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Biology subjects

Heath, J. K.

Publications and source records attributed to Heath, J. K..

3 recordsLinked to original sources

Taxonomy of introns, their evolution, and the role of minor introns in stress response

Despite the high conservation of minor introns across eukaryotic supergroups, specific lineages have completely lost minor intron splicing, which has raised questions about their evolution and purpose. Addressing these questions requires identification of the introns that are affected by minor spliceosome inhibition. To this end, we applied principles of Linnaean taxonomy combined with position-weight matrices to produce five intron classes: minor, minor-like, hybrid, major-like and major. We classified introns across the genomes of 263 species of six eukaryotic supergroups, which can be viewed at the Minor Intron Database (MIDB). Transcriptomic analysis revealed that [~]40% of the minor introns are responsive to minor spliceosome inhibition, while an additional 5% of the minor-like and hybrid introns are also affected. We propose that minor-like introns represent an intermediate in the conversion of minor to major introns and uncover the importance of a guanine at the -1 position of the 5 splice site in facilitating this shift in spliceosome dependence. Finally, we find that minor introns are aberrantly spliced in fish and plants upon cold stress, thereby providing a potential explanation for their high degree of conservation in these lineages.

molecular biology↗

The minor spliceosome offers a therapeutically viable target for the treatment of a broad spectrum of cancers

Minor splicing is a second splicing system required for the correct expression of [~]700 human minor intron-containing genes (MIGs). Many MIGs are expressed in vigorously proliferating cells and are frequently dysregulated in cancer including BRAF, ERK, JNK and p38. Minor splicing is carried out by the minor spliceosome which comprises several unique components, including a 65kDa protein encoded by RNPC3. We show that Rnpc3 heterozygosity reduces tumour burden in a broad spectrum of in vivo cancer settings, without harming normal tissues. Using the collective power of zebrafish, mouse and human cancer models, we reveal a sequence of events connecting Rnpc3 deficiency and impaired splicing of MIGs to DNA damage and activation of a Tp53-dependent transcriptional program that restricts tumour burden by inducing cell cycle arrest and apoptosis. Interrogation of human liver and lung cancer transcriptomes curated in TCGA revealed that the expression of many of the genes encoding protein components of the minor spliceosome is upregulated in these cancers. This is accompanied by upregulation of the expression of MIGs that are enriched in cell cycle and DNA damage pathways. These findings suggest that cancer cells can invoke mechanisms to increase the efficiency of minor splicing to support their high proliferation rates. Finally, Kaplan Meier survival analysis shows that highly expressed MIGs are frequently associated with poor patient survival. Taken together, these results indicate that the minor spliceosome offers a therapeutically viable target for the treatment of a broad spectrum of cancers.

cancer biology↗

Elys deficiency constrains Kras-driven tumour burden by amplifying oncogenic stress

The nucleoporin ELYS, encoded by AHCTF1, is a large multifunctional protein with essential roles in nuclear pore assembly and mitosis. Using a zebrafish model of hepatocellular carcinoma, in which the expression of an inducible mutant kras transgene (krasG12V) drives hepatocyte-specific hyperplasia and liver enlargement, we show that reducing ahctf1 gene dosage by 50% markedly shrinks tumour burden, while non-hyperplastic tissues are unaffected. We demonstrate that ahctf1 heterozygosity impairs nuclear pore formation, mitotic spindle assembly and chromosome segregation, leading to DNA damage and activation of TP53-dependent and independent mechanisms of cell death and cell cycle arrest. This selective vulnerability of cancer cells to mild disruption of Elys function uncovers a novel synthetic lethal interaction between ahctf1 and kras mutations that could be exploited therapeutically. Heterozygous expression of both ahctf1 and ranbp2, or treatment of heterozygous ahctf1 larvae with the nucleocytoplasmic transport inhibitor, Selinexor, completely blocked krasG12V-driven hepatocyte hyperplasia, revealing promising avenues for combinatorial treatments.

cancer biology↗