Cargando…

Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling

Systematically dissecting the highly dynamic and tightly communicating membrane proteome of living cells is essential for the system-level understanding of fundamental cellular processes and intricate relationship between membrane-bound organelles constructed through membrane traffic. While extensiv...

Descripción completa

Detalles Bibliográficos
Autores principales: Jiang, Qianqian, Wang, He, Qiao, Zichun, Hou, Yutong, Sui, Zhigang, Zhao, Baofeng, Liang, Zhen, Jiang, Bo, Zhang, Yukui, Zhang, Lihua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619618/
https://www.ncbi.nlm.nih.gov/pubmed/37920345
http://dx.doi.org/10.1039/d3sc03725h
_version_ 1785130024656961536
author Jiang, Qianqian
Wang, He
Qiao, Zichun
Hou, Yutong
Sui, Zhigang
Zhao, Baofeng
Liang, Zhen
Jiang, Bo
Zhang, Yukui
Zhang, Lihua
author_facet Jiang, Qianqian
Wang, He
Qiao, Zichun
Hou, Yutong
Sui, Zhigang
Zhao, Baofeng
Liang, Zhen
Jiang, Bo
Zhang, Yukui
Zhang, Lihua
author_sort Jiang, Qianqian
collection PubMed
description Systematically dissecting the highly dynamic and tightly communicating membrane proteome of living cells is essential for the system-level understanding of fundamental cellular processes and intricate relationship between membrane-bound organelles constructed through membrane traffic. While extensive efforts have been made to enrich membrane proteins, their comprehensive analysis with high selectivity and deep coverage remains a challenge, especially at the living cell state. To address this problem, we developed the cell surface engineering coupling biomembrane fusion method to map the whole membrane proteome from the plasma membrane to various organelle membranes taking advantage of the exquisite interaction between two-dimensional metal–organic layers and phospholipid bilayers on the membrane. This approach, which bypassed conventional biochemical fractionation and ultracentrifugation, facilitated the enrichment of membrane proteins in their native phospholipid bilayer environment, helping to map the membrane proteome with a specificity of 77% and realizing the deep coverage of the HeLa membrane proteome (5087 membrane proteins). Furthermore, membrane N-phosphoproteome was profiled by integrating the N-phosphoproteome analysis strategy, and the dynamic membrane proteome during apoptosis was deciphered in combination with quantitative proteomics. The features of membrane protein N-phosphorylation modifications and many differential proteins during apoptosis associated with mitochondrial dynamics and ER homeostasis were found. The method provided a simple and robust strategy for efficient analysis of membrane proteome, offered a reliable platform for research on membrane-related cell dynamic events and expanded the application of metal–organic layers.
format Online
Article
Text
id pubmed-10619618
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-106196182023-11-02 Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling Jiang, Qianqian Wang, He Qiao, Zichun Hou, Yutong Sui, Zhigang Zhao, Baofeng Liang, Zhen Jiang, Bo Zhang, Yukui Zhang, Lihua Chem Sci Chemistry Systematically dissecting the highly dynamic and tightly communicating membrane proteome of living cells is essential for the system-level understanding of fundamental cellular processes and intricate relationship between membrane-bound organelles constructed through membrane traffic. While extensive efforts have been made to enrich membrane proteins, their comprehensive analysis with high selectivity and deep coverage remains a challenge, especially at the living cell state. To address this problem, we developed the cell surface engineering coupling biomembrane fusion method to map the whole membrane proteome from the plasma membrane to various organelle membranes taking advantage of the exquisite interaction between two-dimensional metal–organic layers and phospholipid bilayers on the membrane. This approach, which bypassed conventional biochemical fractionation and ultracentrifugation, facilitated the enrichment of membrane proteins in their native phospholipid bilayer environment, helping to map the membrane proteome with a specificity of 77% and realizing the deep coverage of the HeLa membrane proteome (5087 membrane proteins). Furthermore, membrane N-phosphoproteome was profiled by integrating the N-phosphoproteome analysis strategy, and the dynamic membrane proteome during apoptosis was deciphered in combination with quantitative proteomics. The features of membrane protein N-phosphorylation modifications and many differential proteins during apoptosis associated with mitochondrial dynamics and ER homeostasis were found. The method provided a simple and robust strategy for efficient analysis of membrane proteome, offered a reliable platform for research on membrane-related cell dynamic events and expanded the application of metal–organic layers. The Royal Society of Chemistry 2023-10-05 /pmc/articles/PMC10619618/ /pubmed/37920345 http://dx.doi.org/10.1039/d3sc03725h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Jiang, Qianqian
Wang, He
Qiao, Zichun
Hou, Yutong
Sui, Zhigang
Zhao, Baofeng
Liang, Zhen
Jiang, Bo
Zhang, Yukui
Zhang, Lihua
Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
title Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
title_full Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
title_fullStr Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
title_full_unstemmed Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
title_short Metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
title_sort metal organic layers enabled cell surface engineering coupling biomembrane fusion for dynamic membrane proteome profiling
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10619618/
https://www.ncbi.nlm.nih.gov/pubmed/37920345
http://dx.doi.org/10.1039/d3sc03725h
work_keys_str_mv AT jiangqianqian metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT wanghe metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT qiaozichun metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT houyutong metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT suizhigang metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT zhaobaofeng metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT liangzhen metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT jiangbo metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT zhangyukui metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling
AT zhanglihua metalorganiclayersenabledcellsurfaceengineeringcouplingbiomembranefusionfordynamicmembraneproteomeprofiling