4.6 Article

Carbon and Nitrogen Sources Have No Impact on the Organization and Composition of Ustilago maydis Respiratory Supercomplexes

期刊

JOURNAL OF FUNGI
卷 7, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/jof7010042

关键词

respiratory complexes; mitochondrial supercomplexes; Ustilago maydis mitochondria

资金

  1. Programa de Apoyo a Proyectos de Investigacion e Innovacion Tecnologica (Universidad Nacional Autonoma de Mexico) [PAPIIT IN222117]
  2. Consejo Nacional de Ciencia y Tecnologia [254904-JPP, 256520-GGS]
  3. Instituto Politecnico Nacional [IPN-SIP-20180625, SIP-20190200, SIP 20201123]

向作者/读者索取更多资源

This study investigated the organization of mitochondrial respiratory supercomplexes in U. maydis under diverse energy conditions. The supercomplexes were found to have consistent composition and distribution regardless of growth conditions, with no evidence of association between complex II and the alternative NADH dehydrogenases with other respiratory complexes.
Respiratory supercomplexes are found in mitochondria of eukaryotic cells and some bacteria. A hypothetical role of these supercomplexes is electron channeling, which in principle should increase the respiratory chain efficiency and ATP synthesis. In addition to the four classic respiratory complexes and the ATP synthase, U. maydis mitochondria contain three type II NADH dehydrogenases (NADH for reduced nicotinamide adenine dinucleotide) and the alternative oxidase. Changes in the composition of the respiratory supercomplexes due to energy requirements have been reported in certain organisms. In this study, we addressed the organization of the mitochondrial respiratory complexes in U. maydis under diverse energy conditions. Supercomplexes were obtained by solubilization of U. maydis mitochondria with digitonin and separated by blue native polyacrylamide gel electrophoresis (BN-PAGE). The molecular mass of supercomplexes and their probable stoichiometries were 1200 kDa (I-1:IV1), 1400 kDa (I-1:III2), 1600 kDa (I-1:III2:IV1), and 1800 kDa (I-1:III2:IV2). Concerning the ATP synthase, approximately half of the protein is present as a dimer and half as a monomer. The distribution of respiratory supercomplexes was the same in all growth conditions. We did not find evidence for the association of complex II and the alternative NADH dehydrogenases with other respiratory complexes.

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