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相关概念视频

Microtubules01:18

Microtubules

11.3K
Microtubules are the thickest cytoskeletal filaments with a diameter of 25 nm. In prokaryotic organisms, microtubules are commonly found in locomotory appendages like cilia and flagella. In eukaryotic cells, microtubules form specialized extensions for moving fluid over the surface, like those found in cells lining the intestine.
Microtubules have two structurally similar globular protein subunits: α and β tubulins. In the cytosol, the α and β tubulins form a heterodimer....
11.3K
Microtubules01:35

Microtubules

103.1K
There are three types of cytoskeletal structures in eukaryotic cells—microfilaments, intermediate filaments, and microtubules. With a diameter of about 25 nm, microtubules are the thickest of these fibers. Microtubules carry out a variety of functions that include cell structure and support, transport of organelles, cell motility (movement), and the separation of chromosomes during cell division.
103.1K
Microtubules in Cell Motility01:24

Microtubules in Cell Motility

5.0K
Microtubules are thick hollow cylindrical proteins that help form the cytoskeleton. Microtubules have varied roles in the cell. These filaments help form cellular appendages like cilia and flagella, which are responsible for locomotion. The cilia arise from basal bodies, separated from the main body by a membrane-like structure forming the transition zone. This zone is the gate for the entry of lipids and proteins, creating a unique composition of lipids and proteins in the ciliary membrane and...
5.0K
Microtubules in Cell Motility01:24

Microtubules in Cell Motility

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1.6K
Microtubule Instability02:17

Microtubule Instability

6.4K
Microtubules are hollow cylindrical filaments having a diameter of approximately 25 nm and a length that varies from 200 nm to 25 μm. GTP-bound tubulin subunits form αβ-heterodimers for microtubule assembly. These core building blocks interact longitudinally, polymerizing into protofilaments. The protofilaments then interact with one another through lateral bonding forces to form stable cylindrical microtubules. These cylindrical filaments are dynamic as they undergo repeated...
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Microtubule Instability02:17

Microtubule Instability

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相关实验视频

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Preparation of Segmented Microtubules to Study Motions Driven by the Disassembling Microtubule Ends
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Preparation of Segmented Microtubules to Study Motions Driven by the Disassembling Microtubule Ends

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如何掌握微管子

Julia Schaletzky1, Michael Rape2

  • 1Cytokinetics, 280 East Grand Avenue, South San Francisco, CA 94080, USA.

Cell
|February 27, 2016
PubMed
概括

研究人员开发了一种新的体外系统来研究微管聚胺. 这个系统揭示了这种修改如何精确地控制细胞信息传输.

科学领域:

  • 生物化学
  • 细胞生物学
  • 分子生物学

背景情况:

  • 翻译后的修改调节了微管的动态和功能.
  • 在此之前,由于缺乏明确的体外系统,对诸如多胺化等特异性修饰的研究受到限制.
  • 了解这些修改对于破译细胞信息传输至关重要.

研究的目的:

  • 建立一个用于研究微管聚胺的生物化学平台.
  • 在体外确定微管聚胺的后果.
  • 通过多胺化介导的细胞信号的特异性和定量方面的洞察力.

主要方法:

  • 开发一个新的生物化学平台.
  • 在体外溶解测试以研究微管聚胺化.
  • 改造微管的生物化学和生物物理分析.

主要成果:

  • 成功建立了一个研究微管聚胺的平台.
  • 证明了多重胺对微管行为的影响.
  • 提供了细胞信号中的多胺化特异性和定量性质的证据.

结论:

  • 开发的平台可以对微管聚胺化进行详细的调查.

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  • 微管聚胺在细胞信息传输中起着特定和定量作用.
  • 这项工作为了解细胞生物学中翻译后的修改开辟了新的途径.