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Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage

Phosphorus in the form of phosphate (Pi) is an essential element for metabolic processes, including lipid metabolism. In yeast, the inositol polyphosphate kinase vip1 mediated synthesis of inositol heptakisphosphate (IP(7)) regulates the phosphate-responsive (PHO) signaling pathway, which plays an i...

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Autores principales: Peng, Xueling, Ma, Congcong, Feng, Yuxin, Zhang, Biao, Zhu, Mengsen, Ma, Tianyu, Yu, Qilin, Li, Mingchun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8839741/
https://www.ncbi.nlm.nih.gov/pubmed/35163951
http://dx.doi.org/10.3390/molecules27030686
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author Peng, Xueling
Ma, Congcong
Feng, Yuxin
Zhang, Biao
Zhu, Mengsen
Ma, Tianyu
Yu, Qilin
Li, Mingchun
author_facet Peng, Xueling
Ma, Congcong
Feng, Yuxin
Zhang, Biao
Zhu, Mengsen
Ma, Tianyu
Yu, Qilin
Li, Mingchun
author_sort Peng, Xueling
collection PubMed
description Phosphorus in the form of phosphate (Pi) is an essential element for metabolic processes, including lipid metabolism. In yeast, the inositol polyphosphate kinase vip1 mediated synthesis of inositol heptakisphosphate (IP(7)) regulates the phosphate-responsive (PHO) signaling pathway, which plays an important role in response to Pi stress. The role of vip1 in Pi stress and lipid metabolism of Candida albicans has not yet been studied. We found that when vip1Δ/Δ was grown in glucose medium, if Pi was supplemented in the medium or mitochondrial Pi transporter was overexpressed in the strain, the lipid droplet (LD) content was reduced and membrane damage was alleviated. However, further studies showed that neither the addition of Pi nor the overexpression of the Pi transporter affected the energy balance of vip1Δ/Δ. In addition, the LD content of vip1Δ/Δ grown in Pi limitation medium PNMC was lower than that grown in SC, and the metabolic activity of vip1Δ/Δ grown in PNMC was also lower than that grown in SC medium. This suggests that the increase in Pi demand by a high energy metabolic rate is the cause of LD accumulation in vip1Δ/Δ. In addition, in the vip1Δ/Δ strains, the core transcription factor PHO4 in the PHO pathway was transported to the vacuole and degraded, which reduced the pathway activity. However, this does not mean that knocking out vip1 completely blocks the activation of the PHO pathway, because the LD content of vip1Δ/Δ grown in the medium with β-glycerol phosphate as the Pi source was significantly reduced. In summary, the increased Pi demand and the decreased PHO pathway activity in vip1Δ/Δ ultimately lead to LD accumulation and cell membrane damage.
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spelling pubmed-88397412022-02-13 Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage Peng, Xueling Ma, Congcong Feng, Yuxin Zhang, Biao Zhu, Mengsen Ma, Tianyu Yu, Qilin Li, Mingchun Molecules Article Phosphorus in the form of phosphate (Pi) is an essential element for metabolic processes, including lipid metabolism. In yeast, the inositol polyphosphate kinase vip1 mediated synthesis of inositol heptakisphosphate (IP(7)) regulates the phosphate-responsive (PHO) signaling pathway, which plays an important role in response to Pi stress. The role of vip1 in Pi stress and lipid metabolism of Candida albicans has not yet been studied. We found that when vip1Δ/Δ was grown in glucose medium, if Pi was supplemented in the medium or mitochondrial Pi transporter was overexpressed in the strain, the lipid droplet (LD) content was reduced and membrane damage was alleviated. However, further studies showed that neither the addition of Pi nor the overexpression of the Pi transporter affected the energy balance of vip1Δ/Δ. In addition, the LD content of vip1Δ/Δ grown in Pi limitation medium PNMC was lower than that grown in SC, and the metabolic activity of vip1Δ/Δ grown in PNMC was also lower than that grown in SC medium. This suggests that the increase in Pi demand by a high energy metabolic rate is the cause of LD accumulation in vip1Δ/Δ. In addition, in the vip1Δ/Δ strains, the core transcription factor PHO4 in the PHO pathway was transported to the vacuole and degraded, which reduced the pathway activity. However, this does not mean that knocking out vip1 completely blocks the activation of the PHO pathway, because the LD content of vip1Δ/Δ grown in the medium with β-glycerol phosphate as the Pi source was significantly reduced. In summary, the increased Pi demand and the decreased PHO pathway activity in vip1Δ/Δ ultimately lead to LD accumulation and cell membrane damage. MDPI 2022-01-21 /pmc/articles/PMC8839741/ /pubmed/35163951 http://dx.doi.org/10.3390/molecules27030686 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Peng, Xueling
Ma, Congcong
Feng, Yuxin
Zhang, Biao
Zhu, Mengsen
Ma, Tianyu
Yu, Qilin
Li, Mingchun
Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage
title Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage
title_full Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage
title_fullStr Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage
title_full_unstemmed Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage
title_short Phosphate Starvation by Energy Metabolism Disturbance in Candida albicans vip1Δ/Δ Induces Lipid Droplet Accumulation and Cell Membrane Damage
title_sort phosphate starvation by energy metabolism disturbance in candida albicans vip1δ/δ induces lipid droplet accumulation and cell membrane damage
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8839741/
https://www.ncbi.nlm.nih.gov/pubmed/35163951
http://dx.doi.org/10.3390/molecules27030686
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