Overexpression of TIAM2S, a Critical Regulator for the Hippocampal-Medial Prefrontal Cortex Network, Progresses Age-Related Spatial Memory Impairment.

Chun-Hsien Chu, Chia-Hao Su, Ya-Hsin Hsiao, Chun-Chieh Yu, Yi-Chun Liao, Pin-Cheng Mao, Jia-Shing Chen, H Sunny Sun
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Abstract

TIAM Rac1-associated GEF 2 short-form protein (TIAM2S) is abundant in specific brain tissues, especially in the hippocampus, a brain region critical for processing and consolidation of spatial memory. However, how TIAM2S plasticizes the microstructure and circuits of the hippocampus to shape spatial memory as a neuroplastic regulator during aging remains to be determined. In this study, transgenic mice overexpressing human TIAM2S protein (TIAM2S-TG mice) were included, and interdisciplinary approaches, such as spatial memory tests and multiparametric magnetic resonance imaging sequences, were conducted to determine the role and the mechanism of TIAM2S in age-related spatial memory deficits. Despite no changes in their neural and glial markers and neuropathological hallmark expression of the hippocampus, behavioral tests showed that the TIAM2S-TG mice, and not wild-type (WT) mice, developed spatial memory impairment at 18 months old. The T2-weighted and diffusion tensor image analyses were performed to further study the possible role of TIAM2S overexpression in altering the hippocampal structure or neuronal circlets of the mice, increasing their vulnerability to developing spatial memory deficits during aging. The results revealed that the 12-month-old TIAM2S-TG mice had hippocampal dysplasticity, with larger volume, increased fiber numbers, and changed mean fractional anisotropy compared to those in the age-matched WT mice. The fiber tractography analysis exhibited significantly attenuated structural connectivity between the hippocampus and medial prefrontal cortex in the TIAM2S-TG mice. In conclusion, overexpression of TIAM2S, a detrimental factor affecting hippocampus plasticity, causes attenuation of the connectivity within hippocampus-mPFC circuits, leading to age-related spatial memory impairment.

TIAM2S是海马-内侧前额叶皮层网络的关键调节因子,它的过表达会导致与年龄相关的空间记忆损伤。
TIAM Rac1 相关 GEF 2 短形蛋白(TIAM2S)在特定脑组织中含量丰富,尤其是在海马区,海马区是处理和巩固空间记忆的关键脑区。然而,TIAM2S 如何在衰老过程中作为神经可塑性调节因子可塑海马的微结构和回路以形成空间记忆仍有待确定。本研究纳入了过表达人TIAM2S蛋白的转基因小鼠(TIAM2S-TG小鼠),并采用空间记忆测试和多参数磁共振成像序列等跨学科方法,以确定TIAM2S在与年龄相关的空间记忆缺陷中的作用和机制。尽管TIAM2S-TG小鼠的海马神经和胶质标记物以及神经病理学标志物的表达没有发生变化,但行为测试表明,TIAM2S-TG小鼠在18个月大时出现了空间记忆障碍,而野生型(WT)小鼠则没有。为了进一步研究TIAM2S过表达是否会改变小鼠的海马结构或神经元环路,从而增加其在衰老过程中出现空间记忆障碍的可能性,研究人员对T2加权图像和弥散张量图像进行了分析。研究结果显示,与年龄匹配的WT小鼠相比,12月龄的TIAM2S-TG小鼠海马发育不良,体积增大,纤维数量增加,平均分数各向异性发生变化。纤维束成像分析表明,TIAM2S-TG 小鼠海马和内侧前额叶皮层之间的结构连接性明显减弱。总之,TIAM2S是影响海马可塑性的有害因子,它的过度表达会导致海马-前额叶内侧皮层回路的连接性减弱,从而导致与年龄相关的空间记忆损伤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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