Zhao Ling, Witter Menno P, Palomero-Gallagher Nicola
Department of Psychology, School of Public Policy and Management, Nanchang University, Nanchang 330000, China; Institute of Neuroscience and Medicine (INM-1), Research Centre Jülich, Jülich 52425, Germany.
Kavli Institute for Systems Neuroscience, NTNU Norwegian University of Science and Technology, Trondheim, Norway.
Prog Neurobiol. 2025 Feb;245:102704. doi: 10.1016/j.pneurobio.2024.102704. Epub 2024 Dec 19.
Neurotransmitter receptors are key molecules in signal transmission in the adult brain, and their precise spatial and temporal balance expressions also play a critical role in normal brain development. However, the specific balance expression of multiple receptors during hippocampal development is not well characterized. In this study, we used quantitative in vivo receptor autoradiography to measure the distributions and densities of 18 neurotransmitter receptor types in the mouse hippocampal complex at postnatal day 7, and compared them with the expressions of their corresponding encoding genes. We provide a novel and comprehensive characterization of the cyto-, gene, and multireceptor architecture of the developing mouse hippocampal and subicular regions during the developmental period, which typically differs from that in the adult brain. High-density receptor expressions with distinct regional and laminar distributions were observed for AMPA, Kainate, mGluR2/3, GABA, GABA/BZ, α, and A receptors during this specific period, whereas NMDA, GABA, α, M, M, M, nicotinic αβ, 5-HT, 5-HT, D and D/D receptors exhibited relatively low and homogeneous expressions. This specific balance of multiple receptors aligns with regional cytoarchitecture, neurotransmitter distributions, and gene expressions. Moreover, contrasting with previous findings, we detected a high α receptor density, with distinct regional and laminar distribution patterns. A non-covariation differentiation phenomenon between α receptor distributions and corresponding gene expressions is also demonstrated in this early developmental period. The multimodal data provides new insights into understanding the hippocampal development from the perspective of cell, gene, and multireceptor levels, and contributes important resources for further interdisciplinary analyses.
神经递质受体是成人大脑信号传递中的关键分子,其精确的时空平衡表达在正常脑发育中也起着至关重要的作用。然而,海马体发育过程中多种受体的具体平衡表达尚未得到充分表征。在本研究中,我们使用定量体内受体放射自显影技术来测量出生后第7天小鼠海马复合体中18种神经递质受体类型的分布和密度,并将它们与其相应编码基因的表达进行比较。我们对发育时期小鼠海马和海马旁回区域的细胞、基因和多受体结构进行了新颖而全面的表征,这通常与成人大脑不同。在这个特定时期,观察到AMPA、海人酸、代谢型谷氨酸受体2/3、GABA、GABA/苯二氮䓬、α和A受体具有高密度的受体表达,且具有明显的区域和层状分布,而NMDA、GABA、α、M、M、M、烟碱型αβ、5-羟色胺、5-羟色胺、D和D/D受体则表现出相对较低且均匀的表达。多种受体的这种特定平衡与区域细胞结构、神经递质分布和基因表达相一致。此外,与先前的研究结果相反,我们检测到α受体密度较高,具有明显的区域和层状分布模式。在这个早期发育阶段,还证明了α受体分布与其相应基因表达之间的非共变分化现象。这些多模态数据为从细胞、基因和多受体水平理解海马体发育提供了新的见解,并为进一步的跨学科分析提供了重要资源。