Enhancing the Conformational Stability of the cl-Par-4 Tumor Suppressor via Site-Directed Mutagenesis

Author:

Pandey Samjhana1,Raut Krishna K.2,Clark Andrea M.2,Baudin Antoine34ORCID,Djemri Lamya2,Libich David S.34ORCID,Ponniah Komala2,Pascal Steven M.2

Affiliation:

1. Biomedical Sciences Program, Old Dominion University, Norfolk, VA 23529, USA

2. Department of Chemistry and Biochemistry, Old Dominion University, Norfolk, VA 23529, USA

3. Greehey Children’s Cancer Research Institute, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA

4. Department of Biochemistry and Structural Biology, University of Texas Health Science Center at San Antonio, San Antonio, TX 78229, USA

Abstract

Intrinsically disordered proteins play important roles in cell signaling, and dysregulation of these proteins is associated with several diseases. Prostate apoptosis response-4 (Par-4), an approximately 40 kilodalton proapoptotic tumor suppressor, is a predominantly intrinsically disordered protein whose downregulation has been observed in various cancers. The caspase-cleaved fragment of Par-4 (cl-Par-4) is active and plays a role in tumor suppression by inhibiting cell survival pathways. Here, we employed site-directed mutagenesis to create a cl-Par-4 point mutant (D313K). The expressed and purified D313K protein was characterized using biophysical techniques, and the results were compared to that of the wild-type (WT). We have previously demonstrated that WT cl-Par-4 attains a stable, compact, and helical conformation in the presence of a high level of salt at physiological pH. Here, we show that the D313K protein attains a similar conformation as the WT in the presence of salt, but at an approximately two times lower salt concentration. This establishes that the substitution of a basic residue for an acidic residue at position 313 alleviates inter-helical charge repulsion between dimer partners and helps to stabilize the structural conformation.

Funder

Old Dominion University Department of Chemistry and Biochemistry

NIH

St. Baldrick’s Foundation

Office of the Vice President for Research and the Mays Cancer Center Drug Discovery and Structural Biology Shared Resource

Publisher

MDPI AG

Subject

Molecular Biology,Biochemistry

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