Cargando…

Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses

Plasmodium falciparum causes the most severe malaria and is exposed to various environmental and physiological stresses in the human host. Given that GCN5 plays a critical role in regulating stress responses in model organisms, we aimed to elucidate PfGCN5’s function in stress responses in P. falcip...

Descripción completa

Detalles Bibliográficos
Autores principales: Lucky, Amuza Byaruhanga, Wang, Chengqi, Shakri, Ahmad Rushdi, Kalamuddin, Mohammad, Chim-Ong, Anongruk, Li, Xiaolian, Miao, Jun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10583690/
https://www.ncbi.nlm.nih.gov/pubmed/37702516
http://dx.doi.org/10.1128/aac.00577-23
_version_ 1785122606700036096
author Lucky, Amuza Byaruhanga
Wang, Chengqi
Shakri, Ahmad Rushdi
Kalamuddin, Mohammad
Chim-Ong, Anongruk
Li, Xiaolian
Miao, Jun
author_facet Lucky, Amuza Byaruhanga
Wang, Chengqi
Shakri, Ahmad Rushdi
Kalamuddin, Mohammad
Chim-Ong, Anongruk
Li, Xiaolian
Miao, Jun
author_sort Lucky, Amuza Byaruhanga
collection PubMed
description Plasmodium falciparum causes the most severe malaria and is exposed to various environmental and physiological stresses in the human host. Given that GCN5 plays a critical role in regulating stress responses in model organisms, we aimed to elucidate PfGCN5’s function in stress responses in P. falciparum. The protein level of PfGCN5 was substantially induced under three stress conditions [heat shock, low glucose starvation, and dihydroartemisinin, the active metabolite of artemisinin (ART)]. With a TetR-DOZI conditional knockdown (KD) system, we successfully down-regulated PfGCN5 to ~50% and found that KD parasites became more sensitive to all three stress conditions. Transcriptomic analysis via RNA-seq identified ~1,000 up- and down-regulated genes in the wild-type (WT) and KD parasites under these stress conditions. Importantly, DHA induced transcriptional alteration of many genes involved in many aspects of stress responses, which were heavily shared among the altered genes under heat shock and low glucose conditions, including ART-resistance-related genes such as K13 and coronin. Based on the expression pattern between WT and KD parasites under three stress conditions, ~300–400 genes were identified to be involved in PfGCN5-dependent, general, and stress-condition-specific responses with high levels of overlaps among three stress conditions. Notably, using ring-stage survival assay, we found that KD or inhibition of PfGCN5 could sensitize the ART-resistant parasites to the DHA treatment. All these indicate that PfGCN5 is pivotal in regulating general and ART-resistance-related stress responses in malaria parasites, implicating PfGCN5 as a potential target for malaria intervention.
format Online
Article
Text
id pubmed-10583690
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-105836902023-10-19 Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses Lucky, Amuza Byaruhanga Wang, Chengqi Shakri, Ahmad Rushdi Kalamuddin, Mohammad Chim-Ong, Anongruk Li, Xiaolian Miao, Jun Antimicrob Agents Chemother Mechanisms of Resistance Plasmodium falciparum causes the most severe malaria and is exposed to various environmental and physiological stresses in the human host. Given that GCN5 plays a critical role in regulating stress responses in model organisms, we aimed to elucidate PfGCN5’s function in stress responses in P. falciparum. The protein level of PfGCN5 was substantially induced under three stress conditions [heat shock, low glucose starvation, and dihydroartemisinin, the active metabolite of artemisinin (ART)]. With a TetR-DOZI conditional knockdown (KD) system, we successfully down-regulated PfGCN5 to ~50% and found that KD parasites became more sensitive to all three stress conditions. Transcriptomic analysis via RNA-seq identified ~1,000 up- and down-regulated genes in the wild-type (WT) and KD parasites under these stress conditions. Importantly, DHA induced transcriptional alteration of many genes involved in many aspects of stress responses, which were heavily shared among the altered genes under heat shock and low glucose conditions, including ART-resistance-related genes such as K13 and coronin. Based on the expression pattern between WT and KD parasites under three stress conditions, ~300–400 genes were identified to be involved in PfGCN5-dependent, general, and stress-condition-specific responses with high levels of overlaps among three stress conditions. Notably, using ring-stage survival assay, we found that KD or inhibition of PfGCN5 could sensitize the ART-resistant parasites to the DHA treatment. All these indicate that PfGCN5 is pivotal in regulating general and ART-resistance-related stress responses in malaria parasites, implicating PfGCN5 as a potential target for malaria intervention. American Society for Microbiology 2023-09-13 /pmc/articles/PMC10583690/ /pubmed/37702516 http://dx.doi.org/10.1128/aac.00577-23 Text en Copyright © 2023 Lucky et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Mechanisms of Resistance
Lucky, Amuza Byaruhanga
Wang, Chengqi
Shakri, Ahmad Rushdi
Kalamuddin, Mohammad
Chim-Ong, Anongruk
Li, Xiaolian
Miao, Jun
Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses
title Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses
title_full Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses
title_fullStr Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses
title_full_unstemmed Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses
title_short Plasmodium falciparum GCN5 plays a key role in regulating artemisinin resistance-related stress responses
title_sort plasmodium falciparum gcn5 plays a key role in regulating artemisinin resistance-related stress responses
topic Mechanisms of Resistance
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10583690/
https://www.ncbi.nlm.nih.gov/pubmed/37702516
http://dx.doi.org/10.1128/aac.00577-23
work_keys_str_mv AT luckyamuzabyaruhanga plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses
AT wangchengqi plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses
AT shakriahmadrushdi plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses
AT kalamuddinmohammad plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses
AT chimonganongruk plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses
AT lixiaolian plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses
AT miaojun plasmodiumfalciparumgcn5playsakeyroleinregulatingartemisininresistancerelatedstressresponses