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Gaines, M.

Publications and source records attributed to Gaines, M..

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Structural and Binding Properties of Dps: A Nucleoid Associated Protein

Prokaryotic chromosomal DNA is compacted and protected by nucleoid-associated proteins (NAPs). Among these, the DNA-binding proteins from starved cells (Dps) combine ferroxidase activity with nonspecific DNA binding to form dodecameric assemblies that condense and safeguard the genome under stress. Here, we present an integrated structural and biophysical analysis of Escherichia coli (E. coli) Dps across a pH range from 3 to 11, combining (i) single-particle cryo-EM reconstructions at [~]1.75 [A] resolution, (ii) adaptive Poisson-Boltzmann electrostatic modelling, (iii) electrophoretic mobility shift assays (EMSAs) on a 448 bp DNA fragment, and (iv) cryo-electron tomography (cryo-ET) of Dps-DNA assemblies. Through this analysis, we show that (1) the canonical ferritin-like fold is maintained at all pH values; (2) surface electrostatics shift from highly positive to net negative as the pH increases, modulating DNA affinity (EC50 values of 73.4 nM at the lowest measurement of pH 5, to 815.5 nM at the highest measurement of pH 11); and (3) short-fragment Dps-DNA complexes form amorphous [~]50 nm globular or tubular complexes rather than lattice co-crystals observed on kilobase-length DNA scaffolds. The findings reveal a possible two-stage assembly model, in which protonation-driven nucleation occurs via the Dps N-terminal lysine residues, followed by lattice ordering on long DNA. Our results further define Dps as a pH-responsive nucleoid compaction factor in bacteria.

biophysics↗

Donor strand complementation, isopeptide bonds and glycosylation stabilise highly resilient archaeal thread filaments

Pili are ubiquitous filamentous surface extensions that play crucial roles for bacterial and archaeal cellular processes such as adhesion, biofilm formation, motility, cell-cell communication, DNA uptake and horizontal gene transfer to name a few. Here we report on the discovery and structure of the archaeal thread - a remarkably stable archaeal pilus that belongs to a so-far largely unknown class of protein filaments. We find that the filament is highly glycosylated and interconnected via donor strand complementation, as well as isopeptide bonds, reminiscent of bacterial type I pili. Despite striking structural similarity with bacterial type-1 pili, archaeal threads appear to have evolved independently and are likely assembled by a markedly distinct mechanism.

microbiology↗