Inhibiting the Keap1/Nrf2 Protein‐Protein Interaction with Protein‐Like Polymers

Author:

Carrow Kendal P.1ORCID,Hamilton Haylee L.2ORCID,Hopps Madeline P.3ORCID,Li Yang4ORCID,Qiao Baofu5ORCID,Payne N. Connor67ORCID,Thompson Matthew P.3ORCID,Zhang Xiaoyu3ORCID,Magassa Assa3ORCID,Fattah Mara3ORCID,Agarwal Shivangi8ORCID,Vincent Michael P.8ORCID,Buyanova Marina8ORCID,Bertin Paul A.8ORCID,Mazitschek Ralph6910ORCID,Olvera de la Cruz Monica11ORCID,Johnson Delinda A.2ORCID,Johnson Jeffrey A.2ORCID,Gianneschi Nathan C.12ORCID

Affiliation:

1. Department of Biomedical Engineering McCormick School of Engineering Medical Scientist Training Program Feinberg School of Medicine International Institute for Nanotechnology Northwestern University Evanston 60208 IL USA

2. School of Pharmacy University of Wisconsin Madison 57305 WI USA

3. International Institute for Nanotechnology Department of Chemistry Chemistry of Life Processes Institute Northwestern University Evanston 60208 IL USA

4. Department of Chemical and Biological Engineering McCormick School of Engineering, Northwestern University Evanston 60208 IL USA

5. Department of Natural Sciences Baruch College City University of New York New York 10010 NY USA

6. Center for Systems Biology Massachusetts General Hospital Harvard Medical School Boston MA USA

7. Department of Chemistry & Chemical Biology Harvard University Cambridge 02138 MA USA

8. Grove Biopharma Inc 1375 W. Fulton St., Ste. 650 Chicago 60558 IL USA

9. Broad Institute of MIT and Harvard Cambridge 02142 MA USA

10. Harvard T.H. Chan School of Public Health Boston 02115 MA USA

11. Department of Materials Science & Engineering Robert R. McCormick School of Engineering and Applied Science Center for Computation and Theory of Soft Materials Northwestern University Evanston 60208 IL USA

12. Departments of Chemistry Materials Science & Engineering Biomedical Engineering Pharmacology Simpson Querrey Institute Chemistry of Life Processes Institute Lurie Cancer Center International Institute for Nanotechnology Northwestern University Evanston 60208 IL USA

Abstract

AbstractSuccessful and selective inhibition of the cytosolic protein‐protein interaction (PPI) between nuclear factor erythroid 2‐related factor 2 (Nrf2) and Kelch‐like ECH‐associating protein 1 (Keap1) can enhance the antioxidant response, with the potential for a therapeutic effect in a range of settings including in neurodegenerative disease (ND). Small molecule inhibitors have been developed, yet many have off‐target effects, or are otherwise limited by poor cellular permeability. Peptide‐based strategies have also been attempted to enhance specificity, yet face challenges due to susceptibility to degradation and lack of cellular penetration. Herein, these barriers are overcome utilizing a polymer‐based proteomimetics. The protein‐like polymer (PLP) consists of a synthetic, lipophilic polymer backbone displaying water soluble Keap1‐binding peptides on each monomer unit forming a brush polymer architecture. The PLPs are capable of engaging Keap1 and displacing the cellular protective transcription factor Nrf2, which then translocates to the nucleus, activating the antioxidant response element (ARE). PLPs exhibit increased Keap1 binding affinity by several orders of magnitude compared to free peptides, maintain serum stability, are cell‐penetrant, and selectively activate the ARE pathway in cells, including in primary cortical neuronal cultures. Keap1/Nrf2‐inhibitory PLPs have the potential to impact the treatment of disease states associated with dysregulation of oxidative stress, such as NDs.

Funder

Damon Runyon Cancer Research Foundation

National Institutes of Health

National Institute on Aging

National Science Foundation

National Cancer Institute

International Institute for Nanotechnology, Northwestern University

Publisher

Wiley

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