Deciphering the Mechanistic Basis for Perfluoroalkyl‐Protein Interactions

Author:

Lawanprasert Atip1,Sloand Janna N.1,González Vargas Mariangely12,Singh Harminder1,Eldor Tomer1,Miller Michael A.1,Pimcharoen Sopida1,Wang Jian3,Leighow Scott M.1,Pritchard Justin R.14,Dokholyan Nikolay V.1354,Medina Scott H.14ORCID

Affiliation:

1. Department of Biomedical Engineering Pennsylvania State University Suite 122 Chemical and Biomedical Engineering Building University Park PA 16802 USA

2. Department of Industrial Engineering University of Puerto Rico Mayagüez 00682 Puerto Rico

3. Department of Pharmacology Penn State College of Medicine Pennsylvania State University Hershey PA 17033 USA

4. Huck Institutes of the Life Sciences Pennsylvania State University University Park PA 16802 USA

5. Department of Biochemistry and Molecular Biology Pennsylvania State University Hershey PA 17033 USA

Abstract

AbstractAlthough rarely used in nature, fluorine has emerged as an important elemental ingredient in the design of proteins with altered folding, stability, oligomerization propensities, and bioactivity. Adding to the molecular modification toolbox, here we report the ability of privileged perfluorinated amphiphiles to noncovalently decorate proteins to alter their conformational plasticity and potentiate their dispersion into fluorous phases. Employing a complementary suite of biophysical, in‐silico and in‐vitro approaches, we establish structure‐activity relationships defining these phenomena and investigate their impact on protein structural dynamics and intracellular trafficking. Notably, we show that the lead compound, perfluorononanoic acid, is 106 times more potent in inducing non‐native protein secondary structure in select proteins than is the well‐known helix inducer trifluoroethanol, and also significantly enhances the cellular uptake of complexed proteins. These findings could advance the rational design of fluorinated proteins, inform on potential modes of toxicity for perfluoroalkyl substances, and guide the development of fluorine‐modified biologics with desirable functional properties for drug discovery and delivery applications.

Funder

National Institutes of Health

Division of Materials Research

Defense Sciences Office, DARPA

Publisher

Wiley

Subject

Organic Chemistry,Molecular Biology,Molecular Medicine,Biochemistry

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