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Published on: February 25, 2022
ALS-Associated TDP-43 Dysfunction Compromises UPF1-Dependent mRNA Metabolism Pathways Including Alternative
Abstract:
UPF1-mediated decay entails several mRNA surveillance pathways that play a crucial role in cellular homeostasis. However, the precise role of UPF1 in postmitotic neurons remains unresolved, as does its activity in amyotrophic lateral sclerosis (ALS), a devastating neurodegenerative disease characterized by TDP-43 pathology and disrupted mRNA metabolism. Here, we used human iPSC-derived spinal motor neurons (MNs) to identify mRNAs subject to UPF1 degradation by integrating RNA-seq before and after UPF1 knockdown with RIP-seq to identify RNAs that co-immunoprecipitate with the active form of phosphorylated UPF1. We define a stringent set of bona fide UPF1 targets in MNs that are functionally enriched for autophagy and structurally enriched for GC-rich and long 3' UTRs but not for premature termination codon (PTC)-containing transcripts. TDP-43 depletion in iPSC-derived MNs reduces UPF1 phosphorylation and consequently post-transcriptional upregulation of UPF1 targets, suggesting that TDP-43 dysfunction compromises UPF1-mediated mRNA surveillance. Intriguingly, our datasets reveal that UPF1 and TDP-43 regulate alternative polyadenylation and 3'UTR length of mRNAs associated with synaptic and axonal function, a process that we find to be compromised in ALS models in vitro and ALS patient tissue. Our study provides a comprehensive description of UPF1-mediated mRNA decay activity in neurons, reveals overlapping roles between UPF1 and TDP-43 in regulating 3'UTR length, and offers novel insight into the intricate interplay between RNA metabolism and neurodegeneration in ALS.
Insights
UPF1-mediated mRNA decay is crucial for neuron health and disrupted in amyotrophic lateral sclerosis (ALS). This study identifies UPF1 targets in motor neurons, revealing TDP-43
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- UPF1-mediated mRNA decay is vital for cellular homeostasis but its role in neurons and amyotrophic lateral sclerosis (ALS) is unclear.
- ALS is a neurodegenerative disease linked to TDP-43 pathology and impaired mRNA metabolism.
Approach:
- Utilized human induced pluripotent stem cell (iPSC)-derived spinal motor neurons (MNs).
- Integrated RNA sequencing (RNA-seq) before and after UPF1 knockdown with RNA immunoprecipitation sequencing (RIP-seq) targeting phosphorylated UPF1.
- Identified bona fide UPF1 targets in MNs and analyzed TDP-43's role in UPF1 activity.
Key Points:
- Identified specific UPF1 mRNA targets in MNs, enriched for autophagy and long, GC-rich 3' UTRs, but not premature termination codons.
- TDP-43 depletion reduced UPF1 phosphorylation, impairing mRNA surveillance and upregulating UPF1 targets.
- UPF1 and TDP-43 co-regulate alternative polyadenylation and 3' UTR length in synaptic and axonal function genes.
Conclusions:
- Provides a detailed map of UPF1-mediated mRNA decay in neurons.
- Highlights overlapping functions of UPF1 and TDP-43 in regulating 3' UTR length.
- Offers new insights into RNA metabolism dysfunction in ALS pathogenesis.
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