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Murray, L. E.

Publications and source records attributed to Murray, L. E..

2 recordsLinked to original sources

Kinetochores grip microtubules with directionally asymmetric strength

For accurate mitosis, all chromosomes must achieve bi-orientation, with replicated sister chromatids coupled via kinetochores to the plus ends of opposing microtubules. However, kinetochores first bind the sides of microtubules and subsequently find plus ends by directed transport or when side-attached microtubules shorten and bring their ends to the kinetochores. Mitotic accuracy depends on the selective release of erroneous attachments and proposed mechanisms have focused mainly on plus-end attachments. Whether erroneous side-attachments are distinguished from correct side-attachments is unknown. Here we show that side-attached kinetochores are very sensitive to microtubule polarity, gripping six-fold more strongly when pulled toward plus versus minus ends. This directionally asymmetric grip correlates with changes in the axial arrangement of subcomplexes within the kinetochores, suggesting that internal architecture dictates attachment strength. We propose that the kinetochores directional grip promotes accuracy specifically during early mitosis, by stabilizing correct attachments even before both sisters have found plus ends.

biophysics↗

Working strokes produced by curling protofilaments at disassembling microtubule tips can be biochemically tuned and vary with species

The disassembly of microtubules can generate force and drive intracellular motility. During mitosis, chromosomes remain persistently attached via kinetochores to the tips of disassembling microtubules, which pull the sister chromatids apart. According to the conformational wave hypothesis, such force generation requires that protofilaments curl outward from the disassembling tips to exert pulling force directly on kinetochores. Rigorously testing this idea will require modifying the mechanical and energetic properties of curling protofilaments, but no way to do so has yet been described. Here, by direct measurement of working strokes generated in vitro by curling protofilaments, we show that their mechanical energy output can be increased by adding magnesium, and that yeast microtubules generate larger and more energetic working strokes than bovine microtubules. Both the magnesium and species-dependent increases in work output can be explained by a lengthening of protofilament curls, without any change in their bending stiffness or intrinsic curvature. These observations demonstrate how work output from curling protofilaments can be tuned and suggest evolutionary conservation of the amount of curvature strain energy stored in the microtubule lattice.

biophysics↗