Mitochondrial Sirtuin TcSir2rp3 Affects TcSODA Activity and Oxidative Stress Response in Trypanosoma cruzi. 2021

Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
Laboratório de Biologia Molecular de Patógenos, Escola Paulista de Medicina, Universidade Federal de São Paulo, São Paulo, Brazil.

Trypanosoma cruzi faces a variety of environmental scenarios during its life cycle, which include changes in the redox environment that requires a fine regulation of a complex antioxidant arsenal of enzymes. Reversible posttranslational modifications, as lysine acetylation, are a fast and economical way for cells to react to environmental conditions. Recently, we found that the main antioxidant enzymes, including the mitochondrial superoxide dismutase A (TcSODA) are acetylated in T. cruzi, suggesting that protein acetylation could participate in the oxidative stress response in T. cruzi. Therefore, we investigated whether mitochondrial lysine deacetylase TcSir2rp3 was involved in the activity control of TcSODA. We observed an increased resistance to hydrogen peroxide and menadione in parasites overexpressing TcSir2rp3. Increased resistance was also found for benznidazole and nifurtimox, known to induce reactive oxidative and nitrosactive species in the parasite, associated to that a reduction in the ROS levels was observed. To better understand the way TcSir2rp3 could contributes to oxidative stress response, we analyzed the expression of TcSODA in the TcSir2rp3 overexpressing parasites and did not detect any increase in protein levels of this enzyme. However, we found that these parasites presented higher levels of superoxide dismutase activity, and also that TcSir2rp3 and TcSODA interacts in vivo. Knowing that TcSODA is acetylated at lysine residues K44 and K97, and that K97 is located at a similar region in the protein structure as K68 in human manganese superoxide dismutase (MnSOD), responsible for regulating MnSOD activity, we generated mutated versions of TcSODA at K44 and K97 and found that replacing K97 by glutamine, which mimics an acetylated lysine, negatively affects the enzyme activity in vitro. By using molecular dynamics approaches, we revealed that acetylation of K97 induces specific conformational changes in TcSODA with respect to hydrogen-bonding pattern to neighbor residues, suggesting a key participation of this residue to modulate the affinity to . Taken together, our results showed for the first time the involvement of lysine acetylation in the maintenance of homeostatic redox state in trypanosomatids, contributing to the understanding of mechanisms used by T. cruzi to progress during the infection.

