Biochemical and evolutionary aspects of anaerobically functioning mitochondria
Open Access
- 29 January 2003
- journal article
- review article
- Published by The Royal Society in Philosophical Transactions Of The Royal Society B-Biological Sciences
- Vol. 358 (1429) , 205-215
- https://doi.org/10.1098/rstb.2002.1182
Abstract
Mitochondria are usually considered to be the powerhouses of the cell and to be responsible for the aerobic production of ATP. However, many eukaryotic organisms are known to possess anaerobically functioning mitochondria, which differ significantly from classical aerobically functioning mitochondria. Recently, functional and phylogenetic studies on some enzymes involved clearly indicated an unexpected evolutionary relationship between these anaerobically functioning mitochondria and the classical aerobic type. Mitochondria evolved by an endosymbiotic event between an anaerobically functioning archaebacterial host and an aerobic α–proteobacterium. However, true anaerobically functioning mitochondria, such as found in parasitic helminths and some lower marine organisms, most likely did not originate directly from the pluripotent ancestral mitochondrion, but arose later in evolution from the aerobic type of mitochondria after these were already adapted to an aerobic way of life by losing their anaerobic capacities. This review will focus on some biochemical and evolutionary aspects of these fermentative mitochondria, with special attention to fumarate reductase, the synthesis of the rhodoquinone involved, and the enzymes involved in acetate production (acetate : succinate CoA–transferase and succinyl CoA–synthetase).Keywords
This publication has 43 references indexed in Scilit:
- Energy generation in parasitic helminthsPublished by Elsevier ,2003
- Ancient biochemistries and the evolution of parasitesPublished by Elsevier ,2002
- A motif for quinone binding sites in respiratory and photosynthetic systems 1 1Edited by R. HuberJournal of Molecular Biology, 2000
- Polyprenyl diphosphate synthase essentially defines the length of the side chain of ubiquinonePublished by Elsevier ,1999
- Rhodoquinone is synthesized de novo by Fasciola hepaticaMolecular and Biochemical Parasitology, 1996
- Rhodoquinone and Complex II of the Electron Transport Chain in Anaerobically Functioning EukaryotesJournal of Biological Chemistry, 1995
- Multiple origins of anaerobic ciliates with hydrogenosomes within the radiation of aerobic ciliatesProceedings Of The Royal Society B-Biological Sciences, 1995
- Review Article: The hydrogenosomeJournal of General Microbiology, 1993
- Electron-transfer complexes of mitochondria in Ascaris suumParasitology Today, 1992
- Nitrate respiration in primitive eukaryotesNature, 1983