4.8 Article

Hierarchical Assembly Pathways of Spermine-Induced Tubulin Conical-Spiral Architectures

期刊

ACS NANO
卷 15, 期 5, 页码 8836-8847

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c01374

关键词

tubulin; conical-spiral; conical-spiral tubules; inverted tubules; spermine; self-assembly; time-resolved small-angle X-ray scattering

资金

  1. Israel Ministry of Science, Israel Science Foundation [1331/20]
  2. United States-Israel Binational Science Foundation
  3. Avni Foundation

向作者/读者索取更多资源

This study demonstrates that spermine can induce the in vitro assembly of tubulin into various hierarchical structures, including conical-spiral tubes and inverted hexagonal bundles, depending on the concentration of spermine. The increase in spermine concentration leads to longer tubes and the formation of a new type of tubulin assembly. These findings provide insights into the versatile morphologies of tubulin assemblies and the potential interactions controlling protein-based biomaterial composition and construction.
Tubulin, an essential cytoskeletal protein, assembles into various morphologies by interacting with an array of cellular factors. One of these factors is the endogenous polyamine spermine, which may promote and stabilize tubulin assemblies. Nevertheless, the assembled structures and their formation pathways are poorly known. Here we show that spermine induced the in vitro assembly of tubulin into several hierarchical architectures based on a tubulin conical-spiral subunit. Using solution X-ray scattering and cryo-TEM, we found that with progressive increase of spermine concentration tubulin dimers assembled into conical-frustum-spirals of increasing length, containing up to three helical turns. The subunits with three helical turns were then assembled into tubules through base-to-top packing and formed antiparallel bundles of tubulin conicalspiral tubules in a distorted hexagonal symmetry. Further increase of the spermine concentration led to inverted tubulin tubules assembled in hexagonal bundles. Time-resolved experiments revealed that tubulin assemblies formed at higher spermine concentrations assembled from intermediates, similar to those formed at low spermine concentrations. These results are distinct from the classical transition between twisted ribbons, helical, and tubular assemblies, and provide insight into the versatile morphologies that tubulin can form. Furthermore, they may contribute to our understanding of the interactions that control the composition and construction of protein-based biomaterials.

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