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Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis

Cyclic invasion of red blood cells (RBCs) by Plasmodium merozoites is associated with the symptoms and pathology of malaria. Merozoite invasion is powered actively and rapidly by a parasite actomyosin motor called the glideosome. The ability of the glideosome to generate force to support merozoite e...

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Autores principales: He, Lu, Qiu, Yue, Pang, Geping, Li, Siqi, Wang, Jingjing, Feng, Yonghui, Chen, Lumeng, Zhu, Liying, Liu, Yinjie, Cui, Liwang, Cao, Yaming, Zhu, Xiaotong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10269477/
https://www.ncbi.nlm.nih.gov/pubmed/37249423
http://dx.doi.org/10.1128/spectrum.01434-23
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author He, Lu
Qiu, Yue
Pang, Geping
Li, Siqi
Wang, Jingjing
Feng, Yonghui
Chen, Lumeng
Zhu, Liying
Liu, Yinjie
Cui, Liwang
Cao, Yaming
Zhu, Xiaotong
author_facet He, Lu
Qiu, Yue
Pang, Geping
Li, Siqi
Wang, Jingjing
Feng, Yonghui
Chen, Lumeng
Zhu, Liying
Liu, Yinjie
Cui, Liwang
Cao, Yaming
Zhu, Xiaotong
author_sort He, Lu
collection PubMed
description Cyclic invasion of red blood cells (RBCs) by Plasmodium merozoites is associated with the symptoms and pathology of malaria. Merozoite invasion is powered actively and rapidly by a parasite actomyosin motor called the glideosome. The ability of the glideosome to generate force to support merozoite entry into the host RBCs is thought to rely on its stable anchoring within the inner membrane complex (IMC) through membrane-resident proteins, such as GAP50 and GAP40. Using a conditional knockdown (KD) approach, we determined that PfGAP40 was required for asexual blood-stage replication. PfGAP40 is not needed for merozoite egress from host RBCs or for the attachment of merozoites to new RBCs. PfGAP40 coprecipitates with PfGAP45 and PfGAP50. During merozoite invasion, PfGAP40 is associated strongly with stabilizing the expression levels of PfGAP45 and PfGAP50 in the schizont stage. Although PfGAP40 KD did not influence IMC integrity, it impaired the maturation of gametocytes. In addition, PfGAP40 is phosphorylated, and mutations that block phosphorylation of PfGAP40 at the C-terminal serine residues S370, S372, S376, S405, S409, S420, and S445 reduced merozoite invasion efficiency. Overall, our findings implicate PfGAP40 as an important regulator for the gliding activity of merozoites and suggest that phosphorylation is required for PfGAP40 function. IMPORTANCE Red blood cell invasion is central to the pathogenesis of the malaria parasite, and the parasite proteins involved in this process are potential therapeutic targets. Gliding motility powers merozoite invasion and is driven by a unique molecular motor termed the glideosome. The glideosome is stably anchored to the parasite inner membrane complex (IMC) through membrane-resident proteins. In the present study, we demonstrate the importance of an IMC-resident glideosome component, PfGAP40, that plays a critical role in stabilizing the expression levels of glideosome components in the schizont stage. We determined that phosphorylation of PfGAP40 at C-terminal residues is required for efficient merozoite invasion.
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spelling pubmed-102694772023-06-16 Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis He, Lu Qiu, Yue Pang, Geping Li, Siqi Wang, Jingjing Feng, Yonghui Chen, Lumeng Zhu, Liying Liu, Yinjie Cui, Liwang Cao, Yaming Zhu, Xiaotong Microbiol Spectr Research Article Cyclic invasion of red blood cells (RBCs) by Plasmodium merozoites is associated with the symptoms and pathology of malaria. Merozoite invasion is powered actively and rapidly by a parasite actomyosin motor called the glideosome. The ability of the glideosome to generate force to support merozoite entry into the host RBCs is thought to rely on its stable anchoring within the inner membrane complex (IMC) through membrane-resident proteins, such as GAP50 and GAP40. Using a conditional knockdown (KD) approach, we determined that PfGAP40 was required for asexual blood-stage replication. PfGAP40 is not needed for merozoite egress from host RBCs or for the attachment of merozoites to new RBCs. PfGAP40 coprecipitates with PfGAP45 and PfGAP50. During merozoite invasion, PfGAP40 is associated strongly with stabilizing the expression levels of PfGAP45 and PfGAP50 in the schizont stage. Although PfGAP40 KD did not influence IMC integrity, it impaired the maturation of gametocytes. In addition, PfGAP40 is phosphorylated, and mutations that block phosphorylation of PfGAP40 at the C-terminal serine residues S370, S372, S376, S405, S409, S420, and S445 reduced merozoite invasion efficiency. Overall, our findings implicate PfGAP40 as an important regulator for the gliding activity of merozoites and suggest that phosphorylation is required for PfGAP40 function. IMPORTANCE Red blood cell invasion is central to the pathogenesis of the malaria parasite, and the parasite proteins involved in this process are potential therapeutic targets. Gliding motility powers merozoite invasion and is driven by a unique molecular motor termed the glideosome. The glideosome is stably anchored to the parasite inner membrane complex (IMC) through membrane-resident proteins. In the present study, we demonstrate the importance of an IMC-resident glideosome component, PfGAP40, that plays a critical role in stabilizing the expression levels of glideosome components in the schizont stage. We determined that phosphorylation of PfGAP40 at C-terminal residues is required for efficient merozoite invasion. American Society for Microbiology 2023-05-30 /pmc/articles/PMC10269477/ /pubmed/37249423 http://dx.doi.org/10.1128/spectrum.01434-23 Text en Copyright © 2023 He 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 Research Article
He, Lu
Qiu, Yue
Pang, Geping
Li, Siqi
Wang, Jingjing
Feng, Yonghui
Chen, Lumeng
Zhu, Liying
Liu, Yinjie
Cui, Liwang
Cao, Yaming
Zhu, Xiaotong
Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis
title Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis
title_full Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis
title_fullStr Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis
title_full_unstemmed Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis
title_short Plasmodium falciparum GAP40 Plays an Essential Role in Merozoite Invasion and Gametocytogenesis
title_sort plasmodium falciparum gap40 plays an essential role in merozoite invasion and gametocytogenesis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10269477/
https://www.ncbi.nlm.nih.gov/pubmed/37249423
http://dx.doi.org/10.1128/spectrum.01434-23
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