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

Author:

Badal Kerriann K.12,Sadhu Abhishek1,Raveendra Bindu L.1,McCracken Carrie3,Lozano‐Villada Sebastian14,Shetty Amol C.3,Gillette Phillip5,Zhao Yibo1,Stommes Dustin5,Fieber Lynne A.5,Schmale Michael C.5,Mahurkar Anup3,Hawkins Robert D.67,Puthanveettil Sathyanarayanan V.1ORCID

Affiliation:

1. Department of Neuroscience The Herbert Wertheim UF Scripps Institute for Biomedical Innovation & Technology Jupiter Florida USA

2. Integrated Biology Graduate Program Florida Atlantic University Jupiter Florida USA

3. The Institute for Genome Sciences University of Maryland School of Medicine Baltimore Maryland USA

4. Harriet L. Wilkes Honors College Florida Atlantic University Jupiter Florida USA

5. National Resource for Aplysia University of Miami Rosenstiel School of Marine, Atmospheric, and Earth Sciences Miami Florida USA

6. Department of Neuroscience Columbia University New York New York USA

7. New York State Psychiatric Institute New York New York USA

Abstract

AbstractThe 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.

Funder

National Science Foundation

National Institutes of Health

Publisher

Wiley

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