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本文引用的文献

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Decreases in K63 Polyubiquitination in the Hippocampus Promote the Formation of Contextual Fear Memories in Both Males and Females.海马体中 K63 多泛素化的减少促进了雄性和雌性个体的情境性恐惧记忆的形成。
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Dysregulation of baseline and learning-dependent protein degradation in the aged hippocampus.衰老海马体中基线和学习依赖性蛋白降解的失调。
Brain Res Bull. 2024 Sep;215:111015. doi: 10.1016/j.brainresbull.2024.111015. Epub 2024 Jun 13.
3
Phosphorylation of RPT6 Controls Its Ability to Bind DNA and Regulate Gene Expression in the Hippocampus of Male Rats during Memory Formation.磷酸化 RPT6 控制其在雄性大鼠记忆形成过程中结合 DNA 和调节海马体基因表达的能力。
J Neurosci. 2024 Jan 24;44(4):e1453232023. doi: 10.1523/JNEUROSCI.1453-23.2023.
4
Sex-differences in proteasome-dependent K48-polyubiquitin signaling in the amygdala are developmentally regulated in rats.大鼠杏仁核中依赖蛋白酶体的 K48 多泛素信号的性别差异受发育调控。
Biol Sex Differ. 2023 Nov 10;14(1):80. doi: 10.1186/s13293-023-00566-z.
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The ubiquitin-proteasome system and learning-dependent synaptic plasticity - A 10 year update.泛素蛋白酶体系统与学习依赖性突触可塑性——十年更新。
Neurosci Biobehav Rev. 2023 Sep;152:105280. doi: 10.1016/j.neubiorev.2023.105280. Epub 2023 Jun 12.
6
Proteasome-independent K63 polyubiquitination selectively regulates ATP levels and proteasome activity during fear memory formation in the female amygdala.蛋白酶体非依赖的 K63 泛素化在雌性杏仁核的恐惧记忆形成过程中选择性调节 ATP 水平和蛋白酶体活性。
Mol Psychiatry. 2023 Jun;28(6):2594-2605. doi: 10.1038/s41380-023-02112-0. Epub 2023 May 17.
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10
Aged Rats Exhibit Altered Behavior-Induced Oscillatory Activity, Place Cell Firing Rates, and Spatial Information Content in the CA1 Region of the Hippocampus.老年大鼠在海马 CA1 区表现出行为诱导的振荡活动、位置细胞放电率和空间信息含量的改变。
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增加海马体中不依赖降解的线性多聚泛素可增强年轻成年大鼠而非老年大鼠的记忆力。

Increasing degradation-independent linear polyubiquitin in the hippocampus enhances memory in young adult but not aged rats.

作者信息

Patrick Morgan B, Preveza Natalie J, Bae Yeeun, Venkat Harshini, Ball Olivia N, Setenet Gueladouan, Kincaid Shannon E, Abraham Jennifer R, Cummings Adam, Rubley Anna, Ray W Keith, Helm Richard F, Jarome Timothy J

机构信息

School of Neuroscience, Virginia Polytechnic Institute and State University, Blacksburg, VA, USA.

School of Animal Sciences, Virginia Polytechnic Institute and State University, Blacksburg, VA, USA.

出版信息

Neurobiol Learn Mem. 2025 Jun 20;220:108075. doi: 10.1016/j.nlm.2025.108075.

DOI:10.1016/j.nlm.2025.108075
PMID:40544948
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12210134/
Abstract

Age-related memory loss affects approximately 40% of the world's population after the age of 65 and is a significant risk factor for the development of dementia and Alzheimer's Disease (AD). Numerous studies have reported that late in life there decreases in the function of the ubiquitin-proteasome system, the main regulator of protein degradation in cells that is also critically involved in memory formation. However, ubiquitin can mark proteins for fates other than destruction by the proteasome. Importantly, it remains unknown how the aging process alters proteasome-independent forms of ubiquitination and how this could contribute to age-related memory loss. Here, using an unbiased proteomic approach, we found that linear polyubiquitination - the only non-lysine proteasome-independent form of polyubiquitination - is significantly increased in the aged hippocampus at rest relative to young adults. However, in response to learning there was a significant reduction in linear polyubiquitination in the aged hippocampus, which contrasted with increases seen in young adult animals following learning. CRISPR-dCas9 mediated upregulation of linear polyubiquitination in the hippocampus improved memory in young adult, but not aged, rats. Together, these data suggest that while linear polyubiquitination is a critical regulator of hippocampus-dependent memory, increasing it in the aged hippocampus is not sufficient to improve memory in advanced age. These findings advance our understanding of the molecular mechanisms regulating memory late in life and stimulate future research on the role of degradation-independent ubiquitination in this process.

摘要

65岁之后,与年龄相关的记忆丧失影响着全球约40%的人口,并且是痴呆症和阿尔茨海默病(AD)发展的一个重要风险因素。大量研究报告称,在生命后期,泛素-蛋白酶体系统的功能会下降,该系统是细胞内蛋白质降解的主要调节因子,在记忆形成中也起着关键作用。然而,泛素可以标记蛋白质用于除被蛋白酶体破坏之外的其他命运。重要的是,衰老过程如何改变蛋白酶体非依赖形式的泛素化以及这如何导致与年龄相关的记忆丧失仍然未知。在这里,我们使用一种无偏差的蛋白质组学方法发现,线性多聚泛素化——唯一一种非赖氨酸蛋白酶体非依赖形式的多聚泛素化——在老年海马体静息状态下相对于年轻成年人显著增加。然而,在学习后,老年海马体中的线性多聚泛素化显著减少,这与年轻成年动物学习后观察到的增加形成对比。CRISPR-dCas9介导的海马体中线性多聚泛素化上调改善了年轻成年大鼠而非老年大鼠的记忆。总之,这些数据表明,虽然线性多聚泛素化是海马体依赖性记忆的关键调节因子,但在老年海马体中增加它不足以改善高龄个体的记忆。这些发现推进了我们对生命后期调节记忆的分子机制的理解,并激发了对该过程中降解非依赖形式泛素化作用的未来研究。