Materials Department, Physics Department, Molecular, Cellular, and Developmental Biology Department, University of California, Santa Barbara, CA 93106, USA.
Department of Bio and Brain Engineering, Korea Advanced Institute of Science and Technology (KAIST), Daejeon, Republic of Korea.
Nat Mater. 2014 Feb;13(2):195-203. doi: 10.1038/nmat3858. Epub 2014 Jan 19.
Bundles of taxol-stabilized microtubules (MTs)--hollow tubules comprised of assembled αβ-tubulin heterodimers--spontaneously assemble above a critical concentration of tetravalent spermine and are stable over long times at room temperature. Here we report that at concentrations of spermine several-fold higher the MT bundles (B(MT)) quickly become unstable and undergo a shape transformation to bundles of inverted tubulin tubules (B(ITT)), the outside surface of which corresponds to the inner surface of the B(MT) tubules. Using transmission electron microscopy and synchrotron small-angle X-ray scattering, we quantitatively determined both the nature of the B(MT)-to-B(ITT) transformation pathway, which results from a spermine-triggered conformation switch from straight to curved in the constituent taxol-stabilized tubulin oligomers, and the structure of the B(ITT) phase, which is formed of tubules of helical tubulin oligomers. Inverted tubulin tubules provide a platform for studies requiring exposure and availability of the inside, luminal surface of MTs to MT-targeted drugs and MT-associated proteins.
微管束(MTs)由组装的αβ-微管蛋白异二聚体组成的空心管,在四价精胺的临界浓度以上自发组装,并在室温下长时间稳定。在这里,我们报告说,在精胺浓度高出几倍的情况下,MT 束(B(MT))很快变得不稳定,并经历形状转变为反向微管蛋白微管束(B(ITT)),其外表面对应于 B(MT)微管的内表面。使用透射电子显微镜和同步加速器小角 X 射线散射,我们定量确定了 B(MT)到 B(ITT)转变途径的性质,该途径是由构成紫杉醇稳定微管蛋白寡聚物的精胺触发的构象从直链到弯曲的构象开关引起的,以及 B(ITT)相的结构,它由螺旋微管蛋白寡聚物的微管组成。反向微管蛋白微管为需要暴露和提供 MT 靶向药物和 MT 相关蛋白的 MT 内部、内腔表面的研究提供了一个平台。