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Biology subjects

Dowson, M.

Publications and source records attributed to Dowson, M..

2 recordsLinked to original sources

CyanoTag: Discovery of protein function facilitated by high-throughput endogenous tagging in a photosynthetic prokaryote

Despite their fundamental importance to aquatic ecosystems, global carbon cycling and exciting potential in sustainable bioindustries, the genomes of photosynthetic prokaryotes still contain large numbers of uncharacterised protein-coding genes. Here we present a high-throughput approach for scarless endogenous fluorescent protein tagging in the model cyanobacterium Synechococcus elongatus PCC7942. From 400 targets we successfully endogenously tag over 330 proteins corresponding to >10% of the proteome. We demonstrate how this resource can be used at scale to determine subcellular localisation, track relative protein abundances and to elucidate protein-protein interaction networks. Our data has provided biological insights into a diverse range of processes - from photosynthesis to cell division. Of particular interest, our CyanoTag lines enabled us to visualise in real time the rapid condensation of Calvin Cycle proteins Prk and Gap2 within seconds of withdrawal of light, effectively switching off photosynthesis in the dark. These insights, CyanoTag cell lines, associated data and optimised methods are intended to be shared as a resource to facilitate further discoveries relevant to cyanobacteria and more broadly to all photosynthetic life.

microbiology↗

A Protein Blueprint of the Diatom CO2-Fixing Organelle

Diatoms are central to the global carbon cycle. At the heart of diatom carbon fixation is an overlooked organelle called the pyrenoid, where concentrated CO2 is delivered to densely packed Rubisco. Diatom pyrenoids fix approximately one-fifth of global CO2, but virtually nothing is known about this organelle in diatoms. Using large-scale fluorescence protein tagging and affinity purification-mass spectrometry, we generate a high-confidence spatially-defined protein-protein interaction network for the diatom pyrenoid. Within our pyrenoid interaction network are 10 proteins with no known function. We show that six of these form a static shell encapsulating the Rubisco matrix of the pyrenoid, with the shell critical for pyrenoid structural integrity, shape, and function. Although not conserved at a sequence level, the diatom pyrenoid shares some architectural similarities to prokaryotic carboxysomes. Collectively, our results support the convergent evolution of pyrenoids across the two main plastid lineages and uncover a major structural and functional component of global CO2 fixation.

cell biology↗