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Biology subjects

Levi, K.

Publications and source records attributed to Levi, K..

2 recordsLinked to original sources

Gateway mechanism confers ultrasensitivity on motor’s function

Biological switches are wide spread in many biological systems. Among them, the switch of the bacterial flagellar motor has generated much interest because it affects a mechanical process rather than a chemical reaction, it controls the direction of rotation of a rotary motor rather than being an on/off switch, and it is exceptionally ultrasensitive. Yet, the molecular mechanism underlying its function has remained unknown. Here we resolved unique features of this mechanism: On the one hand, it is tightly regulated by multiple means, involving three binding sites and two different covalent modifications, with the binding specificity being dictated by the type of covalent modification and by a strict binding sequence. On the other hand, it endows the motor with flexibility as it involves an intermediate stage of brief switches that provides a "go/no go" situation, in which the motor can either proceed to a stable rotation in the new direction or shift back to the original direction. This intermediate stage appears to be a means of the cell to produce angular deflection of swimming while maintaining directional persistence. Furthermore, we show by mathematical modeling that such a switching mechanism can provide ultrasensitivity. This unique combination of tight regulation, flexibility, and ultrasensitivity makes this switching mechanism of special interest.

microbiology

Global phylogeography and ancient evolution of the widespread human gut virus crAssphage

Microbiomes are vast communities of microbes and viruses that populate all natural ecosystems. Viruses have been considered the most variable component of microbiomes, as supported by virome surveys and examples of high genomic mosaicism. However, recent evidence suggests that the human gut virome is remarkably stable compared to other environments. Here we investigate the origin, evolution, and epidemiology of crAssphage, a widespread human gut virus. Through a global collaboratory, we obtained DNA sequences of crAssphage from over one-third of the worlds countries, and showed that its phylogeography is locally clustered within countries, cities, and individuals. We also found colinear crAssphage-like genomes in both Old-World and New-World primates, challenging genomic mosaicism and suggesting that the association of crAssphage with primates may be millions of years old. We conclude that crAssphage is a benign globetrotter virus that may have co-evolved with the human lineage and an integral part of the normal human gut virome.

microbiology