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X-Ray Crystallography to Study the Oligomeric State Transition of the Thermotoga maritima M42 Aminopeptidase TmPep1050
Published on: May 13, 2020
An allosteric switch regulates Mycobacterium tuberculosis ClpP1P2 protease function as established by cryo-EM and
Siavash Vahidi1,2,3,4, Zev A Ripstein2,4, Jordan B Juravsky4
1Department of Molecular Genetics, University of Toronto, Toronto, ON M5S 1A8, Canada.
Abstract:
The 300-kDa ClpP1P2 protease from Mycobacterium tuberculosis collaborates with the AAA+ (ATPases associated with a variety of cellular activities) unfoldases, ClpC1 and ClpX, to degrade substrate proteins. Unlike in other bacteria, all of the components of the Clp system are essential for growth and virulence of mycobacteria, and their inhibitors show promise as antibiotics. MtClpP1P2 is unique in that it contains a pair of distinct ClpP1 and ClpP2 rings and also requires the presence of activator peptides, such as benzoyl-leucyl-leucine (Bz-LL), for function. Understanding the structural basis for this requirement has been elusive but is critical for the rational design and improvement of antituberculosis (anti-TB) therapeutics that target the Clp system. Here, we present a combined biophysical and biochemical study to explore the structure-dynamics-function relationship in MtClpP1P2. Electron cryomicroscopy (cryo-EM) structures of apo and acyldepsipeptide-bound MtClpP1P2 explain their lack of activity by showing loss of a key β-sheet in a sequence known as the handle region that is critical for the proper formation of the catalytic triad. Methyl transverse relaxation-optimized spectroscopy (TROSY)-based NMR, cryo-EM, and biochemical assays show that, on binding Bz-LL or covalent inhibitors, MtClpP1P2 undergoes a conformational change from an inactive compact state to an active extended structure that can be explained by a modified Monod-Wyman-Changeux model. Our study establishes a critical role for the handle region as an on/off switch for function and shows extensive allosteric interactions involving both intra- and interring communication that regulate MtClpP1P2 activity and that can potentially be exploited by small molecules to target M. tuberculosis.
Insights
Mycobacterium tuberculosis ClpP1P2 protease requires activator peptides for function. This study reveals how activator binding induces conformational changes, essential for designing new anti-tuberculosis drugs targeting this essential bacterial system.
Area of Science:
- Biochemistry
- Structural Biology
- Microbiology
Background:
- The ClpP1P2 protease from Mycobacterium tuberculosis is essential for bacterial growth and virulence.
- It functions with ClpC1 and ClpX unfoldases to degrade proteins, making it a potential antibiotic target.
- Unlike other bacteria, mycobacterial Clp system components are essential, and inhibitors show therapeutic promise.
Purpose of the Study:
- To elucidate the structural and dynamic basis for activator peptide requirement in MtClpP1P2 function.
- To understand the structure-dynamics-function relationship for rational drug design against tuberculosis.
- To identify key regulatory regions and allosteric mechanisms governing MtClpP1P2 activity.
Main Methods:
- Combined biophysical and biochemical approaches.
- Electron cryomicroscopy (cryo-EM) for structural determination.
- Methyl transverse relaxation-optimized spectroscopy (TROSY)-based NMR and biochemical assays.
Main Results:
- Cryo-EM structures revealed that apo and acyldepsipeptide-bound MtClpP1P2 lack activity due to a lost key β-sheet in the handle region.
- Activator peptide (Bz-LL) or covalent inhibitor binding induces a conformational switch from inactive compact to active extended states.
- The handle region acts as an on/off switch, and extensive allosteric interactions regulate enzyme activity.
Conclusions:
- The handle region is critical for MtClpP1P2 catalytic triad formation and function.
- Activator binding triggers a modified Monod-Wyman-Changeux model-based conformational change.
- Allosteric communication within and between rings regulates MtClpP1P2, offering potential targets for anti-TB small molecules.
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