School of Health and Medical Sciences, University of Southern Queensland, Toowoomba, Queensland, Australia.
Centre for Health Research, Institute for Resilient Regions, Toowoomba, Queensland, Australia.
Aging Cell. 2023 Jun;22(6):e13836. doi: 10.1111/acel.13836. Epub 2023 Apr 11.
Telomerase preserves genomic integrity by maintaining and protecting the telomeres. Seminal findings from 1985 revealed the canonical role of telomerase and motivated investigations into potential therapeutic strategies to combat one of the hallmarks of ageing-telomere attrition. Since then, the field of telomere biology has rapidly expanded, with telomerase serving essential roles in cancer and cell development through its canonical function. However, telomerase also exerts critical extra-telomeric functions through its protein (telomerase reverse transcriptase, TERT) and RNA components (telomerase RNA component, TERC). Telomerase re-activation or ectopic expression promotes survival and permits unlimited proliferation in tumours and healthy non-malignant cells. TERT gene therapies improve health and lifespan in ageing mice and mouse models of age-related diseases. The extra-telomeric functions of telomerase are critical to ageing. These include protection against oxidative stress, orchestration of chromatin modifications and transcription, and regulation of angiogenesis and metabolism (e.g. mitochondrial function and glucose control). Given these biological functions are key adaptations to endurance training and the recent meta-analytical findings that indicate exercise up-regulates TERT and telomerase, a comprehensive discussion on the implications of the canonical and extra-telomeric roles of telomerase is warranted. This review highlights the therapeutic benefits of telomerase-based treatments for idiopathic and chronic diseases that are linked to ageing. Discussion on the canonical and extra-telomeric roles of telomerase are presented, followed by a detailed summary of the evidence on how exercise influences telomerase. Finally, the potential cell signalling underpinning the exercise-induced modulation of telomerase are discussed with directions for future research.
端粒酶通过维持和保护端粒来保持基因组的完整性。1985 年的开创性发现揭示了端粒酶的典型作用,并激发了人们研究潜在的治疗策略,以对抗衰老的一个标志——端粒磨损。从那时起,端粒生物学领域迅速发展,端粒酶通过其典型功能在癌症和细胞发育中发挥着重要作用。然而,端粒酶通过其蛋白(端粒酶逆转录酶,TERT)和 RNA 成分(端粒酶 RNA 成分,TERC)还发挥着关键的非端粒功能。端粒酶的重新激活或异位表达促进了肿瘤和健康非恶性细胞的存活和无限增殖。TERT 基因疗法改善了衰老小鼠和与年龄相关疾病的小鼠模型的健康和寿命。端粒酶的非端粒功能对衰老至关重要。这些功能包括对抗氧化应激、协调染色质修饰和转录,以及调节血管生成和代谢(例如线粒体功能和葡萄糖控制)。鉴于这些生物学功能是对耐力训练的关键适应,以及最近的荟萃分析结果表明运动上调了 TERT 和端粒酶,因此有必要全面讨论端粒酶的典型和非端粒功能的影响。这篇综述强调了基于端粒酶的治疗方法对与衰老相关的特发性和慢性疾病的治疗益处。讨论了端粒酶的典型和非端粒作用,随后详细总结了运动影响端粒酶的证据。最后,讨论了运动诱导端粒酶调节的潜在细胞信号,为未来的研究指明了方向。