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Original Research

Cepharanthine hydrochloride induces mitophagy targeting GPR30 in hepatocellular carcinoma (HCC)

ORCID Icon, , , , , & show all
Pages 389-402
Received 03 Dec 2019
Accepted 27 Feb 2020
Accepted author version posted online: 27 Feb 2020
Published online: 14 Mar 2020
 

ABSTRACT

Objectives: Cepharanthine exhibits a wide range of therapeutic effects against numerous cancers by virtue of its pleiotropic mechanisms. However, cepharanthine monotherapy has insufficient drug efficacy for cancers in animal models and clinical trials. The mechanism of its limited efficacy is unknown.

Methods: We investigated the possible mechanism for the limited drug efficacy of cepharanthine in cancer therapy using both hepatocellular carcinoma (HCC) primary cells and cell lines, in vitro and in mouse xenograft models.

Results: We found that cepharanthine hydrochloride (CH), a semi-synthetic derivative of cepharanthine, induced mitophagy independent of mTOR signaling, and played an AMPK-dependent protective role in the cell fate of HCC in vitro and in vivo. Mechanistically, we demonstrated that CH may bind to GPR30 receptor to activate the subsequent signal cascade involving mitochondrial fission, thus facilitating mitophagy. Therefore, we proposed a new therapeutic regimen for HCC involving CH combined with an autophagy inhibitor. This regimen exhibited remarkable anti-cancer effects in HCC xenograft mouse model.

Conclusion: These results identify CH as a new mitophagy inducer targeting GPR30 receptor. The combination therapy of CH and an autophagy inhibitor may become a novel strategy for enhancing the anti-tumor potential of cepharanthine in HCC.

Authors’ Contributions

YW and YFW designed the experiments; YW, GFS and ZXH conducted the experiments; YW and GFS analyzed and interpreted the data; YW drafted the manuscript; ZGW collected the clinical information and tumor samples from the patients, and performed the culture of primary tumor cells; GFS and PJZ conducted the animal studies; YFW and JLF reviewed the manuscript. All authors read and approved the final manuscript.

Declaration of Interest

The authors have no relevant affiliations or financial involvement with any organization or entity with a financial interest in or financial conflict with the subject matter or materials discussed in the manuscript. This includes employment, consultancies, honoraria, stock ownership or options, expert testimony, grants or patents received or pending, or royalties.

Reviewer Disclosures

Peer reviewers on this manuscript have no relevant financial or other relationships to disclose

Supplemental Material

Supplemental data for this article can be accessed here.

Additional information

Funding

This work was supported by the Natural Science Foundation of Guangdong Province [grant number 2018030310401]; Postdoctoral Research Foundation of China [grant number 2017M622922]; the National Natural Science Foundation of China [grant numbers 81573471, 81872908]; the Public Service Platform of South China Sea for R&D Marine Biomedicine Resources, Marine Biomedical Research Institute, Guangdong Medical University, Zhanjiang, China; and the Guangzhou Major program of the Industry-University-Research collaborative innovation [grant number 201604046028].

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