Dynein and Dynactin Leverage Their Bivalent Character to Form a High-Affinity Interaction

July 28, 2017

Title

Dynein and Dynactin Leverage Their Bivalent Character to Form a High-Affinity Interaction

Author

Amanda E. Siglin, Shangjin Sun, Jeffrey K. Moore, Sarah Tan, Martin Poenie, James D. Lear, Tatyana Polenova, John A. Cooper, John C. Williams

Year

2013

Journal

PLoS ONE

Abstract

Cytoplasmic dynein and dynactin participate in retrograde transport of organelles, checkpoint signaling and cell division. The principal subunits that mediate this interaction are the dynein intermediate chain (IC) and the dynactin p150Glued; however, the interface and mechanism that regulates this interaction remains poorly defined. Herein, we use multiple methods to show the N-terminus of mammalian dynein IC, residues 10–44, is sufficient for binding p150Glued. Consistent with this mapping, monoclonal antibodies that antagonize the dynein-dynactin interaction also bind to this region of the IC. Furthermore, double and triple alanine point mutations spanning residues 6 to 19 in the yeast IC homolog, Pac11, produce significant defects in spindle positioning. Using the same methods we show residues 381 to 530 of p150Glued form a minimal fragment that binds to the dynein IC. Sedimentation equilibrium experiments indicate that these individual fragments are predominantly monomeric, but admixtures of the IC and p150Glued fragments produce a 2:2 complex. This tetrameric complex is sensitive to salt, temperature and pH, suggesting that the binding is dominated by electrostatic interactions. Finally, circular dichroism (CD) experiments indicate that the N-terminus of the IC is disordered and becomes ordered upon binding p150Glued. Taken together, the data indicate that the dynein-dynactin interaction proceeds through a disorder-to-order transition, leveraging its bivalent-bivalent character to form a high affinity, but readily reversible interaction.

Instrument

J-810

Keywords

Circular dichroism, Secondary structure, Chemical stability, Thermal stability, Thermodynamics, Ligand binding, Biochemistry