AI Article Synopsis

  • LIS1 is a crucial regulator of the motor protein dynein, impacting its functionality and location within cells by influencing its binding to microtubules.
  • Mutant dynein variants were created to analyze how binding to LIS1 is affected by whether dynein is attached to microtubules or not, showing that specific configurations of dynein lead to different affinities for LIS1.
  • Structural studies using cryo-EM demonstrated that binding to microtubules causes changes in dynein's shape, which play a key role in how LIS1 activates dynein's motor function.

Article Abstract

The lissencephaly-related protein LIS1 is a critical regulator of cytoplasmic dynein that governs motor function and intracellular localization (for example, to microtubule plus-ends). Although LIS1 binding is required for dynein activity, its unbinding prior to initiation of cargo transport is equally important, since preventing dissociation leads to dynein dysfunction. To understand whether and how dynein-LIS1 binding is modulated, we engineered dynein mutants locked in a microtubule-bound (MT-B) or microtubule-unbound (MT-U) state. Whereas the MT-B mutant exhibits low LIS1 affinity, the MT-U mutant binds LIS1 with high affinity, and as a consequence remains almost irreversibly associated with microtubule plus-ends. We find that a monomeric motor domain is sufficient to exhibit these opposing LIS1 affinities, and that this is evolutionarily conserved between yeast and humans. Three cryo-EM structures of human dynein with and without LIS1 reveal microtubule-binding induced conformational changes responsible for this regulation. Our work reveals key biochemical and structural insight into LIS1-mediated dynein activation.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10590275PMC
http://dx.doi.org/10.1038/s41594-023-01010-xDOI Listing

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