AI Article Synopsis

  • Diatoms are crucial for global primary production and form the foundation of marine food webs, with their cell size influenced by environmental factors and sexual reproduction.
  • The study reveals a previously unknown genetic mechanism that regulates cell size in the diatom Thalassiosira pseudonana, particularly through the silacidin protein.
  • Experimental evolution experiments showed that lowering temperatures led to reduced silacidin expression, resulting in larger cell sizes, suggesting a genetic basis for cell size regulation in T. pseudonana and potentially other related diatoms.

Article Abstract

Diatoms contribute 20% of global primary production and form the basis of many marine food webs. Although their species diversity correlates with broad diversity in cell size, there is also an intraspecific cell-size plasticity owing to sexual reproduction and varying environmental conditions. However, despite the ecological significance of the diatom cell size for food-web structure and global biogeochemical cycles, our knowledge about genes underpinning the size of diatom cells remains elusive. Here, a combination of reverse genetics, experimental evolution and comparative RNA-sequencing analyses enabled us to identify a previously unknown genetic control of cell size in the diatom Thalassiosira pseudonana. In particular, the targeted deregulation of the expression of the cell-wall protein silacidin caused a significant increase in valve diameter. Remarkably, the natural downregulation of the silacidin gene transcript due to experimental evolution under low temperature also correlated with cell-size increase. Our data give first evidence for a genetically controlled regulation of cell size in T. pseudonana and possibly other centric diatoms as they also encode the silacidin gene in their genomes.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5649158PMC
http://dx.doi.org/10.1038/ismej.2017.100DOI Listing

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