» Articles » PMID: 21805238

Insights from Bacterial Subtilases into the Mechanisms of Intramolecular Chaperone-mediated Activation of Furin

Overview
Specialty Molecular Biology
Date 2011 Aug 2
PMID 21805238
Citations 38
Authors
Affiliations
Soon will be listed here.
Abstract

Prokaryotic subtilisins and eukaryotic proprotein convertases (PCs) are two homologous protease subfamilies that belong to the larger ubiquitous super-family called subtilases. Members of the subtilase super-family are produced as zymogens wherein their propeptide domains function as dedicated intramolecular chaperones (IMCs) that facilitate correct folding and regulate precise activation of their cognate catalytic domains. The molecular and cellular determinants that modulate IMC-dependent folding and activation of PCs are poorly understood. In this chapter we review what we have learned from the folding and activation of prokaryotic subtilisin, discuss how this has molded our understanding of furin maturation, and foray into the concept of pH sensors, which may represent a paradigm that PCs (and possibly other IMC-dependent eukaryotic proteins) follow for regulating their biological functions using the pH gradient in the secretory pathway.

Citing Articles

Extremophilic Microorganisms as a Source of Emerging Enzymes for the Food Industry: A Review.

Ashaolu T, Malik T, Soni R, Prieto M, Jafari S Food Sci Nutr. 2025; 13(1):e4540.

PMID: 39803234 PMC: 11716999. DOI: 10.1002/fsn3.4540.


In silico and experimental characterization of a new polyextremophilic subtilisin-like protease from and its application as a laundry detergent additive.

Gorrab A, Ouertani R, Hammami K, Souii A, Kallel F, Slaheddine Masmoudi A 3 Biotech. 2024; 14(9):200.

PMID: 39144069 PMC: 11319565. DOI: 10.1007/s13205-024-04043-1.


Prodomain-driven enzyme dimerization: a pH-dependent autoinhibition mechanism that controls Sub1 activity before merozoite egress.

Martinez M, Bouillon A, Brule S, Raynal B, Haouz A, Alzari P mBio. 2024; 15(3):e0019824.

PMID: 38386597 PMC: 10936178. DOI: 10.1128/mbio.00198-24.


High selectivity of the hyperthermophilic subtilase propeptide domain toward inhibition of its cognate protease.

Bahun M, Poklar Ulrih N Microbiol Spectr. 2023; :e0148723.

PMID: 37655909 PMC: 10580911. DOI: 10.1128/spectrum.01487-23.


Activation of the Egress Effector Subtilisin-Like Protease 1 Is Mediated by Plasmepsin X Destruction of the Prodomain.

Mukherjee S, Nasamu A, Rubiano K, Goldberg D mBio. 2023; 14(2):e0067323.

PMID: 37036362 PMC: 10128010. DOI: 10.1128/mbio.00673-23.


References
1.
Jaswal S, Sohl J, Davis J, Agard D . Energetic landscape of alpha-lytic protease optimizes longevity through kinetic stability. Nature. 2002; 415(6869):343-6. DOI: 10.1038/415343a. View

2.
Vachova L . Activation of the intracellular Ca(2+)-dependent serine protease ISP1 of bacillus megaterium by purification or by high Ca2+ concentrations. Biochem Mol Biol Int. 1996; 40(5):947-54. View

3.
Chen Y, Inouye M . The intramolecular chaperone-mediated protein folding. Curr Opin Struct Biol. 2008; 18(6):765-70. DOI: 10.1016/j.sbi.2008.10.005. View

4.
Bryan P . Protein engineering of subtilisin. Biochim Biophys Acta. 2001; 1543(2):203-222. DOI: 10.1016/s0167-4838(00)00235-1. View

5.
Smith S, Gottesman M . Activity and deletion analysis of recombinant human cathepsin L expressed in Escherichia coli. J Biol Chem. 1989; 264(34):20487-95. View