HIGD-Driven Regulation of Cytochrome c Oxidase Biogenesis and Function

被引:29
|
作者
Timon-Gomez, Alba [1 ]
Bartley-Dier, Emma L. [2 ]
Fontanesi, Flavia [2 ]
Barrientos, Antoni [1 ,2 ]
机构
[1] Univ Miami, Dept Neurol, Miller Sch Med, Miami, FL 33136 USA
[2] Univ Miami, Dept Biochem & Mol Biol, Miller Sch Med, Miami, FL 33136 USA
关键词
HIGD1A; HIGD2A; Rcf1; Rcf2; Hypoxia Inducible Gene Domain; cytochrome c oxidase; mitochondrial respiratory chain complex IV; HUMAN MEMBRANE-PROTEINS; SUBUNIT-III; RHODOBACTER-SPHAEROIDES; BACKBONE STRUCTURE; GENE-EXPRESSION; CANCER CELLS; SWISS-MODEL; RCF1; ROLES; ATP;
D O I
10.3390/cells9122620
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The biogenesis and function of eukaryotic cytochrome c oxidase or mitochondrial respiratory chain complex IV (CIV) undergo several levels of regulation to adapt to changing environmental conditions. Adaptation to hypoxia and oxidative stress involves CIV subunit isoform switch, changes in phosphorylation status, and modulation of CIV assembly and enzymatic activity by interacting factors. The latter include the Hypoxia Inducible Gene Domain (HIGD) family yeast respiratory supercomplex factors 1 and 2 (Rcf1 and Rcf2) and two mammalian homologs of Rcf1, the proteins HIGD1A and HIGD2A. Whereas Rcf1 and Rcf2 are expressed constitutively, expression of HIGD1A and HIGD2A is induced under stress conditions, such as hypoxia and/or low glucose levels. In both systems, the HIGD proteins localize in the mitochondrial inner membrane and play a role in the biogenesis of CIV as a free unit or as part as respiratory supercomplexes. Notably, they remain bound to assembled CIV and, by modulating its activity, regulate cellular respiration. Here, we will describe the current knowledge regarding the specific and overlapping roles of the several HIGD proteins in physiological and stress conditions.
引用
收藏
页码:1 / 20
页数:20
相关论文
共 50 条
  • [31] The survival effect of mitochondrial Higd-1a is associated with suppression of cytochrome C release and prevention of caspase activation
    An, Hyun-Jung
    Shin, Hyojung
    Jo, Sang-Geun
    Kim, Young Jin
    Lee, Jie-Oh
    Paik, Sang-Gi
    Lee, Hayyoung
    BIOCHIMICA ET BIOPHYSICA ACTA-MOLECULAR CELL RESEARCH, 2011, 1813 (12): : 2088 - 2098
  • [32] Regulation of mitochondrial respiration and ATP synthesis via cytochrome c oxidase
    Kadenbach, Bernhard
    RENDICONTI LINCEI-SCIENZE FISICHE E NATURALI, 2018, 29 (02) : 421 - 435
  • [33] Regulation of Cytochrome c Oxidase by Natural Compounds Resveratrol, (-)-Epicatechin, and Betaine
    Lee, Icksoo
    CELLS, 2021, 10 (06)
  • [34] Transcriptional regulation of cytochrome c oxidase subunits in rat brain following sodium arsenite exposure
    Prakash, Chandra
    Kumari, Manoj
    Kumar, Vijay
    TOXICOLOGICAL AND ENVIRONMENTAL CHEMISTRY, 2017, 99 (03) : 505 - 515
  • [35] Current advances in research of cytochrome c oxidase
    Popovic, Dragan M.
    AMINO ACIDS, 2013, 45 (05) : 1073 - 1087
  • [36] Electron transfer pathways in cytochrome c oxidase
    Fatima Lucas, M.
    Rousseau, Denis L.
    Guallar, Victor
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2011, 1807 (10): : 1305 - 1313
  • [37] Comparative biochemistry of cytochrome c oxidase in animals
    Little, A. G.
    Lau, G.
    Mathers, K. E.
    Leary, S. C.
    Moyes, C. D.
    COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY, 2018, 224 : 170 - 184
  • [38] Function of mitochondrial cytochrome c oxidase is enhanced in human lens epithelial cells at high temperatures
    Takeda, Shun
    Yamamoto, Naoki
    Nagai, Noriaki
    Hiramatsu, Noriko
    Deguchi, Saori
    Hatsusaka, Natsuko
    Kubo, Eri
    Sasaki, Hiroshi
    MOLECULAR MEDICINE REPORTS, 2023, 27 (01)
  • [39] Cytochrome c oxidase deficiency
    Shoubridge, EA
    AMERICAN JOURNAL OF MEDICAL GENETICS, 2001, 106 (01): : 46 - 52
  • [40] Cytochrome c oxidase deficiency
    Brischigliaro, Michele
    Zeviani, Massimo
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2021, 1862 (01):