Sertorio Mathieu, Perentesis John P, Vatner Ralph E, Mascia Anthony E, Zheng Yi, Wells Susanne I
Cancer and Blood Diseases Institute, Cincinnati Children's Hospital, Cincinnati, OH, USA.
Division of Immunobiology, Cincinnati Children's Hospital, OH, USA.
Int J Part Ther. 2018 Summer;5(1):40-48. doi: 10.14338/IJPT-18-00023.1. Epub 2018 Sep 21.
Advances in radiation delivery technologies and immunotherapy have improved effective cancer treatments and long-term outcomes. Experimental and clinical trials have demonstrated the benefit of a combination of radiation therapy and immunotherapy for tumor eradication. Despite precise radiation dose delivery that is achievable by particle therapy and benefits from reactivating the antitumor immune response, resistance to both therapeutic strategies is frequently observed in patients. Understanding the biological origins of such resistance will create new opportunities for improved cancer treatment. Cancer metabolism and especially a high rate of aerobic glycolysis leading to overproduction and release of lactate is one such biological process favoring tumor progression and treatment resistance. Because of their known protumor effects, aerobic glycolysis and lactate production are potential targets for increased efficacy of radiation alone or in combination with immunotherapy. In the following review, we present an overview of the interplay of cancer cell lactate metabolism with the tumor microenvironment and immune cells. We discuss how a deeper understanding and careful modulation of lactate metabolism and radiation therapy might exploit this interplay for improved therapeutic outcome.
放射治疗技术和免疫疗法的进展改善了癌症的有效治疗和长期疗效。实验和临床试验已经证明了放射治疗和免疫疗法联合使用对根除肿瘤的益处。尽管粒子疗法能够实现精确的放射剂量传递,并能从重新激活抗肿瘤免疫反应中获益,但患者对这两种治疗策略的耐药性却屡见不鲜。了解这种耐药性的生物学根源将为改善癌症治疗创造新的机会。癌症代谢,尤其是有氧糖酵解速率过高导致乳酸过度产生和释放,是促进肿瘤进展和治疗耐药性的一个生物学过程。由于有氧糖酵解和乳酸生成具有已知的促肿瘤作用,它们是提高单独放射治疗或与免疫疗法联合治疗疗效的潜在靶点。在下面的综述中,我们概述了癌细胞乳酸代谢与肿瘤微环境和免疫细胞之间的相互作用。我们讨论了如何通过更深入地理解和谨慎调节乳酸代谢及放射治疗,来利用这种相互作用改善治疗效果。