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Review
. 2018 Jul 20;62(3):271-286.
doi: 10.1042/EBC20170099. Print 2018 Jul 20.

Human diseases associated with defects in assembly of OXPHOS complexes

Affiliations
Review

Human diseases associated with defects in assembly of OXPHOS complexes

Daniele Ghezzi et al. Essays Biochem. .

Abstract

The structural biogenesis and functional proficiency of the multiheteromeric complexes forming the mitochondrial oxidative phosphorylation system (OXPHOS) require the concerted action of a number of chaperones and other assembly factors, most of which are specific for each complex. Mutations in a large number of these assembly factors are responsible for mitochondrial disorders, in most cases of infantile onset, typically characterized by biochemical defects of single specific complexes. In fact, pathogenic mutations in complex-specific assembly factors outnumber, in many cases, the repertoire of mutations found in structural subunits of specific complexes. The identification of patients with specific defects in assembly factors has provided an important contribution to the nosological characterization of mitochondrial disorders, and has also been a crucial means to identify a huge number of these proteins in humans, which play an essential role in mitochondrial bioenergetics. The wide use of next generation sequencing (NGS) has led to and will allow the identifcation of additional components of the assembly machinery of individual complexes, mutations of which are responsible for human disorders. The functional studies on patients' specimens, together with the creation and characterization of in vivo models, are fundamental to better understand the mechanisms of each of them. A new chapter in this field will be, in the near future, the discovery of mechanisms and actions underlying the formation of supercomplexes, molecular structures formed by the physical, and possibly functional, interaction of some of the individual respiratory complexes, particularly complex I (CI), III (CIII), and IV (CIV).

Keywords: Assembly Factor; miochondrial complexes; mitochondrial biogenesis; mitochondrial disorders; mitochondrial respiratory chain; oxidative phosphorylation.

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Conflict of interest statement

The authors declare that there are no competing interests associated with the manuscript.

References

    1. Fernandez-Vizarra E., Signes A., (2018) Assembly of mammalian oxidative phosphorylation complexes I to V and supercomplexes. Essays Biochem. 62, 255–270 10.1042/EBC20170098 - DOI - PMC - PubMed
    1. DiMauro S. and Davidzon G. (2005) Mitochondrial DNA and disease. Ann. Med. 37, 222–232 10.1080/07853890510007368 - DOI - PubMed
    1. Ghezzi D. and Zeviani M. (2011) Mitochondrial disorders: nuclear gene mutations. Encyclopedia of Life Sciences (ELS), John Wiley & Sons, Ltd, Chichester
    1. Thorburn D.R., Sugiana C. and Salemi R. (2004) Biochemical and molecular diagnosis of mitochondrial respiratory chain disorders. Biochim. Biophys. Acta 1659, 121–128 10.1016/j.bbabio.2004.08.006 - DOI - PubMed
    1. Cree L.M., Samuels D.C. and Chinnery P.F. (2009) The inheritance of pathogenic mitochondrial DNA mutations. Biochim. Biophys. Acta 1792, 1097–1102 10.1016/j.bbadis.2009.03.002 - DOI - PMC - PubMed

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