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Chang, S.-L.

Publications and source records attributed to Chang, S.-L..

2 recordsLinked to original sources

A topologically conserved unstructured region helps positioning the evolutionarily conserved Prp40 WW domains to promote non-canonical intron splicing

Newly transcribed introns are immediately identified by early splicing factors that recognize the intron 5 splice site (5SS) and branch site (BS). In the budding yeast, these critical splice-site sequences are generally constrained, whereas degeneracy is the rule in higher eukaryotes. Yet, [~]40% of the yeast introns do diverge, to a certain degree, from the canonical sequences. Exactly how these non-canonical introns are recognized and spliced remains unknown. Here we show that the conserved Prp40 WW domains promote non-canonical intron splicing by enhancing stable U1 snRNP and BBP recruitments. AlphaFold predicts a topologically conserved unstructured region between Prp40 WW and FF domains. Alignment of the AlphaFold Prp40 structure with published U1 snRNP structure positions WW domains adjacent to 5SS and Luc7, which is known to be critical for 5SS recognition. Indeed, deletion of this unstructured region negatively impacts on splicing of the non-canonical 5SS introns. Taken together, our results suggest that the conserved WW domains may have evolved to deal with the highly degenerate 5SS and BS sequences in higher eukaryotes, so as to accommodate increased splicing complexity. HighlightsO_LIThe evolutionarily conserved Prp40 WW domains promote splicing of introns harboring non-canonical 5 splice site or branch site. C_LIO_LIPrp40 WW domains enhance stable U1 snRNP and BBP recruitments to nascent transcripts containing non-canonical splice sites. C_LIO_LIA topologically conserved unstructured region between WW and FF domains helps to position Prp40 WW domains close to the 5 splice site. C_LIO_LIThe N-terminal WW domain sterically hinders conformational rearrangements required for efficient release of a BBP variant during spliceosome assembly. C_LIO_LIA reporter assay identified 13 non-canonical introns whose splicing, under various environmental conditions, depend on Prp40 WW domains. C_LI

biochemistry↗

Age-related declines in niche self-renewal factors controls testis aging and spermatogonial stem cell competition through Hairless, Imp, and Chinmo

Aging is associated with progressive tissue decline and shifts in stem cell clonality. The role of niche signals in driving these processes remains poorly understood. Using the Drosophila testis, we identify a regulatory axis in which age-related decline of niche signals (BMPs) lead to upregulation of the co-repressor Hairless, which downregulates the RNA-binding protein Imp in aged germline stem cells (GSCs). Reduced Imp causes loss of Chinmo, a key factor in GSC aging and competition. Reduced Chinmo causes ectopic Perlecan secretion which accumulates in the testis lumen and causes GSC loss. Aging of the testis is reversed by increasing BMPs in the niche, or by overexpressing Imp or depleting Hairless in GSCs. Furthermore, GSC clones with reduced Imp or increased Hairless are more competitive, expelling wild-type neighbors and monopolizing the niche. Thus, BMPs regulate testicular niche aging through the Hairless-Imp-Chinmo axis and "winning" GSCs usurp these aging mechanisms. HighlightsO_LIAged niche cells produce less BMPs, resulting in more Hairless (H) in aged GSCs C_LIO_LIElevated H represses Imp, resulting in less Chinmo and in ectopic ECM secretion C_LIO_LIAging is prevented by higher BMP in niche cells, or by higher Imp or lower H in GSCs C_LIO_LIGSCs with low Imp or high H exploit these aging mechanisms to colonize the GSC pool C_LI

genetics↗