Melanoma continues to be the most aggressive and devastating form of skin cancer for which the development of novel therapies is required. The present study aimed to determine the effects of antagonism of the transient receptor potential melastatin‑2 (TRPM2) ion channel in primary human malignant melanoma cells. TRPM2 antagonism via use of the antifungal agent, clotrimazole, led to decreases in cell proliferation, as well as dose‑dependent increases in cell death in all melanoma cell lines investigated. The targeting of TRPM2 channels was verified using TRPM2 knockdown, where treatment with TRPM2 small‑interfering RNA led to similar levels of cell death in all melanoma cell lines when compared with clotrimazole treatment. Minimal effects on proliferation and cell death were observed following antagonism or knockdown of TRPM2 in non‑cancerous human keratinocytes. Moreover, characteristics of TRPM2 were explored in these melanoma cells and the results demonstrated that TRPM2, localized to the plasma membrane as a non‑specific ion channel in non‑cancerous cells, displayed a nuclear localization in all human melanoma cell lines analyzed. Additional characterization of these melanoma cell lines confirmed that each expressed one or more established multidrug resistance genes. Results of the present study therefore indicated that antagonism of the TRPM2 channel led to antitumor effects in human melanoma cells, including those that are potentially unresponsive to current treatments due to the expression of drug resistance genes. The unique cellular localization of TRPM2 and the specificity of the antitumor effects elicited by TRPM2 antagonism suggested that TRPM2 possesses a unique role in melanoma cells. Collectively, the targeting of TRPM2 represents a potentially novel, efficacious and readily accessible treatment option for patients with melanoma.
Abstract The transient receptor potential melastatin-2 (TRPM2) cation channel was previously identified as a potential target in various cancers, where its pharmacologic inhibition caused increased DNA damage and the selective eradication of cancer cells. In this study, we utilized several human primary metastatic melanoma cell lines, in which we analyzed TRPM2 and its isoforms, and evaluated the ability of TRPM2 inhibition to modulate cell death. As TRPM2 is known to exist as a plasma membrane cation channel in noncancerous cells, we investigated the localization of TRPM2 in melanoma cells. In three lines of primary human metastatic melanoma cells, TRPM2 was localized in the nucleus, as compared to an extra-nuclear localization in noncancerous primary epidermal keratinocyes. Because TRPM2 exists in several isoforms in cancer cells, we investigated the cellular localization of these isoforms. Subcellular fractionations demonstrated that only full-length TRPM2 was localized to the nucleus in primary human metastatic melanoma cells, whereas two smaller isoforms were localized exclusively in the cytoplasmic fraction. Treatment with the TRPM2 inhibitor, clotrimazole, caused decreased proliferation in all three lines of primary human metastatic melanoma cells. Further, treatment with the DNA alkylating agent, temozolomide (TMZ), led to increased levels of cell death in melanoma cells pretreated with clotrimazole, but not in noncancerous primary epidermal keratinocyes after pretreatment. Similar increases in cell death were observed after RNAi silencing of TRPM2 followed by TMZ treatment. Taken together, this study demonstrated that TRPM2 inhibition selectively increases cell death in primary human metastatic melanoma cells. Further, the data suggests that, similar to our previous results in breast adenocarcinoma cells, full-length TRPM2 appears to have a novel role in melanoma cell growth and survival. The results therefore suggest that TRPM2 is a potential target in melanoma, where its inhibition may cause the selective eradication of metastatic melanoma. Citation Format: David W. Koh, Steven D. Blake, Daniel P. Powell. Enhanced cytotoxicity in primary human metastatic melanoma cells via inhibition of the transient receptor potential melastatin-2 (TRPM2) channel. [abstract]. In: Proceedings of the 107th Annual Meeting of the American Association for Cancer Research; 2016 Apr 16-20; New Orleans, LA. Philadelphia (PA): AACR; Cancer Res 2016;76(14 Suppl):Abstract nr 1269.
