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Investigating Protein Sequence-structure-dynamics Relationships with Bio3D-web
Published on: July 16, 2017
Conformational dynamics of Peb4 exhibit "mother's arms" chain model: a molecular dynamics study
Sarath Chandra Dantu1, Sagar Khavnekar2, Avinash Kale2
1a Department of Biosciences and Bioengineering , Indian Institute of Technology Bombay , Powai, Mumbai 400076 , India.
Insights
Campylobacter jejuni Peb4 protein, a periplasmic holdase with peptidyl prolyl cis/trans isomerase (PPIase) activity, undergoes significant structural changes. Molecular dynamics reveal a flexible PPIase domain movement, forming a cradling cavity essential for its chaperone function.
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Peb4 from Campylobacter jejuni is a periplasmic holdase with peptidyl prolyl cis/trans isomerase (PPIase) activity.
- Peb4 deletion impacts C. jejuni's outer membrane protein profile, cellular adhesion, and biofilm formation.
- Previous studies suggested flexible PPIase domains in Peb4 might cradle substrates.
Purpose of the Study:
- To explore the flexibility and substrate-binding mechanism of Peb4 using molecular dynamics simulations.
- To investigate the conformational changes of Peb4 in a solution environment.
Main Methods:
- Sub-microsecond molecular dynamics simulations in a solution environment.
- Analysis of conformational changes and structural flexibility of Peb4.
Main Results:
- Simulations showed highly flexible PPIase domains in Peb4, moving apart by 8 nm.
- A large conformational change results in a compact, crossed-over conformation with a central cavity for substrate cradling.
- Linker region flexibility is crucial for the "crossed-over" conformation, consistent with the "mother's arms" model.
Conclusions:
- Peb4 utilizes conformational heterogeneity for its biological function as a chaperone.
- The observed structural dynamics provide insights into the mechanism of substrate binding and holdase activity.
- Findings elucidate the role of Peb4 in Campylobacter jejuni's cellular processes.
Abstract:
Peb4 from Campylobacter jejuni is an intertwined dimeric, periplasmic holdase, which also exhibits peptidyl prolyl cis/trans isomerase (PPIase) activity. Peb4 gene deletion alters the outer membrane protein profile and impairs cellular adhesion and biofilm formation for C. jejuni. Earlier crystallographic study has proposed that the PPIase domains are flexible and might form a cradle for holding the substrate and these aspects of Peb4 were explored using sub-microsecond molecular dynamics simulations in solution environment. Our simulations have revealed that PPIase domains are highly flexible and undergo a large structural change where they move apart from each other by 8 nm starting at .5 nm. Further, this large conformational change renders Peb4 as a compact protein with crossed-over conformation, forms a central cavity, which can "cradle" the target substrate. As reported for other chaperone proteins, flexibility of linker region connecting the chaperone and PPIase domains is key to forming the "crossed-over" conformation. The conformational transition of the Peb4 protein from the X-ray structure to the crossed-over conformation follows the "mother's arms" chain model proposed for the FkpA chaperone protein. Our results offer insights into how Peb4 and similar chaperones can use the conformational heterogeneity at their disposal to perform its much-revered biological function.

