Computational analysis of propeptide‐containing proteins and prediction of their post‐cleavage conformation changes

Author:

Pei Jimin123ORCID,Kinch Lisa N.45,Cong Qian123

Affiliation:

1. Eugene McDermott Center for Human Growth and Development University of Texas Southwestern Medical Center Dallas Texas USA

2. Department of Biophysics University of Texas Southwestern Medical Center Dallas Texas USA

3. Harold C. Simmons Comprehensive Cancer Center, University of Texas Southwestern Medical Center Dallas Texas USA

4. Department of Molecular Biology University of Texas Southwestern Medical Center Dallas Texas USA

5. Howard Hughes Medical Institute, University of Texas Southwestern Medical Center Dallas Texas USA

Abstract

AbstractA propeptide is removed from a precursor protein to generate its active or mature form. Propeptides play essential roles in protein folding, transportation, and activation and are present in about 2.3% of reviewed proteins in the UniProt database. They are often found in secreted or membrane‐bound proteins including proteolytic enzymes, hormones, and toxins. We identified a variety of globular and nonglobular Pfam domains in protein sequences designated as propeptides, some of which form intramolecular interactions with other domains in the mature proteins. Propeptide‐containing enzymes mostly function as proteases, as they are depleted in other enzyme classes such as hydrolases acting on DNA and RNA, isomerases, and lyases. We applied AlphaFold to generate structural models for over 7000 proteins with propeptides having no less than 20 residues. Analysis of residue contacts in these models revealed conformational changes for over 300 proteins before and after the cleavage of the propeptide. Examples of conformation change occur in several classes of proteolytic enzymes in the families of subtilisins, trypsins, aspartyl proteases, and thermolysin‐like metalloproteases. In most of the observed cases, cleavage of the propeptide releases the constraints imposed by the covalent bond between the propeptide and the mature protein, and cleavage enables stronger interactions between the propeptide and the mature protein. These findings suggest that post‐cleavage propeptides could play critical roles in regulating the activity of mature proteins.

Funder

Welch Foundation

Publisher

Wiley

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