Department of Biology, University of Vermont, Burlington, VT 05405, USA.
J Mol Biol. 2010 Jan 15;395(2):340-8. doi: 10.1016/j.jmb.2009.11.021. Epub 2009 Nov 13.
Despite the fundamental role of thick filaments in muscle contraction, little is known about the mechanical behavior of these filaments and how myosin-associated proteins dictate differences between muscle types. In this study, we used atomic force microscopy to study the morphological and mechanical properties of fully hydrated native thick filaments isolated from indirect flight muscle (IFM) of normal and mutant Drosophila lacking flightin (fln(0)). IFM thick filaments from newly eclosed (0-1 h old) wild-type flies have a mean length of 3.04+/-0.05 microm. In contrast, IFM thick filaments from newly eclosed fln(0) flies are more variable in length and, on average, are significantly longer (3.90+/-1.33 microm) than wild-type filaments from flies of the same age. In the absence of flightin, thick filaments can attain lengths >300% of wild-type filaments, indicating that flightin is required for setting the proper filament length in vivo. Filaments lacking flightin are structurally compromised, and filament preparations from fully matured 3- to 5-day-old adult fln(0) IFM yielded fragments of variable length much shorter than 3.20+/-0.04 microm, the length obtained from wild-type flies of similar age. The persistence length, an index of bending stiffness, was calculated from measurements of filament end-to-end length and contour length. We show that the presence of flightin increases persistence length by more than 40% and that wild-type filaments increase in stiffness with age. These results indicate that flightin fulfills an essential role in defining the structural and mechanical properties of IFM thick filaments.
尽管粗丝在肌肉收缩中起着基本作用,但人们对这些细丝的机械性能以及肌球蛋白相关蛋白如何决定肌肉类型的差异知之甚少。在这项研究中,我们使用原子力显微镜研究了从正常和缺乏飞行蛋白(fln(0))的突变果蝇的间接飞行肌(IFM)中分离出的完全水合的天然粗丝的形态和机械特性。新羽化(0-1 小时龄)的野生型果蝇 IFM 粗丝的平均长度为 3.04+/-0.05 微米。相比之下,新羽化的 fln(0) 果蝇 IFM 粗丝的长度变化更大,平均长度(3.90+/-1.33 微米)明显长于同年龄的野生型果蝇的 IFM 粗丝。在没有飞行蛋白的情况下,粗丝可以达到超过野生型丝长度的 300%,表明飞行蛋白是体内设定正确丝长度所必需的。缺乏飞行蛋白的细丝结构受损,完全成熟的 3-5 天大的成年 fln(0) IFM 的细丝制剂产生的片段长度明显短于 3.20+/-0.04 微米,这是从相似年龄的野生型果蝇中获得的长度。持久长度是弯曲刚度的指标,是通过测量细丝的末端到末端长度和轮廓长度来计算的。我们表明,飞行蛋白的存在使持久长度增加了 40%以上,并且野生型细丝的刚度随年龄增长而增加。这些结果表明,飞行蛋白在定义 IFM 粗丝的结构和机械性能方面起着至关重要的作用。