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纤维体:具有钙依赖性的蛋白质复合物,有望成为“智能”生物材料。

Forisomes: calcium-powered protein complexes with potential as 'smart' biomaterials.

机构信息

Plant Molecular Biology Group, International Centre for Genetic Engineering and Biotechnology, Aruna Asaf Ali Marg, New Delhi-110067, India.

出版信息

Trends Biotechnol. 2010 Feb;28(2):102-10. doi: 10.1016/j.tibtech.2009.11.005. Epub 2009 Dec 11.

Abstract

Sieve tubes in legumes contain forisomes, which are spindle-like bodies that are composed of ATP-independent, mechanically active proteins. Upon injury, forisomes occlude sieve tubes by dispersion and thus, help to prevent loss of nutrient-rich transport sap. Forisome enlargement by dispersion is brought about by Ca2+-induced conformational changes that confer radial expansion and longitudinal contraction. Forisomes recontract upon Ca2+ removal. In vitro, forisomes reversibly disperse and contract in the presence or absence of Ca2+, respectively, and at distinct pHs. Recently, forisomes have received renewed attention because of their unique capacity to convert chemical into mechanical energy independent of high-energy organic compounds. Forisome-based 'smart' materials can be used to produce self-powered monitoring and diagnostic systems. Here, we focus on physiological, chemical and physical aspects of forisomes and discuss their potential as biomimetic devices.

摘要

豆科植物的筛管含有胞器,它是一种由 ATP 非依赖性、具有机械活性的蛋白质组成的类似纺锤的结构。在受到伤害时,胞器通过分散而阻塞筛管,从而有助于防止富含营养的运输汁液的流失。胞器通过分散而扩大是由 Ca2+诱导的构象变化引起的,这种变化赋予了径向扩张和纵向收缩。Ca2+去除后,胞器会重新收缩。在体外,胞器在有或没有 Ca2+的情况下分别在不同的 pH 值下可逆地分散和收缩。最近,由于胞器具有将化学能转化为机械能的独特能力,而这种能力独立于高能有机化合物,因此受到了新的关注。基于胞器的“智能”材料可用于生产自供电的监测和诊断系统。在这里,我们重点讨论胞器的生理、化学和物理方面,并讨论它们作为仿生设备的潜力。

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