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Colman, D. R.

Publications and source records attributed to Colman, D. R..

2 recordsLinked to original sources

Distribution and abundance of tetraether lipid cyclization genes in terrestrial hot springs reflects pH

Many Archaea produce membrane-spanning glycerol dibiphytanyl glycerol tetraether (GDGTs) lipids that serve as unique biomarkers of past environments. These lipids can contain up to eight cyclopentane rings, where an increase in ring cyclization is generally associated with growth in more acidic, higher temperature, or more energy limited conditions. Recently the genes that encode GDGT ring synthases, grsAB, were identified and characterized in model thermoacidophiles Sulfolobus acidocaldarius and Saccharolobus solfataricus. However, the distribution and abundance of grs homologs across environments inhabited by these and related Archaea remains unknown. To address this, we examined the distribution of grs homologs in archaeal and bacterial cultivar genomes, single cell genomes, metagenomes, and metatranscriptomes from thermal springs across the planet, where temperature, pH, and geochemical data take at time of sampling. The relative abundance of grs in these microbial communities exhibits a strong negative correlation with pH, and weak positive correlation with temperature. Genomes and metagenome-assembled genomes (MAGs) from Archaea that encode two or more copies of grs are significantly more widespread in low pH springs. Homologs of grs were detected in MAGs from 12 archaeal classes, with the most well-represented being the Thermoproteia. Homologs of grs were also detected among several classes of uncultured Archaea, including the Korarchaeia, Bathyarchaeia, and Hadarchaeia. Several Nitrososphaeria MAGs had high copy numbers of grs (> 3), and the functional role of these copies cannot yet be explained. Notably, grs genes were also found in MAGs from the bacterial class Acidobacteria. Based on phylogenetic analyses, it is likely that Acidobacteria acquired these genes horizontally from Archaea. Broadly, our results highlight the key role of grs-catalyzed lipid cyclization in the diversification of Archaea in hot and acidic environments.

microbiology↗

Structural Evolution of the Ancient Enzyme, Dissimilatory Sulfite Reductase

Dissimilatory sulfite reductase is an ancient enzyme that has linked the global sulfur and carbon biogeochemical cycles since at least 3.47 Gya. While much has been learned about the phylogenetic distribution and diversity of DsrAB across environmental gradients, far less is known about the structural changes that occurred to maintain DsrAB function as the enzyme accompanied diversification of sulfate/sulfite reducing organisms (SRO) into new environments. Analyses of available crystal structures of DsrAB from Archaeoglobus fulgidus and Desulfovibrio vulgaris, representing early and late evolving lineages, respectively, show that certain features of DsrAB are structurally conserved, including active siro-heme binding motifs. Whether such structural features are conserved among DsrAB recovered from varied environments, including hot spring environments that host representatives of the earliest evolving SRO lineage (e.g., MV2-Eury), is not known. To begin to overcome these gaps in our understanding of the evolution of DsrAB, structural models from MV2.Eury were generated and evolutionary sequence co-variance analyses were conducted on a curated DsrAB database. Phylogenetically diverse DsrAB harbor many conserved functional residues including those that ligate active siro-heme(s). However, evolutionary co-variance analysis of monomeric DsrAB subunits revealed several False Positive Evolutionary Couplings (FPEC) that correspond to residues that have co-evolved despite being too spatially distant in the monomeric structure to allow for direct contact. One set of FPECs corresponds to residues that form a structural path between the two active siro-heme moieties across the interface between heterodimers, suggesting the potential for allostery or electron transfer within the enzyme complex. Other FPECs correspond to structural loops and gaps that may have been selected to stabilize enzyme function in different environments. These structural bioinformatics results suggest that DsrAB has maintained allosteric communication pathways between subunits as SRO diversified into new environments. The observations outlined here provide a framework for future biochemical and structural analyses of DsrAB to examine potential allosteric control of this enzyme.

biophysics↗