College of Engineering, Mathematics and Physical Sciences, University of Exeter, Exeter, UK.
EPSRC Centre for Predictive Modelling in Healthcare, University of Exeter, Exeter, UK.
J Endocrinol. 2020 Aug;246(2):R33-R50. doi: 10.1530/JOE-20-0028.
In most species, survival relies on the hypothalamic control of endocrine axes that regulate critical functions such as reproduction, growth, and metabolism. For decades, the complexity and inaccessibility of the hypothalamic-pituitary axis has prevented researchers from elucidating the relationship between the activity of endocrine hypothalamic neurons and pituitary hormone secretion. Indeed, the study of central control of endocrine function has been largely dominated by 'traditional' techniques that consist of studying in vitro or ex vivo isolated cell types without taking into account the complexity of regulatory mechanisms at the level of the brain, pituitary and periphery. Nowadays, by exploiting modern neuronal transfection and imaging techniques, it is possible to study hypothalamic neuron activity in situ, in real time, and in conscious animals. Deep-brain imaging of calcium activity can be performed through gradient-index lenses that are chronically implanted and offer a 'window into the brain' to image multiple neurons at single-cell resolution. With this review, we aim to highlight deep-brain imaging techniques that enable the study of neuroendocrine neurons in awake animals whilst maintaining the integrity of regulatory loops between the brain, pituitary and peripheral glands. Furthermore, to assist researchers in setting up these techniques, we discuss the equipment required and include a practical step-by-step guide to performing these deep-brain imaging studies.
在大多数物种中,生存依赖于下丘脑对调节生殖、生长和代谢等关键功能的内分泌轴的控制。几十年来,下丘脑-垂体轴的复杂性和不可及性使得研究人员无法阐明内分泌下丘脑神经元的活动与垂体激素分泌之间的关系。事实上,内分泌功能的中枢控制研究在很大程度上受到“传统”技术的主导,这些技术包括研究体外或离体分离的细胞类型,而不考虑大脑、垂体和外周水平的调节机制的复杂性。如今,通过利用现代神经元转染和成像技术,可以在清醒动物体内实时原位研究下丘脑神经元的活动。通过慢性植入的梯度指数透镜可以进行钙活性的深部脑成像,为以单细胞分辨率对多个神经元进行成像提供了“窥视大脑的窗口”。通过这篇综述,我们旨在强调深部脑成像技术,这些技术能够在保持大脑、垂体和外周腺体之间的调节回路完整性的情况下,研究清醒动物中的神经内分泌神经元。此外,为了帮助研究人员设置这些技术,我们讨论了所需的设备,并包括执行这些深部脑成像研究的实用分步指南。