineates the subcompartment and acts as a hub for crista biogenesis. The mitochondrial inner membrane (IM), from which cristae emerge, is remodelled by different dynamin-related proteins in animals and fungi. Cardiolipin is an integral component of the membranous fabric of the IM. To begin to grasp general design principles underlying crista formation, we synthesize findings from canonical animal and yeast experimental models with those from diverse protists and other eukaryotes. However, how these molecules are orchestrated during crista formation remains a hidden piece in our understanding of how cells differentiate in specialized forms. We highlight the few knowns about crista formation in a handful of organisms to guide research into the many unknowns about how complex subcompartments represented by mitochondrial cristae are formed.

Biochemical Society TransactionsVol. 54(9)
Sewanee: The University of the South (US), University of South Bohemia in České Budějovice (CZ), Institute of Parasitology of the Slovak Academy of Sciences (SK)
Ministerstvo Školství, Mládeže a Tělovýchovy, Grantová Agentura České Republiky
Openalex Percentile: Top 17%
Mitochondrial Function and Pathology
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