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Agrofoglio, Y. C.

Publications and source records attributed to Agrofoglio, Y. C..

2 recordsLinked to original sources

In vivo binding by Arabidopsis SPLICING FACTOR 1 shifts 3' splice site choice, regulating circadian rhythms and immunity in plants

Alternative splicing expands proteome diversity and enables phenotypic plasticity across eukaryotes. In plants, mutations in spliceosomal components impair development and stress responses, but the molecular mechanisms remain unclear. Here, we define the molecular function of SPLICING FACTOR1 (AtSF1) in Arabidopsis thaliana using individual-nucleotide resolution UV crosslinking and immunoprecipitation (iCLIP) combined with RNA sequencing of sf1 mutants. We identify the in vivo branch point sequences bound by AtSF1 and delineate its RNA-binding landscape, revealing pervasive splicing defects dominated by aberrant 3' splice site selection. Structural comparison with human SF1 indicates that AtSF1 retains branch point recognition capacity but features a distinct domain organization, including a restructured C-terminal region absent in metazoans, suggesting a divergent RNA-binding mode that evolved to meet plant-specific splicing demands. AtSF1 targets are enriched for core circadian clock and defense genes, consistent with the long-period phenotype and immune-compromised phenotypes of sf1 mutants. Together, these findings establish that AtSF1 orchestrates alternative 3' splice site choice through intron binding and branch point recognition, coupling RNA processing with circadian and immune regulation in plants. SignificancePre-mRNA splicing is a fundamental process that shapes gene expression and proteome diversity, yet how it integrates with physiological pathways in plants remains poorly understood. Our study identifies the spliceosomal component SPLICING FACTOR1 (AtSF1) as a central modulator of alternative 3' splice site choice in Arabidopsis thaliana. By defining branch point sequences and direct RNA targets of AtSF1 in vivo, we reveal its dual regulatory role in circadian timing and immune responses. Comparative analysis with human SF1 uncovers a distinct domain architecture in the plant homolog, suggesting an alternative RNA-binding mode that evolved to meet plant-specific demands. These findings illuminate how conserved splicing machinery was molecularly adapted in the plant lineage to coordinate RNA processing with environmental and developmental cues.

plant biology↗

Antagonistic effects of arginine methylation of LSM4 on alternative splicing during plant stress responses

Arabidopsis PROTEIN ARGININE METHYLTRANSFERASE 5 (PRMT5) post-translationally modifies RNA-binding proteins by arginine (R) methylation. The impact of this modification on the regulation of RNA processing is largely unknown. Here we use LSM4, a component of the spliceosome, as a paradigm to study the impact of R-methylation on its function in RNA processing. We identify in vivo targets of LSM4 and show that LSM4 regulates alternative splicing of a suite of them. Furthermore, LSM4 affects mRNA levels of some of the targets, showing for the first time its role in both AS and steady-state abundance. The lsm4 and prmt5 mutants show a considerable overlap of genes with altered splicing patterns, suggesting that these might be regulated by PRMT5-dependent LSM4 methylation. Wild-type LSM4 and an unmethylable version complement the lsm4-1 growth and circadian rhythms defects, suggesting that methylation is not critical for growth in normal environments. However, LSM4 methylation increases with ABA and is necessary for plants to respond properly to salt stress. In contrast, LSM4 methylation is reduced by bacterial infection, and plants expressing unmethylable LSM4 are more resistant than plants expressing wild-type LSM4. This tolerance correlates with decreased intron retention of immune-response genes upon infection, augmenting the functional isoform. Taken together, this provides the first direct evidence that R methylation adjusts LSM4 function on pre-mRNA splicing in an antagonistic manner in response to biotic and abiotic stress. HighlightPlease provide a statement that, in fewer than 30 words, highlights the novelty of the paper for the non-expert. Arginine methylation of the LSM4 spliceosome component by PROTEIN ARGININE METHYLTRANSFERASE 5 fine-tunes alternative splicing of a set of stress-related genes to antagonistically control biotic and abiotic responses in Arabidopsis.

plant biology↗