Identification of small-molecule protein–protein interaction inhibitors for NKG2D

Author:

Thompson Aaron A.1ORCID,Harbut Michael B.2,Kung Pei-Pei1ORCID,Karpowich Nathan K.2,Branson Jeffrey D.2,Grant Joanna C.1,Hagan Deborah2,Pascual Heather A.1,Bai Guoyun1,Zavareh Reza Beheshti1ORCID,Coate Heather R.1,Collins Bernard C.1,Côte Marjorie1,Gelin Christine F.1,Damm-Ganamet Kelly L.1ORCID,Gholami Hadi1,Huff Adam R.2,Limon Luis1,Lumb Kevin J.2,Mak Puiying A.1,Nakafuku Kohki M.1ORCID,Price Edmund V.2,Shih Amy Y.1,Tootoonchi Mandana3,Vellore Nadeem A.1ORCID,Wang Jocelyn1,Wei Na1,Ziff Jeannie1ORCID,Berger Scott B.4,Edwards James P.1,Gardet Agnès3ORCID,Sun Siquan3,Towne Jennifer E.3,Venable Jennifer D.1,Shi Zhicai2,Venkatesan Hariharan1,Rives Marie-Laure1,Sharma Sujata2,Shireman Brock T.1,Allen Samantha J.2ORCID

Affiliation:

1. Therapeutics Discovery, Janssen Research & Development, San Diego, CA 92121

2. Therapeutics Discovery, Janssen Research & Development, Lower Gwynedd Township, PA 19002

3. Discovery Immunology, Janssen Research & Development, San Diego, CA 92121

4. Discovery Immunology, Janssen Research & Development, Lower Gwynedd Township, PA 19002

Abstract

NKG2D (natural-killer group 2, member D) is a homodimeric transmembrane receptor that plays an important role in NK, γδ + , and CD8 + T cell-mediated immune responses to environmental stressors such as viral or bacterial infections and oxidative stress. However, aberrant NKG2D signaling has also been associated with chronic inflammatory and autoimmune diseases, and as such NKG2D is thought to be an attractive target for immune intervention. Here, we describe a comprehensive small-molecule hit identification strategy and two distinct series of protein–protein interaction inhibitors of NKG2D. Although the hits are chemically distinct, they share a unique allosteric mechanism of disrupting ligand binding by accessing a cryptic pocket and causing the two monomers of the NKG2D dimer to open apart and twist relative to one another. Leveraging a suite of biochemical and cell-based assays coupled with structure-based drug design, we established tractable structure–activity relationships with one of the chemical series and successfully improved both the potency and physicochemical properties. Together, we demonstrate that it is possible, albeit challenging, to disrupt the interaction between NKG2D and multiple protein ligands with a single molecule through allosteric modulation of the NKG2D receptor dimer/ligand interface.

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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