Marchetti Laura, Luin Stefano, Bonsignore Fulvio, de Nadai Teresa, Beltram Fabio, Cattaneo Antonino
National Enterprise for nanoScience and nanoTechnology (NEST) Laboratory, Scuola Normale Superiore and Istituto Nanoscienze-CNR, Piazza San Silvestro 12, Pisa I-56127, Italy.
Biology Laboratory (BioSNS), Scuola Normale Superiore and Istituto di Neuroscienze-CNR, via Moruzzi 1, Pisa I-56100, Italy.
Int J Mol Sci. 2015 Jan 16;16(1):1949-79. doi: 10.3390/ijms16011949.
Neurotrophins are secreted proteins that regulate neuronal development and survival, as well as maintenance and plasticity of the adult nervous system. The biological activity of neurotrophins stems from their binding to two membrane receptor types, the tropomyosin receptor kinase and the p75 neurotrophin receptors (NRs). The intracellular signalling cascades thereby activated have been extensively investigated. Nevertheless, a comprehensive description of the ligand-induced nanoscale details of NRs dynamics and interactions spanning from the initial lateral movements triggered at the plasma membrane to the internalization and transport processes is still missing. Recent advances in high spatio-temporal resolution imaging techniques have yielded new insight on the dynamics of NRs upon ligand binding. Here we discuss requirements, potential and practical implementation of these novel approaches for the study of neurotrophin trafficking and signalling, in the framework of current knowledge available also for other ligand-receptor systems. We shall especially highlight the correlation between the receptor dynamics activated by different neurotrophins and the respective signalling outcome, as recently revealed by single-molecule tracking of NRs in living neuronal cells.
神经营养因子是一类分泌蛋白,可调节神经元的发育与存活,以及成年神经系统的维持和可塑性。神经营养因子的生物学活性源于它们与两种膜受体类型的结合,即原肌球蛋白受体激酶和p75神经营养因子受体(NRs)。由此激活的细胞内信号级联反应已得到广泛研究。然而,对于从质膜触发的初始横向运动到内化和运输过程,配体诱导的NRs动力学和相互作用的纳米级细节仍缺乏全面描述。高时空分辨率成像技术的最新进展为配体结合后NRs的动力学提供了新的见解。在此,我们在当前也适用于其他配体-受体系统的知识框架内,讨论这些研究神经营养因子运输和信号传导的新方法的要求、潜力和实际应用。我们将特别强调不同神经营养因子激活的受体动力学与各自信号传导结果之间的相关性,这是最近通过对活神经元细胞中NRs的单分子追踪所揭示的。