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McNally, K.

Publications and source records attributed to McNally, K..

2 recordsLinked to original sources

TRIM5α restricts flavivirus replication by targeting the viral protease for proteasomal degradation.

Tripartite motif-containing protein 5 (TRIM5) functions as a cellular antiviral restriction factor with exquisite specificity towards the capsid lattices of retroviruses. The relative avidity of TRIM5 binding to retrovirus capsids directly impacts primate species susceptibility to infection, but the antiviral role of TRIM5 is thought limited to retroviruses. In contrast to this current understanding, here we show that both human and rhesus TRIM5 possess potent antiviral function against specific flaviviruses through interaction with the viral protease (NS2B/3) to inhibit virus replication. Importantly, TRIM5 was essential for the antiviral function of IFN-I against sensitive flaviviruses in human cells. However, TRIM5 was ineffective against mosquito-borne flaviviruses (yellow fever, dengue, and Zika viruses) that establish transmission cycles in humans following emergence from non-human primates. Thus, TRIM5 is revealed to possess remarkable plasticity in recognition of diverse virus families, with potential to influence human susceptibility to emerging flaviviruses of global concern.

microbiology

Spherical Spindle Shape Promotes Perpendicular Cortical Orientation by Preventing Isometric Cortical Pulling on both Spindle Poles during C. elegans Female Meiosis

Meiotic spindles are positioned perpendicular to the oocyte cortex to facilitate segregation of chromosomes into a large egg and a tiny polar body. In C. elegans, spindles are initially ellipsoid and parallel to the cortex before shortening to a spherical shape and rotating to the perpendicular orientation by dynein-driven cortical pulling. The mechanistic connection between spindle shape and rotation has remained elusive. Here we used mutants of the microtubule-severing protein katanin to manipulate spindle shape without eliminating cortical pulling. In a katanin mutant, spindles remained ellipsoid, had pointed poles and became trapped in either a diagonal or a parallel orientation. Results indicated that astral microtubules emanating from both spindle poles initially engage in cortical pulling until microtubules emanating from one pole detach from the cortex allowing pivoting of the spindle. The lower viscous drag experienced by spherical spindles prevented recapture of the cortex by astral microtubules emanating from the detached pole. In addition, maximizing contact between pole dynein and cortical dynein stabilizes round poles in a perpendicular orientation. Spherical spindle shape can thus promote perpendicular orientation by two distinct mechanisms.

cell biology