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微管与纳税人。

Microtubules and the tax payer.

机构信息

Molecular Cell Biology, Karlsruhe Institute of Technology, Kaiserstr 2, 76128 Karlsruhe, Germany.

出版信息

Protoplasma. 2012 Jun;249 Suppl 2:S81-94. doi: 10.1007/s00709-011-0339-5. Epub 2011 Oct 18.

Abstract

Plant microtubules have evolved into a versatile tool to link environmental signals into flexible morphogenesis. Cortical microtubules define the axiality of cell expansion by control of cellulose orientation. Plant-specific microtubule structures such as preprophase band and phragmoplast determine symmetry and axiality of cell divisions. In addition, microtubules act as sensors and integrators for stimuli such as mechanic load, gravity, but also osmotic stress, cold and pathogen attack. Many of these functions are specific for plants and involve specific proteins or the recruitment of proteins to new functions. The review aims to ventilate the potential of microtubule-based strategies for biotechnological application by highlighting representative case studies. These include reorientation of cortical microtubules to increase lodging resistance, control of microtubule dynamics to alter the gravity-dependent orientation of leaves, the use of microtubules as sensitive thermometers to improve adaptive cold tolerance of chilling and freezing sensitive plants, the reduction of microtubule treadmilling to inhibit cell-to-cell transport of plant viruses, or the modulation of plant defence genes by pharmacological manipulation of microtubules. The specificity of these responses is controlled by a great variety of specific associated proteins opening a wide field for biotechnological manipulation of plant architecture and stress tolerance.

摘要

植物微管已进化成为一种将环境信号链接到灵活形态发生的多功能工具。皮层微管通过控制纤维素取向来定义细胞扩展的轴向性。植物特有的微管结构,如前期带和胞质板,决定了细胞分裂的对称性和轴向性。此外,微管作为传感器和整合器,对机械负荷、重力、渗透压胁迫、寒冷和病原体攻击等刺激做出反应。这些功能中的许多都是植物特有的,涉及特定的蛋白质或蛋白质向新功能的募集。该综述旨在通过突出代表性案例研究,探讨基于微管的策略在生物技术应用中的潜力。这些策略包括重新定向皮层微管以增加抗倒伏性、控制微管动力学以改变叶片对重力的取向、利用微管作为敏感温度计来提高对寒冷和冷冻敏感植物的适应性冷耐受性、减少微管履带式运动以抑制植物病毒的细胞间运输,或通过药理学操纵微管来调节植物防御基因。这些反应的特异性由大量特定的相关蛋白控制,为植物结构和应激耐受性的生物技术操纵开辟了广阔的领域。

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