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Frilander, M. J.

Publications and source records attributed to Frilander, M. J..

2 recordsLinked to original sources

Chromosomal instability by mutations in a novel specificity factor of the minor spliceosome

Aneuploidy is the leading cause of miscarriage and congenital birth defects, and a hallmark of cancer. Despite this strong association with human disease, the genetic causes of aneuploidy remain largely unknown. Through exome sequencing of patients with constitutional mosaic aneuploidy, we identified biallelic truncating mutations in CENATAC (CCDC84). We show that CENATAC is a novel component of the minor (U12-dependent) spliceosome that promotes splicing of a specific, rare minor intron subtype. This subtype is characterized by AT-AN splice sites and relatively high basal levels of intron retention. CENATAC depletion or expression of disease mutants resulted in excessive retention of AT-AN minor introns in ~100 genes enriched for nucleocytoplasmic transport and cell cycle regulators, and caused chromosome segregation errors. Our findings reveal selectivity in minor intron splicing with a specific impact on the chromosome segregation process, and show how defects herein can cause constitutional aneuploidy.

molecular biology

Mutually opposing activity of PIN7 splicing isoforms is required for auxin-mediated tropic responses in Arabidopsis thaliana

Advanced transcriptome sequencing has uncovered that the majority of eukaryotic genes undergo alternative splicing (AS). Nonetheless, little effort has been dedicated to investigating the functional relevance of particular splicing events, even those in the key developmental and hormonal regulators. Here we reveal, in the plant model Arabidopsis thaliana, that the PIN7 gene, which encodes a polarly localized transporter for the phytohormone auxin, produces two evolutionary-conserved transcripts. These isoforms PIN7a and PIN7b, differing in a 4 amino acid motif, are present at nearly equal levels in most cells. Although both variants do not differ in the subcellular localization and transport auxin with similar capacity, they closely associate and mutually influence their stability within the plasma membrane. Phenotypic complementation tests reveal that the functional contribution of PIN7b per se is minor but it markedly attenuates the prominent PIN7a activity, which is required for correct seedling apical hook formation and auxin-mediated tropic responses. These results establish alternative splicing of the PIN family as a conserved, functionally-relevant mechanism, unveiling an additional regulatory level of auxin-mediated plant development.

plant biology