UK Dementia Research Institute, Department of Brain Sciences, Imperial College London, Hammersmith Hospital Campus, Du Cane Road, London, W12 0NN, UK.
Department of Pharmacology, University of Oxford, Oxford, OX1 3QT, UK.
Cell Calcium. 2021 Mar;94:102358. doi: 10.1016/j.ceca.2021.102358. Epub 2021 Jan 23.
Aging is a complex process that differentially impacts multiple cognitive, sensory, neuronal and molecular processes. Technological innovations now allow for parallel investigation of neuronal circuit function, structure and molecular composition in the brain of awake behaving adult mice. Thus, mice have become a critical tool to better understand how aging impacts the brain. However, a more granular systems-based approach, which considers the impact of age on key features relating to neural processing, is required. Here, we review evidence probing the impact of age on the mouse brain. We focus on a range of processes relating to neuronal function, including cognitive abilities, sensory systems, synaptic plasticity and calcium regulation. Across many systems, we find evidence for prominent age-related dysregulation even before 12 months of age, suggesting that emerging age-related alterations can manifest by late adulthood. However, we also find reports suggesting that some processes are remarkably resilient to aging. The evidence suggests that aging does not drive a parallel, linear dysregulation of all systems, but instead impacts some processes earlier, and more severely, than others. We propose that capturing the more fine-scale emerging features of age-related vulnerability and resilience may provide better opportunities for the rejuvenation of the aged brain.
衰老是一个复杂的过程,它会对多种认知、感官、神经元和分子过程产生不同的影响。现在的技术创新使得我们能够在清醒活动的成年小鼠的大脑中同时研究神经元回路的功能、结构和分子组成。因此,小鼠已成为更好地理解衰老如何影响大脑的重要工具。然而,需要一种更细粒度的基于系统的方法,该方法考虑了年龄对与神经处理相关的关键特征的影响。在这里,我们回顾了探究年龄对小鼠大脑影响的证据。我们重点关注与神经元功能相关的一系列过程,包括认知能力、感觉系统、突触可塑性和钙调节。在许多系统中,我们发现即使在 12 个月之前,就有明显的与年龄相关的失调证据,这表明新出现的与年龄相关的改变可能会在晚年表现出来。然而,我们也发现有报道表明,一些过程对衰老具有很强的弹性。这些证据表明,衰老不会导致所有系统的平行、线性失调,而是会更早、更严重地影响某些过程。我们提出,捕捉与年龄相关的脆弱性和弹性的更精细的新兴特征,可能为衰老大脑的年轻化提供更好的机会。