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A curious case of cysteines in human peroxiredoxin I

Peroxiredoxins (Prxs) are antioxidant proteins that are involved in cellular defence against reactive oxygen species and reactive nitrogen species. Humans have six peroxiredoxins, hPrxI-VI, out of which hPrxI and hPrxII belongs to the typical 2-Cys class sharing 90% conservation in their amino acid...

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Autores principales: Mohammad, Ashu, Saini, Reena V., Kumar, Rakesh, Sharma, Deepak, Saini, Neeraj K., Gupta, Arpit, Thakur, Priyanka, Winterbourn, Christine C., Saini, Adesh K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7530344/
https://www.ncbi.nlm.nih.gov/pubmed/33011678
http://dx.doi.org/10.1016/j.redox.2020.101738
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author Mohammad, Ashu
Saini, Reena V.
Kumar, Rakesh
Sharma, Deepak
Saini, Neeraj K.
Gupta, Arpit
Thakur, Priyanka
Winterbourn, Christine C.
Saini, Adesh K.
author_facet Mohammad, Ashu
Saini, Reena V.
Kumar, Rakesh
Sharma, Deepak
Saini, Neeraj K.
Gupta, Arpit
Thakur, Priyanka
Winterbourn, Christine C.
Saini, Adesh K.
author_sort Mohammad, Ashu
collection PubMed
description Peroxiredoxins (Prxs) are antioxidant proteins that are involved in cellular defence against reactive oxygen species and reactive nitrogen species. Humans have six peroxiredoxins, hPrxI-VI, out of which hPrxI and hPrxII belongs to the typical 2-Cys class sharing 90% conservation in their amino acid sequence including catalytic residues required to carry out their peroxidase and chaperone activities. Despite the high conservation between hPrxI and hPrxII, hPrxI behaves differently from hPrxII in its peroxidase and chaperone activity. We recently showed in yeast that in the absence of Tsa1 and Tsa2 (orthologs of hPrx) hPrxI protects the cells against different stressors whereas hPrxII does not. To understand this difference, we expressed catalytic mutants of hPrxI in yeast cells lacking the orthologs of hPrxI/II. We found that the catalytic mutants lacking peroxidase function including hPrxI(C52S), hPrxI(C173S), hPrxI(T49A), hPrxI(P45A) and hPrxI(R128A) were not able to grow on media with nitrosative stressor (sodium nitroprusside) and unable to withstand heat stress, but surprisingly they were able to grow on an oxidative stressor (H(2)O(2)). Interestingly, we found that hPrxI increases the expression of antioxidant genes, GPX1 and SOD1, and this is also seen in the case of a catalytic mutant, indicating hPrxI can indirectly reduce oxidative stress independently of its own peroxidase function and thus suggesting a novel role of hPrxI in altering the expression of other antioxidant genes. Furthermore, hPrxI(C83T) was resistant to hyperoxidation and formation of stable high molecular weight oligomers, which is suggestive of impaired chaperone activity. Our results suggest that the catalytic residues of hPrxI are essential to counter the nitrosative stress whereas Cys83 in hPrxI plays a critical role in hyperoxidation of hPrxI.
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spelling pubmed-75303442020-10-05 A curious case of cysteines in human peroxiredoxin I Mohammad, Ashu Saini, Reena V. Kumar, Rakesh Sharma, Deepak Saini, Neeraj K. Gupta, Arpit Thakur, Priyanka Winterbourn, Christine C. Saini, Adesh K. Redox Biol Research Paper Peroxiredoxins (Prxs) are antioxidant proteins that are involved in cellular defence against reactive oxygen species and reactive nitrogen species. Humans have six peroxiredoxins, hPrxI-VI, out of which hPrxI and hPrxII belongs to the typical 2-Cys class sharing 90% conservation in their amino acid sequence including catalytic residues required to carry out their peroxidase and chaperone activities. Despite the high conservation between hPrxI and hPrxII, hPrxI behaves differently from hPrxII in its peroxidase and chaperone activity. We recently showed in yeast that in the absence of Tsa1 and Tsa2 (orthologs of hPrx) hPrxI protects the cells against different stressors whereas hPrxII does not. To understand this difference, we expressed catalytic mutants of hPrxI in yeast cells lacking the orthologs of hPrxI/II. We found that the catalytic mutants lacking peroxidase function including hPrxI(C52S), hPrxI(C173S), hPrxI(T49A), hPrxI(P45A) and hPrxI(R128A) were not able to grow on media with nitrosative stressor (sodium nitroprusside) and unable to withstand heat stress, but surprisingly they were able to grow on an oxidative stressor (H(2)O(2)). Interestingly, we found that hPrxI increases the expression of antioxidant genes, GPX1 and SOD1, and this is also seen in the case of a catalytic mutant, indicating hPrxI can indirectly reduce oxidative stress independently of its own peroxidase function and thus suggesting a novel role of hPrxI in altering the expression of other antioxidant genes. Furthermore, hPrxI(C83T) was resistant to hyperoxidation and formation of stable high molecular weight oligomers, which is suggestive of impaired chaperone activity. Our results suggest that the catalytic residues of hPrxI are essential to counter the nitrosative stress whereas Cys83 in hPrxI plays a critical role in hyperoxidation of hPrxI. Elsevier 2020-09-24 /pmc/articles/PMC7530344/ /pubmed/33011678 http://dx.doi.org/10.1016/j.redox.2020.101738 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Paper
Mohammad, Ashu
Saini, Reena V.
Kumar, Rakesh
Sharma, Deepak
Saini, Neeraj K.
Gupta, Arpit
Thakur, Priyanka
Winterbourn, Christine C.
Saini, Adesh K.
A curious case of cysteines in human peroxiredoxin I
title A curious case of cysteines in human peroxiredoxin I
title_full A curious case of cysteines in human peroxiredoxin I
title_fullStr A curious case of cysteines in human peroxiredoxin I
title_full_unstemmed A curious case of cysteines in human peroxiredoxin I
title_short A curious case of cysteines in human peroxiredoxin I
title_sort curious case of cysteines in human peroxiredoxin i
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7530344/
https://www.ncbi.nlm.nih.gov/pubmed/33011678
http://dx.doi.org/10.1016/j.redox.2020.101738
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