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Karasmanis, E. P.

Publications and source records attributed to Karasmanis, E. P..

2 recordsLinked to original sources

Lis1 relieves cytoplasmic dynein-1 auto-inhibition by acting as a molecular wedge

Cytoplasmic dynein-1 transports many intracellular cargos towards microtubule minus ends. Dynein is autoinhibited and undergoes conformational changes to form an active complex, consisting of one or two dynein dimers, the dynactin complex and activating adaptor(s)1,2. The Lissencephaly 1 gene, LIS1, is genetically linked to the dynein pathway from fungi to mammals and is mutated in patients with the neurodevelopmental disease lissencephaly3-5. Lis1 is required for active dynein complexes to form6-10, but how it does so is unclear. Here, we present a structure of two dynein motor domains with two Lis1 dimers wedged in-between. The contact sites between dynein and Lis1 in this structure, termed "Chi", are required for Lis1s regulation of dynein in Saccharomyces cerevisiae in vivo and the formation of active human dynein-dynactin- activating adaptor complexes in vitro. We propose that this structure represents an intermediate in dyneins activation pathway, revealing how Lis1 relieves dyneins autoinhibited state.

cell biology↗

Structural Basis for Cytoplasmic Dynein-1 Regulation by Lis1

The lissencephaly 1 gene, LIS1, is mutated in patients with the neurodevelopmental disease lissencephaly. The Lis1 protein is conserved from fungi to mammals and is a key regulator of cytoplasmic dynein-1, the major minus-end-directed microtubule motor in many eukaryotes. Lis1 is the only dynein regulator that binds directly to dyneins motor domain, and by doing so alters dyneins mechanochemistry. Lis1 is required for the formation of fully active dynein complexes, which also contain essential cofactors: dynactin and an activating adaptor. Here, we report the first high-resolution structure of the yeast dynein-Lis1 complex. Our 3.1[A] structure reveals, in molecular detail, the major contacts between dynein and Lis1 and between Lis1s {beta}-propellers. Structure-guided mutations in Lis1 and dynein show that these contacts are required for Lis1s ability to form fully active human dynein complexes and to regulate yeast dyneins mechanochemistry and in vivo function. We present a model for the conserved role of Lis1 in regulating dynein from yeast to humans.

cell biology↗