A computational model of ESAT-6 complex in membrane

Author:

Karki Chitra12,Xian Yuejiao3,Xie Yixin2,Sun Shengjie2,Lopez-Hernandez Alan E1,Juarez Brenda1,Wang Jun1,Sun Jianjun4,Li Lin1ORCID

Affiliation:

1. Department of Physics, University of Texas at El Paso, El Paso, Texas, USA

2. Computational Science Program, University of Texas at El Paso, El Paso, Texas, USA

3. Department of Chemistry and Biochemistry, University of Texas at El Paso, El Paso, Texas, USA

4. Department of Biology, University of Texas at El Paso, El Paso, Texas, USA

Abstract

One quarter of the world’s population are infected by Mycobacterium tuberculosis (Mtb), which is a leading death-causing bacterial pathogen. Recent evidence has demonstrated that two virulence factors, ESAT-6 and CFP-10, play crucial roles in Mtb’s cytosolic translocation. Many efforts have been made to study the ESAT-6 and CFP-10 proteins. Some studies have shown that ESAT-6 has an essential role in rupturing phagosome. However, the mechanisms of how ESAT-6 interacts with the membrane have not yet been fully understood. Recent studies indicate that the ESAT-6 disassociates with CFP-10 upon their interaction with phagosome membrane, forming a membrane-spanning pore. Based on these observations, as well as the available structure of ESAT-6, ESAT-6 is hypothesized to form an oligomer for membrane insertion as well as rupturing. Such an ESAT-6 oligomer may play a significant role in the tuberculosis infection. Therefore, deeper understanding of the oligomerization of ESAT-6 will establish new directions for tuberculosis treatment. However, the structure of the oligomer of ESAT-6 is not known. Here, we proposed a comprehensive approach to model the complex structures of ESAT-6 oligomer inside a membrane. Several computational tools, including MD simulation, symmetrical docking, MM/PBSA, are used to obtain and characterize such a complex structure. Results from our studies lead to a well-supported hypothesis of the ESAT-6 oligomerization as well as the identification of essential residues in stabilizing the ESAT-6 oligomer which provide useful insights for future drug design targeting tuberculosis. The approach in this research can also be used to model and study other cross-membrane complex structures.

Funder

National Institutes of Health

U.S. Department of Education

Publisher

World Scientific Pub Co Pte Lt

Subject

Computational Theory and Mathematics,Physical and Theoretical Chemistry,Computer Science Applications

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