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Mieszkowska, N.

Publications and source records attributed to Mieszkowska, N..

2 recordsLinked to original sources

Somatic and germline mutational processes across the tree of life

The characterisation of mutational processes active in somatic and germline cells in vivo has predominantly focused on human cancers1,2, normal tissues3-5 and model organisms6-8. Beyond mammals9, little is known about mutational processes across the tree of life. We developed himut (high-fidelity mutation), an algorithm to identify somatic mutations from circular consensus long-read sequencing data, deploying it on 708 samples from 661 species from Britain and Ireland10. The spectra of somatic mutations, categorised by mutation type and local sequence context, showed considerable between-species divergence but within-species similarity. From normalised spectra across the dataset, we extracted 95 distinct patterns, or signatures, of somatic mutations, together with 18 signatures of germline mutational processes. Only two of the somatic signatures resembled mutational signatures extracted from human cancers1,2. Of the somatic signatures, 22 had significant clustering within the taxonomic classification, with some distributed across an entire kingdom or phylum, while others were restricted to a single family or species. Three somatic signatures were found only in water-dwelling species, with one distributed across multiple clades that might suggest it derives from a water-borne mutagen. Of germline signatures, eight were found in multiple species, showed significant clustering by taxonomic classification and had counterpart somatic signatures with matching mutational spectrum and species distribution. Thus, there is considerably greater diversity of mutational processes across the tree of life than found in human samples, likely reflecting either cell-intrinsic biological processes or environmental exposures (or both) operative within distinct clades.

genomics↗

Cold-induced cyt elevations function to support osmoregulation in marine diatoms

Diatoms are a group of microalgae that are important primary producers in a range of open ocean, freshwater and intertidal environments. The latter can experience significant long- and short-term variability in temperature, from seasonal variations to rapid temperature shifts caused by tidal immersion and emersion. As temperature is a major determinant in the distribution of diatom species, their temperature sensory and response mechanisms likely have important roles in their ecological success. We have examined the mechanisms diatoms use to sense rapid changes in temperature, such as those experienced in the intertidal zone. We find that the diatoms Phaeodactylum tricornutum and Thalassiosira pseudonana exhibit a transient cytosolic Ca2+ ([Ca2+]cyt) elevation in response to rapid cooling, similar to those observed in plant and animal cells. However, [Ca2+]cyt elevations were not observed in response to rapid warming. The kinetics and magnitude of cold-induced [Ca2+]cyt elevations correlate with the rate of temperature decrease. We do not find a role for the [Ca2+]cyt elevations in enhancing cold tolerance, but show that cold shock induces a Ca2+-dependent K+ efflux and reduces mortality of P. tricornutum during a simultaneous hypo-osmotic shock. As inter-tidal diatom species may routinely encounter simultaneous cold and hypo-osmotic shocks during tidal cycles, we propose that cold-induced Ca2+ signalling interacts with osmotic signalling pathways to aid in the regulation of cell volume. Our findings provide insight into the nature of temperature perception in diatoms and highlight that cross-talk between signalling pathways may play an important role in their cellular responses to multiple simultaneous stressors.

plant biology↗