Single-neuron analysis of aging-associated changes in learning reveals impairments in transcriptional plasticity

IF 7.8 1区 医学 Q1 Biochemistry, Genetics and Molecular Biology
Aging Cell Pub Date : 2024-06-24 DOI:10.1111/acel.14228
Kerriann K. Badal, Abhishek Sadhu, Bindu L. Raveendra, Carrie McCracken, Sebastian Lozano-Villada, Amol C. Shetty, Phillip Gillette, Yibo Zhao, Dustin Stommes, Lynne A. Fieber, Michael C. Schmale, Anup Mahurkar, Robert D. Hawkins, Sathyanarayanan V. Puthanveettil
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Abstract

The molecular mechanisms underlying age-related declines in learning and long-term memory are still not fully understood. To address this gap, our study focused on investigating the transcriptional landscape of a singularly identified motor neuron L7 in Aplysia, which is pivotal in a specific type of nonassociative learning known as sensitization of the siphon-withdraw reflex. Employing total RNAseq analysis on a single isolated L7 motor neuron after short-term or long-term sensitization (LTS) training of Aplysia at 8, 10, and 12 months (representing mature, late mature, and senescent stages), we uncovered aberrant changes in transcriptional plasticity during the aging process. Our findings specifically highlight changes in the expression of messenger RNAs (mRNAs) that encode transcription factors, translation regulators, RNA methylation participants, and contributors to cytoskeletal rearrangements during learning and long noncoding RNAs (lncRNAs). Furthermore, our comparative gene expression analysis identified distinct transcriptional alterations in two other neurons, namely the motor neuron L11 and the giant cholinergic neuron R2, whose roles in LTS are not yet fully elucidated. Taken together, our analyses underscore cell type-specific impairments in the expression of key components related to learning and memory within the transcriptome as organisms age, shedding light on the complex molecular mechanisms driving cognitive decline during aging.

Abstract Image

Abstract Image

对衰老相关学习变化的单神经元分析揭示了转录可塑性的损伤。
与年龄相关的学习和长期记忆衰退的分子机制仍未完全明了。为了填补这一空白,我们的研究重点是调查水蚤中一个单独鉴定出的运动神经元 L7 的转录情况,该神经元在一种特定类型的非联想学习(即虹吸-抽吸反射的敏化)中起着关键作用。通过对单个分离的 L7 运动神经元进行总 RNAseq 分析,我们发现,在 8 个月、10 个月和 12 个月(分别代表成熟期、晚熟期和衰老期)时,经过短期或长期敏化(LTS)训练的 L7 运动神经元在衰老过程中的转录可塑性发生了异常变化。我们的研究结果特别强调了编码转录因子、翻译调节因子、RNA甲基化参与者、学习过程中细胞骨架重排的贡献者以及长非编码RNA(lncRNA)的信使RNA(mRNA)表达的变化。此外,我们的比较基因表达分析还发现了另外两个神经元(即运动神经元 L11 和巨胆碱能神经元 R2)中不同的转录改变,它们在 LTS 中的作用尚未完全阐明。总之,我们的分析强调了随着生物体的衰老,转录组中与学习和记忆有关的关键成分的表达会出现细胞类型特异性损伤,从而揭示了衰老过程中驱动认知能力下降的复杂分子机制。
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来源期刊
Aging Cell
Aging Cell 生物-老年医学
CiteScore
14.40
自引率
2.60%
发文量
212
审稿时长
8 weeks
期刊介绍: Aging Cell, an Open Access journal, delves into fundamental aspects of aging biology. It comprehensively explores geroscience, emphasizing research on the mechanisms underlying the aging process and the connections between aging and age-related diseases.
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