Literature DB >> 32123115

An allosteric switch regulates Mycobacterium tuberculosis ClpP1P2 protease function as established by cryo-EM and methyl-TROSY NMR.

Siavash Vahidi1,2,3,4, Zev A Ripstein2,4, Jordan B Juravsky4, Enrico Rennella1,2,3,4, Alfred L Goldberg5, Anthony K Mittermaier6, John L Rubinstein2,4,7, Lewis E Kay8,2,3,4.   

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.

Entities:  

Keywords:  ClpP handle region; allostery; intra-/interring cooperativity; protein homeostasis

Mesh:

Substances:

Year:  2020        PMID: 32123115      PMCID: PMC7084164          DOI: 10.1073/pnas.1921630117

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  77 in total

1.  Crystal structure determination of Escherichia coli ClpP starting from an EM-derived mask.

Authors:  J Wang; J A Hartling; J M Flanagan
Journal:  J Struct Biol       Date:  1998-12-15       Impact factor: 2.867

2.  Solution NMR of supramolecular complexes: providing new insights into function.

Authors:  Remco Sprangers; Algirdas Velyvis; Lewis E Kay
Journal:  Nat Methods       Date:  2007-09       Impact factor: 28.547

3.  The structure of ClpP at 2.3 A resolution suggests a model for ATP-dependent proteolysis.

Authors:  J Wang; J A Hartling; J M Flanagan
Journal:  Cell       Date:  1997-11-14       Impact factor: 41.582

4.  Structure and mechanism of the caseinolytic protease ClpP1/2 heterocomplex from Listeria monocytogenes.

Authors:  Maria Dahmen; Marie-Theres Vielberg; Michael Groll; Stephan A Sieber
Journal:  Angew Chem Int Ed Engl       Date:  2015-01-28       Impact factor: 15.336

Review 5.  The development of small-molecule modulators for ClpP protease activity.

Authors:  Fei Ye; Jiahui Li; Cai-Guang Yang
Journal:  Mol Biosyst       Date:  2016-12-20

6.  The ClpP double ring tetradecameric protease exhibits plastic ring-ring interactions, and the N termini of its subunits form flexible loops that are essential for ClpXP and ClpAP complex formation.

Authors:  Anna Gribun; Matthew S Kimber; Reagan Ching; Remco Sprangers; Klaus M Fiebig; Walid A Houry
Journal:  J Biol Chem       Date:  2005-02-08       Impact factor: 5.157

7.  Cleavage Specificity of Mycobacterium tuberculosis ClpP1P2 Protease and Identification of Novel Peptide Substrates and Boronate Inhibitors with Anti-bacterial Activity.

Authors:  Tatos Akopian; Olga Kandror; Christopher Tsu; Jack H Lai; Wengen Wu; Yuxin Liu; Peng Zhao; Annie Park; Lisa Wolf; Lawrence R Dick; Eric J Rubin; William Bachovchin; Alfred L Goldberg
Journal:  J Biol Chem       Date:  2015-03-10       Impact factor: 5.157

Review 8.  AAA+ Machines of Protein Destruction in Mycobacteria.

Authors:  Adnan Ali H Alhuwaider; David A Dougan
Journal:  Front Mol Biosci       Date:  2017-07-19

9.  Mechanism of the allosteric activation of the ClpP protease machinery by substrates and active-site inhibitors.

Authors:  Jan Felix; Katharina Weinhäupl; Christophe Chipot; François Dehez; Audrey Hessel; Diego F Gauto; Cecile Morlot; Olga Abian; Irina Gutsche; Adrian Velazquez-Campoy; Paul Schanda; Hugo Fraga
Journal:  Sci Adv       Date:  2019-09-04       Impact factor: 14.136

10.  The functional ClpXP protease of Chlamydia trachomatis requires distinct clpP genes from separate genetic loci.

Authors:  Stefan Pan; Imran T Malik; Dhana Thomy; Beate Henrichfreise; Peter Sass
Journal:  Sci Rep       Date:  2019-10-01       Impact factor: 4.379

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  15 in total

1.  Could confounding the allosteric communication of biotic machinery be an alternative path to antibiotics?

Authors:  R Andrew Byrd
Journal:  Proc Natl Acad Sci U S A       Date:  2020-03-20       Impact factor: 11.205

2.  The cryo-EM structure of the chloroplast ClpP complex.

Authors:  Ning Wang; Yifan Wang; Qian Zhao; Xiang Zhang; Chao Peng; Wenjuan Zhang; Yanan Liu; Olivier Vallon; Michael Schroda; Yao Cong; Cuimin Liu
Journal:  Nat Plants       Date:  2021-11-15       Impact factor: 15.793

3.  Structural insights into ClpP protease side exit pore-opening by a pH drop coupled with substrate hydrolysis.

Authors:  Leehyeon Kim; Byung-Gil Lee; Minki Kim; Min Kyung Kim; Do Hoon Kwon; Hyunmin Kim; Heike Brötz-Oesterhelt; Soung-Hun Roh; Hyun Kyu Song
Journal:  EMBO J       Date:  2022-05-20       Impact factor: 14.012

4.  Probing allosteric interactions in homo-oligomeric molecular machines using solution NMR spectroscopy.

Authors:  Yuki Toyama; Lewis E Kay
Journal:  Proc Natl Acad Sci U S A       Date:  2021-12-14       Impact factor: 12.779

Review 5.  Reprogramming of the Caseinolytic Protease by ADEP Antibiotics: Molecular Mechanism, Cellular Consequences, Therapeutic Potential.

Authors:  Heike Brötz-Oesterhelt; Andreas Vorbach
Journal:  Front Mol Biosci       Date:  2021-05-13

6.  The role of NMR in leveraging dynamics and entropy in drug design.

Authors:  Abhinav Dubey; Koh Takeuchi; Mikhail Reibarkh; Haribabu Arthanari
Journal:  J Biomol NMR       Date:  2020-07-27       Impact factor: 2.835

Review 7.  Recent Insights into the Structure and Function of Mycobacterial Membrane Proteins Facilitated by Cryo-EM.

Authors:  Ameya D Bendre; Peter J Peters; Janesh Kumar
Journal:  J Membr Biol       Date:  2021-05-05       Impact factor: 1.843

Review 8.  Structure, function, and substrates of Clp AAA+ protease systems in cyanobacteria, plastids, and apicoplasts: A comparative analysis.

Authors:  Imen Bouchnak; Klaas J van Wijk
Journal:  J Biol Chem       Date:  2021-01-23       Impact factor: 5.157

Review 9.  Structural determinants of regulated proteolysis in pathogenic bacteria by ClpP and the proteasome.

Authors:  Shoshanna C Kahne; K Heran Darwin
Journal:  Curr Opin Struct Biol       Date:  2020-11-19       Impact factor: 6.809

Review 10.  Control of Toxin-Antitoxin Systems by Proteases in Mycobacterium Tuberculosis.

Authors:  Patricia Bordes; Pierre Genevaux
Journal:  Front Mol Biosci       Date:  2021-05-17
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