Mohar Boaz, Michel Gabriela, Wang Yi-Zhi, Hernandez Veronica, Grimm Jonathan B, Park Jin-Yong, Patel Ronak, Clarke Morgan, Brown Timothy A, Bergmann Cornelius, Gebis Kamil K, Wilen Anika P, Liu Bian, Johnson Richard, Graves Austin, Tchumatchenko Tatjana, Savas Jeffrey N, Fornasiero Eugenio F, Huganir Richard L, Tillberg Paul W, Lavis Luke D, Svoboda Karel, Spruston Nelson
Janelia Research Campus, Howard Hughes Medical Institute, Ashburn, VA, USA.
Department of Neurology, Feinberg School of Medicine, Northwestern University, Chicago, IL, USA.
Nat Neurosci. 2025 May;28(5):1089-1098. doi: 10.1038/s41593-025-01923-4. Epub 2025 Mar 31.
Synaptic plasticity alters neuronal connections in response to experience, which is thought to underlie learning and memory. However, the loci of learning-related synaptic plasticity, and the degree to which plasticity is localized or distributed, remain largely unknown. Here we describe a new method, DELTA, for mapping brain-wide changes in synaptic protein turnover with single-synapse resolution, based on Janelia Fluor dyes and HaloTag knock-in mice. During associative learning, the turnover of the ionotropic glutamate receptor subunit GluA2, an indicator of synaptic plasticity, was enhanced in several brain regions, most markedly hippocampal area CA1. More broadly distributed increases in the turnover of synaptic proteins were observed in response to environmental enrichment. In CA1, GluA2 stability was regulated in an input-specific manner, with more turnover in layers containing input from CA3 compared to entorhinal cortex. DELTA will facilitate exploration of the molecular and circuit basis of learning and memory and other forms of plasticity at scales ranging from single synapses to the entire brain.
突触可塑性会根据经验改变神经元连接,这被认为是学习和记忆的基础。然而,与学习相关的突触可塑性位点,以及可塑性是局部化还是分布式的程度,在很大程度上仍然未知。在这里,我们描述了一种新方法DELTA,基于Janelia Fluor染料和HaloTag基因敲入小鼠,以单突触分辨率绘制全脑突触蛋白周转变化图谱。在联想学习过程中,离子型谷氨酸受体亚基GluA2(突触可塑性的一个指标)的周转在几个脑区增强,最明显的是海马体CA1区。响应环境丰富化,观察到突触蛋白周转更广泛地分布增加。在CA1区,GluA2稳定性以输入特异性方式调节,与内嗅皮质相比,来自CA3的输入所在层的周转更多。DELTA将有助于探索从单个突触到整个大脑尺度上学习和记忆以及其他形式可塑性的分子和回路基础。