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Biology subjects

Okada, B. K.

Publications and source records attributed to Okada, B. K..

2 recordsLinked to original sources

Overcoming Immune Checkpoint Inhibitor Resistance via Potent and Selective Dual αvβ6/8 Inhibitors Based on Engineered Lasso Peptides

Integrins v{beta}6 and v{beta}8 in the tumor microenvironment (TME) have been shown to activate immunosuppressive TGF-{beta}, which serves as an important mechanism for immune checkpoint inhibitor resistance in a range of tumors. In this study, we demonstrate the utility of lasso peptides as versatile scaffolds for designing new therapeutics. A series of highly potent and selective dual v{beta}6/8 inhibitors were engineered through a combination of epitope scanning, computational design, and directed evolution. Several analogs, such as lassotides 36 and 47, were fully characterized and physicochemical, in vitro pharmacological, and in vivo data are reported. Lassotide 47, a half-life extended derivative of 36, was shown to strongly sensitize anti-mPD-1-resistant tumors in mice when dosed in combination with the checkpoint inhibitor. The 47/anti-mPD-1 combination was shown to halt tumor growth and regress tumors in mouse models of triple negative breast and ovarian cancers. Dual inhibition of v{beta}6/8 integrins expressed in the TME thus represents a promising tumor-specific strategy to overcome TGF-{beta}-driven resistance and enhance the anti-tumor efficacy of immune checkpoint inhibitors.

cancer biology↗

Structure of a lasso peptide bound ETB receptor provides insights into the mechanism of GPCR inverse agonism

Lasso peptides exhibit a unique lariat-like knotted structure imparting exceptional stability and thus show promise as therapeutic agents that target cell-surface receptors. One such receptor is the human endothelin ETB receptor, which is implicated in challenging cancers with poor immunotherapy responsiveness. The Streptomyces-derived lasso peptide, RES-701-3, is a selective inhibitor for ETB and a compelling candidate for therapeutic development. However, meager production from a genetically recalcitrant host has limited further structure-activity relationship studies of this potent inhibitor. Here, we report cryo-electron microscopy structures of ETB receptor in both its apo form and complex with RES-701-3, facilitated by a calcineurin-fusion strategy. Hydrophobic interactions between RES-701-3 and the transmembrane region of the receptor, especially involving two tryptophan residues, play a crucial role in RES-701-3 binding. Furthermore, RES-701-3 prevents conformational changes associated with G-protein coupling, explaining its inverse agonist activity. A comparative analysis with other lasso peptides and their target proteins highlights the potential of lasso peptides as precise drug candidates for G-protein-coupled receptors. This structural insight into RES-701-3 binding to ETB receptor offers valuable information for the development of novel therapeutics targeting this receptor and provides a broader understanding of lasso peptide interactions with human cell-surface receptors.

biochemistry↗