Direct Visualization of the Dynamic Process of Epsilon Toxin on Hemolysis

Author:

Ji Bin12,Huang Jianxiang3,Zou Kexuan2,Liu Meijun2,Pei Yufeng4,Huang Jing5,Wang Yong3,Wang Jinglin5,Zhou Ruhong3,Xin Wenwen5,Song Jie24ORCID

Affiliation:

1. Department of Disease Control The Affiliated Wuxi Center for Disease Control and Prevention of Nanjing Medical University Wuxi Center for Disease Control and Prevention Wuxi 214023 China

2. Institute of Nano Biomedicine and Engineering Department of Instrument Science and Engineering School of Electronic Information and Electrical Engineering Shanghai Jiao Tong University Shanghai 200240 China

3. Institute of Quantitative Biology College of Life Sciences Zhejiang University Hangzhou 310027 China

4. The Cancer Hospital of the University of Chinese Academy of Sciences Institute of Basic Medicine and Cancer (IBMC) Chinese Academy of Sciences Hangzhou 310022 China

5. State Key Laboratory of Pathogen and Biosecurity Beijing Institute of Microbiology and Epidemiology Beijing 100071 China

Abstract

AbstractHemolysis is the process of rupturing erythrocytes (red blood cells) by forming nanopores on their membranes using hemolysins, which then impede membrane permeability. However, the self‐assembly process before the state of transmembrane pores and underlying mechanisms of conformational change are not fully understood. In this work, theoretical and experimental evidence of the pre‐pore morphology of Clostridium perfringens epsilon toxin (ETX), a typical hemolysin, is provided using in situ atomic force microscopy (AFM) complemented by molecular dynamics (MD) simulations to detect the conformational distribution of different states in Mica. The AFM suggests that the ETX pore is formed in two stages: ETX monomers first attach to the membrane and form a pre‐pore in no special conditions required, which then undergo a conformational change to form a transmembrane pore at temperatures above the critical point in the presence of receptors. The authors’ MD simulations reveal that initial nucleation occurs when specific amino acids adsorb to negatively charged mica cavities. This work fills the knowledge gap in understanding the early stage of hemolysis and the oligomerization of hemolysins. Moreover, the newly identified pre‐pore of ETX holds promise as a candidate for nanopore applications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

General Materials Science,General Chemistry

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