Integrative analysis reveals therapeutic potential of pyrvinium pamoate in Merkel cell carcinoma

Author:

Yang JiawenORCID,Lim James T,Victor Paul,Chen Chen,Khwaja Hunain,Schnellmann Rick G,Roe Denise J,Gokhale Prafulla C,DeCaprio James AORCID,Padi Megha

Abstract

AbstractMerkel Cell Carcinoma (MCC) is a highly aggressive neuroendocrine cutaneous malignancy arising from either ultraviolet-induced mutagenesis or Merkel cell polyomavirus (MCPyV) integration. It is the only known neuroendocrine tumor (NET) with a virus etiology. Despite extensive research, our understanding of the molecular mechanisms driving the transition from normal cells to MCC remains limited. To address this knowledge gap, we assessed the impact of inducible MCPyV T antigens into normal human fibroblasts by performing RNA sequencing. Our findings suggested that the WNT signaling pathway plays a critical role in the development of MCC. To test this model, we bioinformatically evaluated various perturbagens for their ability to reverse the MCC gene expression signature and identified pyrvinium pamoate, an FDA-approved anthelminthic drug known for its anti-tumor potential in multiple cancers. Leveraging transcriptomic, network, and molecular analyses, we found that pyrvinium effectively targets multiple MCC vulnerabilities. Specifically, pyrvinium not only reverses the neuroendocrine features of MCC by modulating canonical and non-canonical WNT signaling pathways but also inhibits cancer cell growth by activating the p53-mediated apoptosis pathway, disrupting mitochondrial function, and inducing endoplasmic reticulum (ER) stress. Pyrvinium also effectively inhibits tumor growth in an MCC mouse xenograft model. These findings offer new avenues for the development of therapeutic strategies for neuroendocrine cancer and highlight the utility of pyrvinium as a potential treatment for MCC.SignificanceOur study sheds light on the role of the WNT signaling pathway in MCC transformation and characterizes pyrvinium pamoate as a potent anti-tumor reagent that targets multiple vulnerabilities of MCC.

Publisher

Cold Spring Harbor Laboratory

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