Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Biosynthesis of coenzyme Q in eukaryotes

View through CrossRef
Abstract Coenzyme Q (CoQ) is a component of the electron transport chain that participates in aerobic cellular respiration to produce ATP. In addition, CoQ acts as an electron acceptor in several enzymatic reactions involving oxidation–reduction. Biosynthesis of CoQ has been investigated mainly in Escherichia coli and Saccharomyces cerevisiae, and the findings have been extended to various higher organisms, including plants and humans. Analyses in yeast have contributed greatly to current understanding of human diseases related to CoQ biosynthesis. To date, human genetic disorders related to mutations in eight COQ biosynthetic genes have been reported. In addition, the crystal structures of a number of proteins involved in CoQ synthesis have been solved, including those of IspB, UbiA, UbiD, UbiX, UbiI, Alr8543 (Coq4 homolog), Coq5, ADCK3, and COQ9. Over the last decade, knowledge of CoQ biosynthesis has accumulated, and striking advances in related human genetic disorders and the crystal structure of proteins required for CoQ synthesis have been made. This review focuses on the biosynthesis of CoQ in eukaryotes, with some comparisons to the process in prokaryotes.
Title: Biosynthesis of coenzyme Q in eukaryotes
Description:
Abstract Coenzyme Q (CoQ) is a component of the electron transport chain that participates in aerobic cellular respiration to produce ATP.
In addition, CoQ acts as an electron acceptor in several enzymatic reactions involving oxidation–reduction.
Biosynthesis of CoQ has been investigated mainly in Escherichia coli and Saccharomyces cerevisiae, and the findings have been extended to various higher organisms, including plants and humans.
Analyses in yeast have contributed greatly to current understanding of human diseases related to CoQ biosynthesis.
To date, human genetic disorders related to mutations in eight COQ biosynthetic genes have been reported.
In addition, the crystal structures of a number of proteins involved in CoQ synthesis have been solved, including those of IspB, UbiA, UbiD, UbiX, UbiI, Alr8543 (Coq4 homolog), Coq5, ADCK3, and COQ9.
Over the last decade, knowledge of CoQ biosynthesis has accumulated, and striking advances in related human genetic disorders and the crystal structure of proteins required for CoQ synthesis have been made.
This review focuses on the biosynthesis of CoQ in eukaryotes, with some comparisons to the process in prokaryotes.

Related Results

Coenzyme A metabolism
Coenzyme A metabolism
The metabolism of coenzyme A and control of its synthesis are reviewed. Pantothenate kinase is an important rate-controlling enzyme in the synthetic pathway of all tissues studied ...
Coenzyme Q10 Attenuates Cisplatin-induced Nephrotoxicity Through Counteracting Oxidative Stress and Inflammation
Coenzyme Q10 Attenuates Cisplatin-induced Nephrotoxicity Through Counteracting Oxidative Stress and Inflammation
Background: Cisplatin is an anticancer drug used in the management of solid tumors, however, dose-related nephrotoxicity is one of its major problems. Agents having antioxidants, a...
Studi Literatur Pemanfaatan Koenzim Q10 sebagai Antioksidan
Studi Literatur Pemanfaatan Koenzim Q10 sebagai Antioksidan
Abstract. Coenzyme Q10 (CoQ10) is a lipophilic antioxidant that plays an important role in cellular energy metabolism and protection against oxidative stress. As we age and increas...
Effect of Coenzyme Q10 Supplementation on Testosterone
Effect of Coenzyme Q10 Supplementation on Testosterone
Enhancing testosterone production in males is a continuous research direction for many scientists in the field, due to its role as a principal sex hormone and as a crucial modulato...
ADENINE DERIVATIVES AND THEIR BIOLOGICAL FUNCTIONS
ADENINE DERIVATIVES AND THEIR BIOLOGICAL FUNCTIONS
SummaryAdenine derivatives represent a group of substances of considerable biological interest. Our knowledge of their occurrence in nature, properties and role is derived from bot...
MurA escape mutations uncouple peptidoglycan biosynthesis from PrkA signaling
MurA escape mutations uncouple peptidoglycan biosynthesis from PrkA signaling
Abstract Gram-positive bacteria are protected by a thick mesh of peptidoglycan (PG) completely engulfing their cells. This PG network is the main component of the b...

Back to Top