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Niezabitowski, L.

Publications and source records attributed to Niezabitowski, L..

3 recordsLinked to original sources

A Duplicate Resolved Paddlefish Genome Provides Insights into the Mechanisms of Rediploidisation and Hox Cluster Evolution

Whole-genome duplication (WGD; or polyploidy) has played a major role in the evolution of many lineages however, our understanding of the processes that shape genome evolution following WGD remains incomplete. While polyploidy duplicates the entire genome sequence, it is rediploidisation that establishes independent duplicated genes. Rediploidisation proceeds through suppression of meiotic recombination across polysomic loci thus restoring disomic inheritance, a process that is not synchronised across the genome. Despite its importance, the mechanisms underlying this process remain poorly understood. The slowly evolving genomes of paleopolyploid Acipenseriformes paddlefish and sturgeon provide an invaluable system for investigating this, as rediploidisation was highly asynchronous in these lineages. In both genomes ohnologs tend to segregate into blocks on the chromosomes according to rediploidisation timing, a pattern that suggests links between chromosomal structure and rediploidisation. Here, we analyse a newly-produced duplicate-resolved paddlefish genome assembly and show a strong concordance between genome rearrangement and rediploidisation timing. We also find that topologically associated domain (TAD) boundaries are associated with rediploidisation block boundaries. Together these results indicate that rediploidisation in acipenseriformes occurred through a process of genome rearrangements that was subject to functional constraints imposed by 3D genome architecture. We investigate the evolution of Hox clusters in these lineages, revealing a previously overlooked duplicate HoxC region in paddlefish, and both ancestral and lineage-specific Hox cluster rediploidisation with substantially different timings. These findings highlight a complex evolutionary history following WGD in Acipenseriformes with implications for understanding short-term adaptations to polyploidy as well as longer-term diversification of lineages.

evolutionary biology↗

An automated pipeline for reconstructing whole genome duplications

Whole genome duplications leave lasting traces in our genomes. How these present in terms of gene content and order varies over time. While collinear blocks of paralogs, long stretches of conserved gene order and content termed microsynteny, are a distinctive feature of comparatively recent WGD and have been integral in reconstructing the history of ancestral duplication events, this signal degrades over time, making analysis of older events non-trivial. While gene order degrades quickly, gene content is often better conserved and recent work takes advantage of this to reconstruct older events and ancestral pre-WGD and post-WGD chromosomes. However, these new methods are complicated and not well-documented. Here we develop an automated and user-friendly pipeline for reconstructing ancestral chromosomes before and after WGD, and use the conservation of gene content to infer chromosomal rearrangement events in this timeframe. We verify the efficacy of our tool by reconstructing the ancestral acipenseriform, a model system for vertebrate WGD and rediploidisation. Our pipeline should serve to make ancestral reconstruction more accessible and provide a solid foundation for future analysis.

evolutionary biology↗

INTS12 Bridges Integrator and NELF to Prevent the Release of Non-processive RNA Polymerase II Complexes

Promoter-proximal RNA Polymerase II (RNAPII) pausing and the processivity are controlled by distinct modules of the Integrator complex, which together fine-tune transcription and protect against the accumulation of defective RNAPII complexes. Compromised activity of individual Integrator modules has been linked to human disease including cancer and developmental disorders, caused by defective transcription of protein-coding or small-nuclear RNAs. Despite extensive characterisation of the Integrator complex both genetically and structurally, the role of smallest member of the complex, INTS12, has remained enigmatic. Here, we uncover that INTS12 loss acts to stabilise the association between NELF and Integrator via its PHD domain and N-terminus, respectively, thus safeguarding against the release of defective RNAPII complexes. Acute degradation of INTS12 results in the selective dissociation of Integrator from the NELF-RNAPII complex which subsequently convert to their canonical paused form from which they can be released by CDK9. In the absence of INTS12 excess release of defective RNAPII via P-TEFb/SEC, loss of the ARMC5 salvage pathway and deletion of the catalytic and core Integrator subunits is toxic to cells. These findings demonstrate that there is interconversion between canonical paused RNAPII and paused-Integrator, and highlight the critical interplay between these processes and P-TEFb mediated pause-release to ensure that only transcription competent complexes are released into elongation. O_LIINTS12 degradation confers CDK9 inhibitor resistance and triggers cellular stress through a phosphatase module-independent mechanism. C_LIO_LIINTS12 stabilizes the Integrator-NELF complex through its N-terminus and PHD domain. C_LIO_LIAcute INTS12 degradation promotes aberrant release of promoter-proximal RNA polymerase II complexes. C_LIO_LIRNA polymerase II complexes released upon INTS12 loss exhibit defective elongation and reduced processivity. C_LIO_LIINTS12 loss removes Integrator from RNAPII resulting in aberrant paused-state from which it can be released by CDK9. C_LIO_LIExcess CDK9 activity and ARMC5 loss are synthetically lethal with INTS12 deficiency. C_LI

molecular biology↗