UI MeSH Term Description Entries
D008928 Mitochondria Semiautonomous, self-reproducing organelles that occur in the cytoplasm of all cells of most, but not all, eukaryotes. Each mitochondrion is surrounded by a double limiting membrane. The inner membrane is highly invaginated, and its projections are called cristae. Mitochondria are the sites of the reactions of oxidative phosphorylation, which result in the formation of ATP. They contain distinctive RIBOSOMES, transfer RNAs (RNA, TRANSFER); AMINO ACYL T RNA SYNTHETASES; and elongation and termination factors. Mitochondria depend upon genes within the nucleus of the cells in which they reside for many essential messenger RNAs (RNA, MESSENGER). Mitochondria are believed to have arisen from aerobic bacteria that established a symbiotic relationship with primitive protoeukaryotes. (King & Stansfield, A Dictionary of Genetics, 4th ed) Mitochondrial Contraction,Mitochondrion,Contraction, Mitochondrial,Contractions, Mitochondrial,Mitochondrial Contractions
D010084 Oxidation-Reduction A chemical reaction in which an electron is transferred from one molecule to another. The electron-donating molecule is the reducing agent or reductant; the electron-accepting molecule is the oxidizing agent or oxidant. Reducing and oxidizing agents function as conjugate reductant-oxidant pairs or redox pairs (Lehninger, Principles of Biochemistry, 1982, p471). Redox,Oxidation Reduction
D013482 Superoxide Dismutase An oxidoreductase that catalyzes the reaction between SUPEROXIDES and hydrogen to yield molecular oxygen and hydrogen peroxide. The enzyme protects the cell against dangerous levels of superoxide. Hemocuprein,Ag-Zn Superoxide Dismutase,Cobalt Superoxide Dismutase,Cu-Superoxide Dismutase,Erythrocuprein,Fe-Superoxide Dismutase,Fe-Zn Superoxide Dismutase,Iron Superoxide Dismutase,Manganese Superoxide Dismutase,Mn-SOD,Mn-Superoxide Dismutase,Ag Zn Superoxide Dismutase,Cu Superoxide Dismutase,Dismutase, Ag-Zn Superoxide,Dismutase, Cobalt Superoxide,Dismutase, Cu-Superoxide,Dismutase, Fe-Superoxide,Dismutase, Fe-Zn Superoxide,Dismutase, Iron Superoxide,Dismutase, Manganese Superoxide,Dismutase, Mn-Superoxide,Dismutase, Superoxide,Fe Superoxide Dismutase,Fe Zn Superoxide Dismutase,Mn SOD,Mn Superoxide Dismutase,Superoxide Dismutase, Ag-Zn,Superoxide Dismutase, Cobalt,Superoxide Dismutase, Fe-Zn,Superoxide Dismutase, Iron,Superoxide Dismutase, Manganese
D014349 Trypanosoma cruzi The agent of South American trypanosomiasis or CHAGAS DISEASE. Its vertebrate hosts are man and various domestic and wild animals. Insects of several species are vectors. Trypanosoma cruzus,cruzi, Trypanosoma
D018384 Oxidative Stress A disturbance in the prooxidant-antioxidant balance in favor of the former, leading to potential damage. Indicators of oxidative stress include damaged DNA bases, protein oxidation products, and lipid peroxidation products (Sies, Oxidative Stress, 1991, pxv-xvi). Anti-oxidative Stress,Antioxidative Stress,DNA Oxidative Damage,Nitro-Oxidative Stress,Oxidative Cleavage,Oxidative DNA Damage,Oxidative Damage,Oxidative Injury,Oxidative Nitrative Stress,Oxidative Stress Injury,Oxidative and Nitrosative Stress,Stress, Oxidative,Anti oxidative Stress,Anti-oxidative Stresses,Antioxidative Stresses,Cleavage, Oxidative,DNA Damage, Oxidative,DNA Oxidative Damages,Damage, DNA Oxidative,Damage, Oxidative,Damage, Oxidative DNA,Injury, Oxidative,Injury, Oxidative Stress,Nitrative Stress, Oxidative,Nitro Oxidative Stress,Nitro-Oxidative Stresses,Oxidative Cleavages,Oxidative DNA Damages,Oxidative Damage, DNA,Oxidative Damages,Oxidative Injuries,Oxidative Nitrative Stresses,Oxidative Stress Injuries,Oxidative Stresses,Stress Injury, Oxidative,Stress, Anti-oxidative,Stress, Antioxidative,Stress, Nitro-Oxidative,Stress, Oxidative Nitrative,Stresses, Nitro-Oxidative
D037761 Sirtuins A homologous family of regulatory enzymes that are structurally related to the protein silent mating type information regulator 2 (Sir2) found in Saccharomyces cerevisiae. Sirtuins contain a central catalytic core region which binds NAD. Several of the sirtuins utilize NAD to deacetylate proteins such as HISTONES and are categorized as GROUP III HISTONE DEACETYLASES. Several other sirtuin members utilize NAD to transfer ADP-RIBOSE to proteins and are categorized as MONO ADP-RIBOSE TRANSFERASES, while a third group of sirtuins appears to have both deacetylase and ADP ribose transferase activities. SIRT,Sir2-like Proteins,Sirtuin,SIRTs,Silent Mating Type Information Regulator 2-like Proteins,Silent Mating Type Information Regulator 2 like Proteins,Sir2 like Proteins

Related Publications

Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
December 2004, Free radical biology & medicine,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
October 2022, PLoS neglected tropical diseases,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
January 2004, Molecular and biochemical parasitology,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
July 2012, The Journal of clinical investigation,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
December 2006, Experimental parasitology,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
January 2019, F1000Research,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
November 2017, Infection, genetics and evolution : journal of molecular epidemiology and evolutionary genetics in infectious diseases,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
September 2017, Parasitology,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
December 1973, Experientia,
Leila Dos Santos Moura, and Vinícius Santana Nunes, and Antoniel A S Gomes, and Ana Caroline de Castro Nascimento Sousa, and Marcos R M Fontes, and Sergio Schenkman, and Nilmar Silvio Moretti
November 2012, Archives of biochemistry and biophysics,
Copied contents to your clipboard!