芽殖酵母丝切蛋白促进原肌球蛋白结合肌动蛋白丝周转的内在能力。
Intrinsic capability of budding yeast cofilin to promote turnover of tropomyosin-bound actin filaments.
作者信息
Fan Xiaoxue, Martin-Brown Skylar, Florens Laurence, Li Rong
机构信息
The Stowers Institute for Medical Research, Kansas City, MO, USA.
出版信息
PLoS One. 2008;3(11):e3641. doi: 10.1371/journal.pone.0003641. Epub 2008 Nov 4.
The ability of actin filaments to function in cell morphogenesis and motility is closely coupled to their dynamic properties. Yeast cells contain two prominent actin structures, cables and patches, both of which are rapidly assembled and disassembled. Although genetic studies have shown that rapid actin turnover in patches and cables depends on cofilin, how cofilin might control cable disassembly remains unclear, because tropomyosin, a component of actin cables, is thought to protect actin filaments against the depolymerizing activity of ADF/cofilin. We have identified cofilin as a yeast tropomyosin (Tpm1) binding protein through Tpm1 affinity column and mass spectrometry. Using a variety of assays, we show that yeast cofilin can efficiently depolymerize and sever yeast actin filaments decorated with either Tpm1 or mouse tropomyosins TM1 and TM4. Our results suggest that yeast cofilin has the intrinsic ability to promote actin cable turnover, and that the severing activity may rely on its ability to bind Tpm1.
肌动蛋白丝在细胞形态发生和运动中发挥功能的能力与其动态特性密切相关。酵母细胞含有两种突出的肌动蛋白结构,即肌动蛋白电缆和肌动蛋白斑,二者都会快速组装和拆卸。虽然遗传学研究表明,肌动蛋白斑和肌动蛋白电缆中的肌动蛋白快速周转依赖于丝切蛋白,但丝切蛋白如何控制肌动蛋白电缆的拆卸仍不清楚,因为肌动蛋白电缆的一个组成成分原肌球蛋白被认为可保护肌动蛋白丝免受ADF/丝切蛋白解聚活性的影响。我们通过原肌球蛋白1亲和柱和质谱鉴定出丝切蛋白是酵母原肌球蛋白(Tpm1)结合蛋白。使用多种检测方法,我们发现酵母丝切蛋白能够有效解聚并用Tpm1或小鼠原肌球蛋白TM1和TM4修饰的酵母肌动蛋白丝,并将其切断。我们的结果表明,酵母丝切蛋白具有促进肌动蛋白电缆周转的内在能力,且切断活性可能依赖于其与Tpm1结合的能力。
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