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Biology subjects

Robbins, E. H.

Publications and source records attributed to Robbins, E. H..

2 recordsLinked to original sources

RECUR: Identifying recurrent amino acid substitutions from multiple sequence alignments

Identifying recurrent changes in biological sequences is important to multiple aspects of biological research -from understanding the molecular basis of convergent phenotypes, to pinpointing the causative sequence changes that give rise to antibiotic resistance and disease. Here, we present RECUR, a method for identifying recurrent amino acid substitutions from multiple sequence alignments that is fast, easy to use, and scalable to thousands of sequences. We demonstrate the utility and performance characteristics of RECUR on a data set of surface glycoprotein (S) protein sequences from SARS-CoV-2 - identifying widespread recurrent evolution throughout the protein. Structural analysis of the recurrently evolving sites revealed significant enrichment in the exposed receptor-binding S1 subunit and at the interface with the human angiotensin-converting enzyme 2 (hACE2), whereas recurrent substitutions were depleted at the trimeric interface of the S protein. Finally, in silico modelling showed that recurrent substitutions have primarily acted to stabilise the trimeric interface, but had no consistent effect at the hACE2 interface, suggesting that evolution at these sites has been shaped by opposing selection pressures - balancing the need to maintain or enhance hACE2 binding with pressures to diversify and evade host immune responses. A standalone implementation of the algorithm is available under the GPLv3 licence at https://github.com/OrthoFinder/RECUR.

bioinformatics↗

Widespread adaptive evolution in the photosystems of angiosperms provides new insight into the evolution of photosystem II repair.

Oxygenic photosynthesis generates the initial energy source which fuels nearly all life on earth. At the heart of the process are the photosystems, pigment binding multi-protein complexes that catalyse the first step of photochemical conversion of light energy into chemical energy. Here, we investigate the molecular evolution at single residue resolution of the plastid-encoded subunits of the photosystems across 773 angiosperm species. We show that despite an extremely high level of conservation, 7% of residues in the photosystems, spanning all photosystem subunits, exhibit hallmarks of adaptive evolution. Through in silico modelling of these adaptive substitutions we uncover the impact of these changes on the properties of the photosystems, focussing on their effects on co-factor binding and the formation of inter-subunit interfaces. We further reveal that evolution has repeatedly destabilised the interaction photosystem II and its D1 subunit, thereby reducing the energetic barrier for D1 turn-over and photosystem repair. Together, these results provide new insight into the trajectory of photosystem evolution during the radiation of the angiosperms.

evolutionary biology↗