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Carbonyl Stress in Bacteria: Causes and Consequences
O V Kosmachevskaya1, K B Shumaev, A F Topunov
1Bach Institute of Biochemistry, Research Center of Biotechnology of the Russian Academy of Sciences, Moscow, 119071, Russia. aftopunov@yandex.ru.
Abstract:
Pathways of synthesis of the α-reactive carbonyl compound methylglyoxal (MG) in prokaryotes are described in this review. Accumulation of MG leads to development of carbonyl stress. Some pathways of MG formation are similar for both pro- and eukaryotes, but there are reactions specific for prokaryotes, e.g. the methylglyoxal synthase reaction. This reaction and the glyoxalase system constitute an alternative pathway of glucose catabolism - the MG shunt not associated with the synthesis of ATP. In violation of the regulation of metabolism, the cell uses MG shunt as well as other glycolysis shunting pathways and futile cycles enabling stabilization of its energetic status. MG was first examined as a biologically active metabolic factor participating in the formation of phenotypic polymorphism and hyperpersistent potential of bacterial populations. The study of carbonyl stress is interesting for evolutionary biology and can be useful for constructing highly effective producer strains.
Insights
This review details methylglyoxal (MG) synthesis in prokaryotes, linking its accumulation to carbonyl stress. Understanding these pathways aids in evolutionary biology and developing better bacterial producer strains.
Area of Science:
- Microbiology
- Biochemistry
- Metabolic Engineering
Background:
- Methylglyoxal (MG) is an alpha-reactive carbonyl compound implicated in cellular stress.
- Prokaryotic MG synthesis pathways share similarities with eukaryotes but include unique reactions like the methylglyoxal synthase reaction.
- MG accumulation contributes to carbonyl stress, impacting cellular functions.
Purpose of the Study:
- To review the pathways of methylglyoxal (MG) synthesis in prokaryotes.
- To explore the role of MG in carbonyl stress and bacterial population dynamics.
- To highlight the relevance of MG metabolism for evolutionary biology and strain development.
Main Methods:
- Literature review of prokaryotic methylglyoxal synthesis pathways.
- Analysis of the methylglyoxal shunt as an alternative glucose catabolism route.
- Examination of the glyoxalase system's role in methylglyoxal detoxification.
Main Results:
- Identified prokaryote-specific MG synthesis reactions, such as the methylglyoxal synthase reaction.
- Described the MG shunt as an ATP-independent glucose catabolism pathway.
- Linked MG metabolism to phenotypic polymorphism and hyperpersistence in bacterial populations.
Conclusions:
- The methylglyoxal shunt and related pathways can be utilized by cells to stabilize energetic status, even in violation of metabolic regulation.
- Studying carbonyl stress offers insights into evolutionary biology.
- Understanding MG metabolism is valuable for engineering highly effective bacterial producer strains.
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