Cargando…

Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease

Various plants use antimicrobial proteins/peptides to resist phytopathogens. In the potato, Solanum tuberosum, the plant-specific insert (PSI) domain of an aspartic protease performs this role by disrupting phytopathogen plasma membranes. However, the mechanism by which PSI selects target membranes...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhao, Xiaoli, Ma, Xiaomin, Dupius, John H., Qi, Ruxi, Tian, Jenny (Jingxin), Chen, Jiaxin, Ou, Xiuyuan, Qian, Zhaohui, Liang, Dehai, Wang, Peiyi, Yada, Rickey Y., Wang, Shenlin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8683733/
https://www.ncbi.nlm.nih.gov/pubmed/34801553
http://dx.doi.org/10.1016/j.jbc.2021.101430
_version_ 1784617479716208640
author Zhao, Xiaoli
Ma, Xiaomin
Dupius, John H.
Qi, Ruxi
Tian, Jenny (Jingxin)
Chen, Jiaxin
Ou, Xiuyuan
Qian, Zhaohui
Liang, Dehai
Wang, Peiyi
Yada, Rickey Y.
Wang, Shenlin
author_facet Zhao, Xiaoli
Ma, Xiaomin
Dupius, John H.
Qi, Ruxi
Tian, Jenny (Jingxin)
Chen, Jiaxin
Ou, Xiuyuan
Qian, Zhaohui
Liang, Dehai
Wang, Peiyi
Yada, Rickey Y.
Wang, Shenlin
author_sort Zhao, Xiaoli
collection PubMed
description Various plants use antimicrobial proteins/peptides to resist phytopathogens. In the potato, Solanum tuberosum, the plant-specific insert (PSI) domain of an aspartic protease performs this role by disrupting phytopathogen plasma membranes. However, the mechanism by which PSI selects target membranes has not been elucidated. Here, we studied PSI-induced membrane fusion, focusing on the effects of lipid composition on fusion efficiency. Membrane fusion by the PSI involves an intermediate state whereby adjacent liposomes share their bilayers. We found that increasing the concentration of negatively charged phosphatidylserine (PS) phospholipids substantially accelerated PSI-mediated membrane fusion. NMR data demonstrated that PS did not affect the binding between the PSI and liposomes but had seminal effects on the dynamics of PSI interaction with liposomes. In PS-free liposomes, the PSI underwent significant motion, which was suppressed on PS-contained liposomes. Molecular dynamics simulations showed that the PSI binds to PS-containing membranes with a dominant angle ranging from −31° to 30°, with respect to the bilayer, and is closer to the membrane surfaces. In contrast, PSI is mobile and exhibits multiple topological states on the surface of PS-free membranes. Taken together, our data suggested that PS lipids limit the motion of the anchored PSI, bringing it closer to the membrane surface and efficiently bridging different liposomes to accelerate fusion. As most phytopathogens have a higher content of negatively charged lipids as compared with host cells, these results indicate that the PSI selectively targets negatively charged lipids, which likely represents a way of distinguishing the pathogen from the host.
format Online
Article
Text
id pubmed-8683733
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-86837332021-12-30 Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease Zhao, Xiaoli Ma, Xiaomin Dupius, John H. Qi, Ruxi Tian, Jenny (Jingxin) Chen, Jiaxin Ou, Xiuyuan Qian, Zhaohui Liang, Dehai Wang, Peiyi Yada, Rickey Y. Wang, Shenlin J Biol Chem Research Article Various plants use antimicrobial proteins/peptides to resist phytopathogens. In the potato, Solanum tuberosum, the plant-specific insert (PSI) domain of an aspartic protease performs this role by disrupting phytopathogen plasma membranes. However, the mechanism by which PSI selects target membranes has not been elucidated. Here, we studied PSI-induced membrane fusion, focusing on the effects of lipid composition on fusion efficiency. Membrane fusion by the PSI involves an intermediate state whereby adjacent liposomes share their bilayers. We found that increasing the concentration of negatively charged phosphatidylserine (PS) phospholipids substantially accelerated PSI-mediated membrane fusion. NMR data demonstrated that PS did not affect the binding between the PSI and liposomes but had seminal effects on the dynamics of PSI interaction with liposomes. In PS-free liposomes, the PSI underwent significant motion, which was suppressed on PS-contained liposomes. Molecular dynamics simulations showed that the PSI binds to PS-containing membranes with a dominant angle ranging from −31° to 30°, with respect to the bilayer, and is closer to the membrane surfaces. In contrast, PSI is mobile and exhibits multiple topological states on the surface of PS-free membranes. Taken together, our data suggested that PS lipids limit the motion of the anchored PSI, bringing it closer to the membrane surface and efficiently bridging different liposomes to accelerate fusion. As most phytopathogens have a higher content of negatively charged lipids as compared with host cells, these results indicate that the PSI selectively targets negatively charged lipids, which likely represents a way of distinguishing the pathogen from the host. American Society for Biochemistry and Molecular Biology 2021-11-18 /pmc/articles/PMC8683733/ /pubmed/34801553 http://dx.doi.org/10.1016/j.jbc.2021.101430 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Article
Zhao, Xiaoli
Ma, Xiaomin
Dupius, John H.
Qi, Ruxi
Tian, Jenny (Jingxin)
Chen, Jiaxin
Ou, Xiuyuan
Qian, Zhaohui
Liang, Dehai
Wang, Peiyi
Yada, Rickey Y.
Wang, Shenlin
Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
title Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
title_full Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
title_fullStr Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
title_full_unstemmed Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
title_short Negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
title_sort negatively charged phospholipids accelerate the membrane fusion activity of the plant-specific insert domain of an aspartic protease
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8683733/
https://www.ncbi.nlm.nih.gov/pubmed/34801553
http://dx.doi.org/10.1016/j.jbc.2021.101430
work_keys_str_mv AT zhaoxiaoli negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT maxiaomin negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT dupiusjohnh negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT qiruxi negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT tianjennyjingxin negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT chenjiaxin negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT ouxiuyuan negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT qianzhaohui negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT liangdehai negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT wangpeiyi negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT yadarickeyy negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease
AT wangshenlin negativelychargedphospholipidsacceleratethemembranefusionactivityoftheplantspecificinsertdomainofanasparticprotease