An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum

Abstract Background Plasmodium falciparum is the pathogen responsible for the most devastating form of human malaria. As it replicates asexually in the erythrocytes of its human host, the parasite feeds on haemoglobin uptaken from these cells. Heme, a toxic by-product of haemoglobin utilization by t...

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Main Authors: Mohd Asad, Yoshiki Yamaryo-Botté, Mohammad E. Hossain, Vandana Thakur, Shaifali Jain, Gaurav Datta, Cyrille Y. Botté, Asif Mohmmed
Format: Article
Language:English
Published: BMC 2021-08-01
Series:BMC Biology
Subjects:
Online Access:https://doi.org/10.1186/s12915-021-01042-z
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spelling doaj-7fdf1e4f96a24137a8dc29070e7c3c9c2021-08-15T11:46:16ZengBMCBMC Biology1741-70072021-08-0119112210.1186/s12915-021-01042-zAn essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparumMohd Asad0Yoshiki Yamaryo-Botté1Mohammad E. Hossain2Vandana Thakur3Shaifali Jain4Gaurav Datta5Cyrille Y. Botté6Asif Mohmmed7International Centre for Genetic Engineering and BiotechnologyApicoLipid Team, Institute for Advanced Biosciences, CNRS UMR5309, Université Grenoble Alpes, INSERM U1209International Centre for Genetic Engineering and BiotechnologyInternational Centre for Genetic Engineering and BiotechnologyInternational Centre for Genetic Engineering and BiotechnologyInternational Centre for Genetic Engineering and BiotechnologyApicoLipid Team, Institute for Advanced Biosciences, CNRS UMR5309, Université Grenoble Alpes, INSERM U1209International Centre for Genetic Engineering and BiotechnologyAbstract Background Plasmodium falciparum is the pathogen responsible for the most devastating form of human malaria. As it replicates asexually in the erythrocytes of its human host, the parasite feeds on haemoglobin uptaken from these cells. Heme, a toxic by-product of haemoglobin utilization by the parasite, is neutralized into inert hemozoin in the food vacuole of the parasite. Lipid homeostasis and phospholipid metabolism are crucial for this process, as well as for the parasite’s survival and propagation within the host. P. falciparum harbours a uniquely large family of phospholipases, which are suggested to play key roles in lipid metabolism and utilization. Results Here, we show that one of the parasite phospholipase (P. falciparum lysophospholipase, PfLPL1) plays an essential role in lipid homeostasis linked with the haemoglobin degradation and heme conversion pathway. Fluorescence tagging showed that the PfLPL1 in infected blood cells localizes to dynamic vesicular structures that traffic from the host-parasite interface at the parasite periphery, through the cytosol, to get incorporated into a large vesicular lipid rich body next to the food-vacuole. PfLPL1 is shown to harbour enzymatic activity to catabolize phospholipids, and its transient downregulation in the parasite caused a significant reduction of neutral lipids in the food vacuole-associated lipid bodies. This hindered the conversion of heme, originating from host haemoglobin, into the hemozoin, and disrupted the parasite development cycle and parasite growth. Detailed lipidomic analyses of inducible knock-down parasites deciphered the functional role of PfLPL1 in generation of neutral lipid through recycling of phospholipids. Further, exogenous fatty-acids were able to complement downregulation of PfLPL1 to rescue the parasite growth as well as restore hemozoin levels. Conclusions We found that the transient downregulation of PfLPL1 in the parasite disrupted lipid homeostasis and caused a reduction in neutral lipids essentially required for heme to hemozoin conversion. Our study suggests a crucial link between phospholipid catabolism and generation of neutral lipids (TAGs) with the host haemoglobin degradation pathway.https://doi.org/10.1186/s12915-021-01042-zPhospholipid metabolismPhospholipaseNeutral lipidsMalariaHost-haemoglobinHemozoin
collection DOAJ
language English
format Article
sources DOAJ
author Mohd Asad
Yoshiki Yamaryo-Botté
Mohammad E. Hossain
Vandana Thakur
Shaifali Jain
Gaurav Datta
Cyrille Y. Botté
Asif Mohmmed
spellingShingle Mohd Asad
Yoshiki Yamaryo-Botté
Mohammad E. Hossain
Vandana Thakur
Shaifali Jain
Gaurav Datta
Cyrille Y. Botté
Asif Mohmmed
An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum
BMC Biology
Phospholipid metabolism
Phospholipase
Neutral lipids
Malaria
Host-haemoglobin
Hemozoin
author_facet Mohd Asad
Yoshiki Yamaryo-Botté
Mohammad E. Hossain
Vandana Thakur
Shaifali Jain
Gaurav Datta
Cyrille Y. Botté
Asif Mohmmed
author_sort Mohd Asad
title An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum
title_short An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum
title_full An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum
title_fullStr An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum
title_full_unstemmed An essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in Plasmodium falciparum
title_sort essential vesicular-trafficking phospholipase mediates neutral lipid synthesis and contributes to hemozoin formation in plasmodium falciparum
publisher BMC
series BMC Biology
issn 1741-7007
publishDate 2021-08-01
description Abstract Background Plasmodium falciparum is the pathogen responsible for the most devastating form of human malaria. As it replicates asexually in the erythrocytes of its human host, the parasite feeds on haemoglobin uptaken from these cells. Heme, a toxic by-product of haemoglobin utilization by the parasite, is neutralized into inert hemozoin in the food vacuole of the parasite. Lipid homeostasis and phospholipid metabolism are crucial for this process, as well as for the parasite’s survival and propagation within the host. P. falciparum harbours a uniquely large family of phospholipases, which are suggested to play key roles in lipid metabolism and utilization. Results Here, we show that one of the parasite phospholipase (P. falciparum lysophospholipase, PfLPL1) plays an essential role in lipid homeostasis linked with the haemoglobin degradation and heme conversion pathway. Fluorescence tagging showed that the PfLPL1 in infected blood cells localizes to dynamic vesicular structures that traffic from the host-parasite interface at the parasite periphery, through the cytosol, to get incorporated into a large vesicular lipid rich body next to the food-vacuole. PfLPL1 is shown to harbour enzymatic activity to catabolize phospholipids, and its transient downregulation in the parasite caused a significant reduction of neutral lipids in the food vacuole-associated lipid bodies. This hindered the conversion of heme, originating from host haemoglobin, into the hemozoin, and disrupted the parasite development cycle and parasite growth. Detailed lipidomic analyses of inducible knock-down parasites deciphered the functional role of PfLPL1 in generation of neutral lipid through recycling of phospholipids. Further, exogenous fatty-acids were able to complement downregulation of PfLPL1 to rescue the parasite growth as well as restore hemozoin levels. Conclusions We found that the transient downregulation of PfLPL1 in the parasite disrupted lipid homeostasis and caused a reduction in neutral lipids essentially required for heme to hemozoin conversion. Our study suggests a crucial link between phospholipid catabolism and generation of neutral lipids (TAGs) with the host haemoglobin degradation pathway.
topic Phospholipid metabolism
Phospholipase
Neutral lipids
Malaria
Host-haemoglobin
Hemozoin
url https://doi.org/10.1186/s12915-021-01042-z
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