We previously demonstrated a unique protective role for the transient receptor potential, melastatin-2 (TRPM2) cation channel in breast cancer cells. In the present study, we investigated the chemotherapeutic effects elicited by inhibiting this protective role in metastatic breast adenocarcinoma cells. TRPM2 inhibition led to dose-dependent increases in MDA-MB-231 breast adenocarcinoma cell death after treatment with doxorubicin or the DNA-methylating agent, N-methyl-N'-nitro-N-nitrosoguanidine. Similar results were observed after RNAi silencing of TRPM2 in these cells after doxorubicin treatment. However, TRPM2 RNAi silencing also led to increased MCF-7 breast adenocarcinoma cell death after tamoxifen treatment, yet not in non-cancerous human mammary epithelial cells. These results thus revealed that TRPM2 inhibition selectively increased cytotoxicity in a triple-negative and an estrogen receptor-positive breast cancer cell line, with minimal deleterious effects in non-cancerous breast cells. Analysis of DNA damage revealed enhanced DNA damage levels in MCF-7 cells treated with doxorubicin due to TRPM2 inhibition. Analysis of cell death demonstrated that inhibition of apoptosis, caspase-independent cell death or autophagy failed to significantly reduce cell death induced by TRPM2 inhibition and chemotherapy. These results indicate that TRPM2 inhibition activates alternative pathways of cell death in breast cancer cells. Taken together, our results provide significant evidence that TRPM2 inhibition is a potential strategy to induce triple-negative and estrogen receptor-positive breast adenocarcinoma cell death via alternative cell death pathways. This is expected to provide a basis for inhibiting TRPM2 for the improved treatment of breast cancer, which potentially includes treating breast tumors that are resistant to chemotherapy due to their evasion of apoptosis.
Abstract Transient receptor potential melastatin-2 (TRPM2) is a plasma membrane cation channel with important physiologic roles in noncancerous cells. However, in MCF-7 and MDA-MB-231 human breast adenocarcinoma cells, we previously demonstrated that TRPM2 was present in the nucleus, and pharmacologic inhibition or RNAi silencing of TRPM2 led to decreased proliferation. In this study, we evaluated the ability of TRPM2 inhibition to produce cell death in normal breast epithelial cells and breast adenocarcinoma cells. Further, we analyzed the cell death pathways induced. Treatment with the DNA alkylating agent, N-methyl-N’-nitro-N-nitrosoguanidine (MNNG), or doxorubicin (Dox) led to increased levels of cell death in MDA-MB-231 breast adenocarcinoma cells pretreated with TRPM2 inhibitors, but not in noncancerous mammary epithelial cells after pretreatment. Similar increases in cell death were observed after RNAi silencing of TRPM2 in both MDA-MB-231 and MCF-7 breast adenocarcinoma cells after Dox or tamoxifen treatment, respectively. Investigation of apoptosis after TRPM2 inhibition demonstrated decreased levels of caspase activity and no significant effect of Q-VD-OPh, a pan-caspase inhibitor, on cell death induced by TRPM2 inhibition. Further, pretreatment with 3-methyl adenine, an inhibitor of autophagy, also produced no significant effect on cell death induced by TRPM2 inhibition. These studies indicate that apoptosis or autophagy are not the primary cell death pathways induced by TRPM2 inhibition in breast cancer cells. Also, RNAi silencing of poly(ADP-ribose) glycohydrolase (PARG) and apoptosis-inducing factor (AIF), two proteins involved in initiating or facilitating alternative pathways of cell death, produced minimal changes in cell death induced by TRPM2 inhibition. Taken together, this study demonstrated that TRPM2 inhibition selectively increases cell death in breast adenocarcinoma cells. Further, the data suggests that apoptosis, autophagy, and PARG/AIF-mediated cell death are not the primarily cell death pathways involved in the cytotoxicity caused by TRPM2 inhibition. The results therefore suggest that TRPM2 is a potential target in breast cancer, where its inhibition may cause the selective eradication of breast adenocarcinoma cells. Citation Format: David W. Koh, Daniel P. Powell, Steven D. Blake, Joy L. Hoffman, Xiaoxing Feng. Selective induction of breast adenocarcinoma cell death via inhibition of the transient receptor potential melastatin-2 (TRPM2) cation channel. [abstract]. In: Proceedings of the 106th Annual Meeting of the American Association for Cancer Research; 2015 Apr 18-22; Philadelphia, PA. Philadelphia (PA): AACR; Cancer Res 2015;75(15 Suppl):Abstract nr 1717. doi:10.1158/1538-7445.AM2015-1717