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Popp, P.

Publications and source records attributed to Popp, P..

2 recordsLinked to original sources

Molecular basis of the Druantia anti-phage defense system

Eukaryotes and prokaryotes have evolved diverse antiviral immune systems, many containing helicase modules central to defense. Druantia are widespread bacterial anti-phage defense systems, each built around a large helicase domain-containing protein, DruE, paired with variable subunits. Here, we investigate the molecular basis of a minimal two-protein module Druantia system, DruH-E. We demonstrate that DruH-E is sufficient to confer robust anti-phage defense. DruE exists in equilibrium between a monomer and an asymmetric dimer, with dimerization required for in vivo immunity. Cryo-EM structures define DruE asymmetric dimer assembly and its dsDNA unwinding mechanism, revealing a topologically closed architecture that is specifically activated by dsDNA substrates with a 3' overhang. We further identify DruH as an ssDNA-binding protein regulated by a metabolic switch, where its activity is inhibited by ATP at physiological concentrations through direct competition with ssDNA. Supported by mass spectrometry and single-cell microscopy data, we establish key determinants of the Druantia defense system and reveal how it mediates a direct antiviral immune mechanism.

microbiology↗

Mechanisms of ion selectivity and rotor coupling in the bacterial flagellar sodium-driven stator unit

Bacteria swim using a flagellar motor that is powered by stator units. These stator units are energized by an ionic gradient across the membrane, typically proton or sodium. The presumed monodirectional rotation of the stator units allows the bidirectional rotation of the flagellar motor. However, how ion selectivity is attained, how ion transport triggers the directional rotation of the stator unit, and how the stator unit is incorporated into the motor remain largely unclear. Here we have determined by cryo-electron microscopy the structure of the Na+-driven type stator unit PomAB from the gram-negative bacterium Vibrio alginolyticus in both lipidic and detergent environments, at a resolution up to 2.5 [A]. The structure is in a plugged, auto-inhibited state consisting of five PomA subunits surrounding two PomB subunits. The electrostatic potential map uncovers sodium ion binding sites within the transmembrane domain, which together with functional experiments and explicit solvent molecular dynamics simulations, suggest a mechanism for ion translocation and selectivity. Resolved conformational isomers of bulky hydrophobic residues from PomA, in the vicinity of key determinant residues for sodium ion coupling of PomB, prime PomA for clockwise rotation. The rotation is tightly blocked by the trans-mode organization of the PomB plug motifs. The structure also reveals a conformationally dynamic helical motif at the C-terminus of PomA, which we propose regulates the distance between PomA subunit cytoplasmic domains and is involved in stator unit-rotor interaction, concomitant stator unit activation, and torque transmission. Together, our studies provide mechanistic insight for understanding flagellar stator unit ion selectivity and incorporation of the stator units into the motor.

microbiology↗