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Efficient Polyethylene Glycol PEG Mediated Transformation of the Moss Physcomitrella patens
Published on: April 19, 2011
The loss of SMG1 causes defects in quality control pathways in Physcomitrella patens
James P B Lloyd1, Daniel Lang2, Andreas D Zimmer2
1Centre for Plant Sciences, Faculty of Biological Sciences, University of Leeds, UK.
Abstract:
Nonsense-mediated mRNA decay (NMD) is important for RNA quality control and gene regulation in eukaryotes. NMD targets aberrant transcripts for decay and also directly influences the abundance of non-aberrant transcripts. In animals, the SMG1 kinase plays an essential role in NMD by phosphorylating the core NMD factor UPF1. Despite SMG1 being ubiquitous throughout the plant kingdom, little is known about its function, probably because SMG1 is atypically absent from the genome of the model plant, Arabidopsis thaliana. By combining our previously established SMG1 knockout in moss with transcriptome-wide analysis, we reveal the range of processes involving SMG1 in plants. Machine learning assisted analysis suggests that 32% of multi-isoform genes produce NMD-targeted transcripts and that splice junctions downstream of a stop codon act as the major determinant of NMD targeting. Furthermore, we suggest that SMG1 is involved in other quality control pathways, affecting DNA repair and the unfolded protein response, in addition to its role in mRNA quality control. Consistent with this, smg1 plants have increased susceptibility to DNA damage, but increased tolerance to unfolded protein inducing agents. The potential involvement of SMG1 in RNA, DNA and protein quality control has major implications for the study of these processes in plants.
Insights
Nonsense-mediated mRNA decay (NMD) in plants is regulated by SMG1 kinase, impacting RNA, DNA, and protein quality control. This study reveals SMG1
Area of Science:
- Plant molecular biology
- RNA biology
- Genetics
Background:
- Nonsense-mediated mRNA decay (NMD) is a crucial RNA surveillance pathway in eukaryotes.
- The SMG1 kinase is essential for NMD in animals but its function in plants is largely unknown due to its absence in Arabidopsis.
- Understanding SMG1's role is vital for plant gene regulation and quality control.
Purpose of the Study:
- To investigate the function of SMG1 in plants, particularly in RNA quality control.
- To identify the range of biological processes regulated by SMG1 in plants.
- To explore SMG1's potential roles beyond mRNA decay.
Main Methods:
- Transcriptome-wide analysis in a moss SMG1 knockout mutant.
- Machine learning to analyze NMD targeting determinants.
- Phenotypic analysis of smg1 plants under DNA damage and unfolded protein stress.
Main Results:
- SMG1 regulates NMD in plants, with 32% of multi-isoform genes producing NMD targets.
- Splice junctions downstream of stop codons are key NMD determinants.
- SMG1 also impacts DNA repair and the unfolded protein response, affecting stress tolerance.
Conclusions:
- SMG1 plays a multifaceted role in plant quality control, extending beyond mRNA decay.
- The findings have significant implications for understanding RNA, DNA, and protein homeostasis in plants.
- This study provides a foundation for future research on SMG1 in diverse plant species.
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