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Family-Wide Photoproximity Profiling of Integrin Protein Social Networks in Cancer

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Journal bioRxiv
Date 2024 Sep 30
PMID 39345550
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Abstract

Integrin family transmembrane receptors mediate dynamic interactions between cells and their extracellular microenvironment. The heterogeneous interaction partners of integrins directly regulate cell adhesion, motility, proliferation, and intracellular signaling. Despite the recognized importance of protein-protein interactions and the formation of signaling hubs around integrins, the ability to detect and quantify these dynamic binding partners with high spatial and temporal resolution remains challenging. Here, we developed an integrin-family-directed quantitative photoproximity protein interaction (PhotoPPI) profiling method to detect and quantify native integrin-centered protein social networks on live cells and tissues without the need for genetic manipulation, antibodies, or non-physiologic cell culture conditions. We drafted quantitative maps of integrin-centered protein social networks, highlighting conserved and unique binding partners between different cell types and cellular microenvironments. Comparison of integrin social networks in cancer cell lines of diverse tissue of origin and disease state identified specific AND-gate binding partners involved cell migration, microenvironmental interactions and proliferation that serve as markers of tumor cell metastatic state. Finally, we identified unique combinations - or barcodes - of integrin-proximal proteins on the surface of pre- and post-metastatic triple negative breast cancer (TNBC) cells whose expression strongly correlate with both positive and negative disease progression and outcomes in TNBC patients. Taken together, these data provide the first family-wide high-resolution maps of native protein interactors on live cells and identify dynamic integrin-centered social networks as potential AND-gate markers of cell identity, microenvironmental context and disease state.

References
1.
Giebeler N, Zigrino P . A Disintegrin and Metalloprotease (ADAM): Historical Overview of Their Functions. Toxins (Basel). 2016; 8(4):122. PMC: 4848645. DOI: 10.3390/toxins8040122. View

2.
Wang F, Li Y, Shen Y, Wang A, Wang S, Xie T . The functions and applications of RGD in tumor therapy and tissue engineering. Int J Mol Sci. 2013; 14(7):13447-62. PMC: 3742196. DOI: 10.3390/ijms140713447. View

3.
Seguin L, Desgrosellier J, Weis S, Cheresh D . Integrins and cancer: regulators of cancer stemness, metastasis, and drug resistance. Trends Cell Biol. 2015; 25(4):234-40. PMC: 4380531. DOI: 10.1016/j.tcb.2014.12.006. View

4.
Taherian A, Li X, Liu Y, Haas T . Differences in integrin expression and signaling within human breast cancer cells. BMC Cancer. 2011; 11:293. PMC: 3146943. DOI: 10.1186/1471-2407-11-293. View

5.
Pasquale E . Eph receptors and ephrins in cancer progression. Nat Rev Cancer. 2023; 24(1):5-27. PMC: 11015936. DOI: 10.1038/s41568-023-00634-x. View