P2X7 in Cancer: From Molecular Mechanisms to Therapeutics
Romain Lara1, Elena Adinolfi2, Catherine A Harwood3
1Biosceptre (UK) Limited, Cambridge, United Kingdom.
Abstract:
P2X7 is a transmembrane receptor expressed in multiple cell types including neurons, dendritic cells, macrophages, monocytes, B and T cells where it can drive a wide range of physiological responses from pain transduction to immune response. Upon activation by its main ligand, extracellular ATP, P2X7 can form a nonselective channel for cations to enter the cell. Prolonged activation of P2X7, via high levels of extracellular ATP over an extended time period can lead to the formation of a macropore, leading to depolarization of the plasma membrane and ultimately to cell death. Thus, dependent on its activation state, P2X7 can either drive cell survival and proliferation, or induce cell death. In cancer, P2X7 has been shown to have a broad range of functions, including playing key roles in the development and spread of tumor cells. It is therefore unsurprising that P2X7 has been reported to be upregulated in several malignancies. Critically, ATP is present at high extracellular concentrations in the tumor microenvironment (TME) compared to levels observed in normal tissues. These high levels of ATP should present a survival challenge for cancer cells, potentially leading to constitutive receptor activation, prolonged macropore formation and ultimately to cell death. Therefore, to deliver the proven advantages for P2X7 in driving tumor survival and metastatic potential, the P2X7 macropore must be tightly controlled while retaining other functions. Studies have shown that commonly expressed P2X7 splice variants, distinct SNPs and post-translational receptor modifications can impair the capacity of P2X7 to open the macropore. These receptor modifications and potentially others may ultimately protect cancer cells from the negative consequences associated with constitutive activation of P2X7. Significantly, the effects of both P2X7 agonists and antagonists in preclinical tumor models of cancer demonstrate the potential for agents modifying P2X7 function, to provide innovative cancer therapies. This review summarizes recent advances in understanding of the structure and functions of P2X7 and how these impact P2X7 roles in cancer progression. We also review potential therapeutic approaches directed against P2X7.
Insights
The P2X7 receptor plays a dual role in cancer, promoting tumor growth and spread. Modifications to P2X7 can protect cancer cells from death, offering potential therapeutic targets.
Area of Science:
- Immunology
- Cell Biology
- Oncology
Background:
- P2X7 receptor (P2X7) is a transmembrane receptor involved in pain and immune responses.
- Extracellular ATP activates P2X7, leading to cation influx and, upon prolonged activation, macropore formation and cell death.
- P2X7 is upregulated in many cancers and plays a role in tumor development and metastasis.
Purpose of the Study:
- To review recent advances in understanding P2X7 structure and function in cancer progression.
- To explore how P2X7 modifications impact its role in cancer.
- To summarize potential therapeutic strategies targeting P2X7 in cancer therapy.
Main Methods:
- Literature review of P2X7 receptor function in cancer.
- Analysis of P2X7 splice variants, SNPs, and post-translational modifications.
- Examination of preclinical cancer models using P2X7 agonists and antagonists.
Main Results:
- P2X7 activation can promote cancer cell survival and metastasis.
- High ATP levels in the tumor microenvironment can paradoxically challenge cancer cell survival via P2X7.
- Receptor modifications (splice variants, SNPs, PTMs) can impair P2X7 macropore formation, protecting cancer cells.
- P2X7 agonists and antagonists show promise in preclinical cancer models.
Conclusions:
- P2X7 has complex roles in cancer, promoting progression but also presenting a vulnerability.
- Targeting P2X7 function, particularly macropore formation, offers a potential therapeutic avenue.
- Further research into P2X7 regulation and targeted therapies is warranted for innovative cancer treatment.
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