Microtubule Minus-End Stabilization by Polymerization-Driven CAMSAP Deposition
DEVELOPMENTAL CELL
Authors: Jiang, Kai; Hua, Shasha; Mohan, Renu; Grigoriev, Ilya; Yau, Kah Wai; Liu, Qingyang; Katrukha, Eugene A.; Altelaar, A. F. Maarten; Heck, Albert J. R.; Hoogenraad, Casper C.; Akhmanova, Anna
Abstract
Microtubules are cytoskeletal polymers with two structurally and functionally distinct ends, the plus- and the minus-end. Here, we focus on the mechanisms underlying the regulation of microtubule minus-ends by the CAMSAP/Nezha/Patronin protein family. We show that CAMSAP2 is required for the proper organization and stabilization of interphase microtubules and directional cell migration. By combining live-cell imaging and in vitro reconstitution of microtubule assembly from purified components with laser microsurgery, we demonstrate that CAMSAPs regulate microtubule minus-end growth and are specifically deposited on the lattice formed by microtubule minus-end polymerization. This process leads to the formation of CAMSAP-decorated microtubule stretches, which are stabilized from both ends and serve as sites of noncentrosomal microtubule outgrowth. The length of the stretches is regulated by the microtubule-severing protein katanin, which interacts with CAMSAPs. Our data thus indicate that microtubule minus-end assembly drives the stabilization of noncentrosomal microtubules and that katanin regulates this process.
Structural Basis of Formation of the Microtubule Minus-End-Regulating CAMSAP-Katanin Complex
STRUCTURE
Authors: Jiang, Kai; Faltova, Lenka; Hua, Shasha; Capitani, Guido; Prota, Andrea E.; Landgraf, Christiane; Volkmer, Rudolf; Kammerer, Richard A.; Steinmetz, Michel O.; Akhmanova, Anna
Abstract
CAMSAP/Patronin family members regulate the organization and stability of microtubule minus ends in various systems ranging from mitotic spindles to differentiated epithelial cells and neurons. Mammalian CAMSAP2 and CAMSAP3 bind to growing microtubule minus ends, where they form stretches of stabilized microtubule lattice. The microtubulesevering ATPase katanin interacts with CAMSAPs and limits the length of CAMSAP-decorated microtubule stretches. Here, by using biochemical, biophysical, and structural approaches, we reveal that a short helical motif conserved in CAMSAP2 and CAMSAP3 binds to the heterodimer formed by the N- and C-terminal domains of katanin subunits p60 and p80, respectively. The identified CAMSAP-katanin binding mode is supported by mutational analysis and genome-editing experiments. It is strikingly similar to the one seen in the ASPM-katanin complex, which is responsible for microtubule minus-end regulation in mitotic spindles. Our work provides a general molecular mechanism for the cooperation of katanin with major microtubule minus-end regulators.