Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP

Abstract Background Mutations in TSC2 are the most common cause of tuberous sclerosis (TSC), a disorder with a high incidence of autism and intellectual disability. TSC2 regulates mRNA translation required for group 1 metabotropic glutamate receptor-dependent synaptic long-term depression (mGluR-LTD...

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Main Authors: Annie Hien, Gemma Molinaro, Botao Liu, Kimberly M. Huber, Joel D. Richter
Format: Article
Language:English
Published: BMC 2020-10-01
Series:Molecular Autism
Online Access:http://link.springer.com/article/10.1186/s13229-020-00384-9
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spelling doaj-fe0a21c738634175b57fa343cd984d092020-11-25T03:57:46ZengBMCMolecular Autism2040-23922020-10-0111111810.1186/s13229-020-00384-9Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRPAnnie Hien0Gemma Molinaro1Botao Liu2Kimberly M. Huber3Joel D. Richter4Program in Molecular Medicine, University of Massachusetts Medical SchoolDepartment of Neuroscience, University of Texas Southwestern Medical CenterProgram in Molecular Medicine, University of Massachusetts Medical SchoolDepartment of Neuroscience, University of Texas Southwestern Medical CenterProgram in Molecular Medicine, University of Massachusetts Medical SchoolAbstract Background Mutations in TSC2 are the most common cause of tuberous sclerosis (TSC), a disorder with a high incidence of autism and intellectual disability. TSC2 regulates mRNA translation required for group 1 metabotropic glutamate receptor-dependent synaptic long-term depression (mGluR-LTD) and behavior, but the identity of mRNAs responsive to mGluR-LTD signaling is largely unknown. Methods We utilized Tsc2 +/− mice as a mouse model of TSC and prepared hippocampal slices from these animals. We induced mGluR-LTD synaptic plasticity in slices and processed the samples for RNA-seq and ribosome profiling to identify differentially expressed genes in Tsc2 +/− and following mGluR-LTD synaptic plasticity. Results Ribosome profiling reveals that in Tsc2 +/− mouse hippocampal slices, the expression of several mRNAs was dysregulated: terminal oligopyrimidine (TOP)-containing mRNAs decreased, while FMRP-binding targets increased. Remarkably, we observed the opposite changes of FMRP binding targets in Fmr1 −/y hippocampi. In wild-type hippocampus, induction of mGluR-LTD caused rapid changes in the steady-state levels of hundreds of mRNAs, many of which are FMRP targets. Moreover, mGluR-LTD failed to promote phosphorylation of eukaryotic elongation factor 2 (eEF2) in TSC mice, and chemically mimicking phospho-eEF2 with low cycloheximide enhances mGluR-LTD in TSC mice. Conclusion These results suggest a molecular basis for bidirectional regulation of synaptic plasticity and behavior by TSC2 and FMRP. Our study also suggests that altered mGluR-regulated translation elongation contributes to impaired synaptic plasticity in Tsc2 +/− mice.http://link.springer.com/article/10.1186/s13229-020-00384-9
collection DOAJ
language English
format Article
sources DOAJ
author Annie Hien
Gemma Molinaro
Botao Liu
Kimberly M. Huber
Joel D. Richter
spellingShingle Annie Hien
Gemma Molinaro
Botao Liu
Kimberly M. Huber
Joel D. Richter
Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP
Molecular Autism
author_facet Annie Hien
Gemma Molinaro
Botao Liu
Kimberly M. Huber
Joel D. Richter
author_sort Annie Hien
title Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP
title_short Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP
title_full Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP
title_fullStr Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP
title_full_unstemmed Ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by TSC2 and FMRP
title_sort ribosome profiling in mouse hippocampus: plasticity-induced regulation and bidirectional control by tsc2 and fmrp
publisher BMC
series Molecular Autism
issn 2040-2392
publishDate 2020-10-01
description Abstract Background Mutations in TSC2 are the most common cause of tuberous sclerosis (TSC), a disorder with a high incidence of autism and intellectual disability. TSC2 regulates mRNA translation required for group 1 metabotropic glutamate receptor-dependent synaptic long-term depression (mGluR-LTD) and behavior, but the identity of mRNAs responsive to mGluR-LTD signaling is largely unknown. Methods We utilized Tsc2 +/− mice as a mouse model of TSC and prepared hippocampal slices from these animals. We induced mGluR-LTD synaptic plasticity in slices and processed the samples for RNA-seq and ribosome profiling to identify differentially expressed genes in Tsc2 +/− and following mGluR-LTD synaptic plasticity. Results Ribosome profiling reveals that in Tsc2 +/− mouse hippocampal slices, the expression of several mRNAs was dysregulated: terminal oligopyrimidine (TOP)-containing mRNAs decreased, while FMRP-binding targets increased. Remarkably, we observed the opposite changes of FMRP binding targets in Fmr1 −/y hippocampi. In wild-type hippocampus, induction of mGluR-LTD caused rapid changes in the steady-state levels of hundreds of mRNAs, many of which are FMRP targets. Moreover, mGluR-LTD failed to promote phosphorylation of eukaryotic elongation factor 2 (eEF2) in TSC mice, and chemically mimicking phospho-eEF2 with low cycloheximide enhances mGluR-LTD in TSC mice. Conclusion These results suggest a molecular basis for bidirectional regulation of synaptic plasticity and behavior by TSC2 and FMRP. Our study also suggests that altered mGluR-regulated translation elongation contributes to impaired synaptic plasticity in Tsc2 +/− mice.
url http://link.springer.com/article/10.1186/s13229-020-00384-9
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