Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors

Single-cell transcriptomes are established by transcription factors (TFs), which determine a cell's gene-expression complement. Post-transcriptional regulation of single-cell transcriptomes, and the RNA binding proteins (RBPs) responsible, are more technically challenging to determine, and comb...

Full description

Bibliographic Details
Main Authors: Morgan Thompson, Ryan Bixby, Robert Dalton, Alexa Vandenburg, John A Calarco, Adam D Norris
Format: Article
Language:English
Published: eLife Sciences Publications Ltd 2019-07-01
Series:eLife
Subjects:
RNA
Online Access:https://elifesciences.org/articles/46726
id doaj-693d9901788f4ee597a4c972cb15372c
record_format Article
spelling doaj-693d9901788f4ee597a4c972cb15372c2021-05-05T17:47:08ZengeLife Sciences Publications LtdeLife2050-084X2019-07-01810.7554/eLife.46726Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factorsMorgan Thompson0Ryan Bixby1Robert Dalton2Alexa Vandenburg3John A Calarco4https://orcid.org/0000-0002-2197-7801Adam D Norris5https://orcid.org/0000-0002-0570-7414Biological Sciences, Southern Methodist University, Dallas, United StatesBiological Sciences, Southern Methodist University, Dallas, United StatesBiological Sciences, Southern Methodist University, Dallas, United StatesBiological Sciences, Southern Methodist University, Dallas, United StatesCell & Systems Biology, University of Toronto, Toronto, CanadaBiological Sciences, Southern Methodist University, Dallas, United StatesSingle-cell transcriptomes are established by transcription factors (TFs), which determine a cell's gene-expression complement. Post-transcriptional regulation of single-cell transcriptomes, and the RNA binding proteins (RBPs) responsible, are more technically challenging to determine, and combinatorial TF-RBP coordination of single-cell transcriptomes remains unexplored. We used fluorescent reporters to visualize alternative splicing in single Caenorhabditis elegans neurons, identifying complex splicing patterns in the neuronal kinase sad-1. Most neurons express both isoforms, but the ALM mechanosensory neuron expresses only the exon-included isoform, while its developmental sister cell the BDU neuron expresses only the exon-skipped isoform. A cascade of three cell-specific TFs and two RBPs are combinatorially required for sad-1 exon inclusion. Mechanistically, TFs combinatorially ensure expression of RBPs, which interact with sad-1 pre-mRNA. Thus a combinatorial TF-RBP code controls single-neuron sad-1 splicing. Additionally, we find ‘phenotypic convergence,’ previously observed for TFs, also applies to RBPs: different RBP combinations generate similar splicing outcomes in different neurons.https://elifesciences.org/articles/46726RNAsplicingsingle neuron
collection DOAJ
language English
format Article
sources DOAJ
author Morgan Thompson
Ryan Bixby
Robert Dalton
Alexa Vandenburg
John A Calarco
Adam D Norris
spellingShingle Morgan Thompson
Ryan Bixby
Robert Dalton
Alexa Vandenburg
John A Calarco
Adam D Norris
Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors
eLife
RNA
splicing
single neuron
author_facet Morgan Thompson
Ryan Bixby
Robert Dalton
Alexa Vandenburg
John A Calarco
Adam D Norris
author_sort Morgan Thompson
title Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors
title_short Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors
title_full Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors
title_fullStr Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors
title_full_unstemmed Splicing in a single neuron is coordinately controlled by RNA binding proteins and transcription factors
title_sort splicing in a single neuron is coordinately controlled by rna binding proteins and transcription factors
publisher eLife Sciences Publications Ltd
series eLife
issn 2050-084X
publishDate 2019-07-01
description Single-cell transcriptomes are established by transcription factors (TFs), which determine a cell's gene-expression complement. Post-transcriptional regulation of single-cell transcriptomes, and the RNA binding proteins (RBPs) responsible, are more technically challenging to determine, and combinatorial TF-RBP coordination of single-cell transcriptomes remains unexplored. We used fluorescent reporters to visualize alternative splicing in single Caenorhabditis elegans neurons, identifying complex splicing patterns in the neuronal kinase sad-1. Most neurons express both isoforms, but the ALM mechanosensory neuron expresses only the exon-included isoform, while its developmental sister cell the BDU neuron expresses only the exon-skipped isoform. A cascade of three cell-specific TFs and two RBPs are combinatorially required for sad-1 exon inclusion. Mechanistically, TFs combinatorially ensure expression of RBPs, which interact with sad-1 pre-mRNA. Thus a combinatorial TF-RBP code controls single-neuron sad-1 splicing. Additionally, we find ‘phenotypic convergence,’ previously observed for TFs, also applies to RBPs: different RBP combinations generate similar splicing outcomes in different neurons.
topic RNA
splicing
single neuron
url https://elifesciences.org/articles/46726
work_keys_str_mv AT morganthompson splicinginasingleneuroniscoordinatelycontrolledbyrnabindingproteinsandtranscriptionfactors
AT ryanbixby splicinginasingleneuroniscoordinatelycontrolledbyrnabindingproteinsandtranscriptionfactors
AT robertdalton splicinginasingleneuroniscoordinatelycontrolledbyrnabindingproteinsandtranscriptionfactors
AT alexavandenburg splicinginasingleneuroniscoordinatelycontrolledbyrnabindingproteinsandtranscriptionfactors
AT johnacalarco splicinginasingleneuroniscoordinatelycontrolledbyrnabindingproteinsandtranscriptionfactors
AT adamdnorris splicinginasingleneuroniscoordinatelycontrolledbyrnabindingproteinsandtranscriptionfactors
_version_ 1721458984090599424