Department of Biochemistry and Cell Biology, Faculty of Biological Sciences, Kazimierz Wielki University in Bydgoszcz, 85-671 Bydgoszcz, Poland.
Int J Mol Sci. 2020 Jun 16;21(12):4285. doi: 10.3390/ijms21124285.
In striated muscle the extent of the overlap between actin and myosin filaments contributes to the development of force. In slow twitch muscle fibers actin filaments are longer than in fast twitch fibers, but the mechanism which determines this difference is not well understood. We hypothesized that tropomyosin isoforms Tpm1.1 and Tpm3.12, the actin regulatory proteins, which are specific respectively for fast and slow muscle fibers, differently stabilize actin filaments and regulate severing of the filaments by cofilin-2. Using in vitro assays, we showed that Tpm3.12 bound to F-actin with almost 2-fold higher apparent binding constant (K) than Tpm1.1. Cofilin2 reduced K of both tropomyosin isoforms. In the presence of Tpm1.1 and Tpm3.12 the filaments were longer than unregulated F-actin by 25% and 40%, respectively. None of the tropomyosins affected the affinity of cofilin-2 for F-actin, but according to the linear lattice model both isoforms increased cofilin-2 binding to an isolated site and reduced binding cooperativity. The filaments decorated with Tpm1.1 and Tpm3.12 were severed by cofilin-2 more often than unregulated filaments, but depolymerization of the severed filaments was inhibited. The stabilization of the filaments by Tpm3.12 was more efficient, which can be attributed to lower dynamics of Tpm3.12 binding to actin.
在横纹肌中,肌动蛋白和肌球蛋白丝之间的重叠程度有助于力的产生。在慢收缩肌纤维中,肌动蛋白丝比快收缩纤维长,但确定这种差异的机制尚不清楚。我们假设肌球蛋白调节蛋白肌球蛋白调节蛋白 1.1(Tpm1.1)和 Tpm3.12 两种肌球蛋白调节蛋白异构体,分别特异性地存在于快肌纤维和慢肌纤维中,以不同的方式稳定肌动蛋白丝,并调节肌动蛋白丝的断裂。使用体外测定法,我们表明 Tpm3.12 与 F-肌动蛋白的结合表观结合常数(K)比 Tpm1.1 高近 2 倍。肌动蛋白丝切割蛋白 2(Cofilin2)降低了两种肌球蛋白调节蛋白异构体的 K。在 Tpm1.1 和 Tpm3.12 的存在下,纤维比未调节的 F-肌动蛋白分别长 25%和 40%。两种肌球蛋白调节蛋白都不影响 Cofilin2 与 F-肌动蛋白的亲和力,但根据线性晶格模型,两种异构体都增加了 Cofilin2 与单个结合位点的结合,并降低了结合协同性。与 Tpm1.1 和 Tpm3.12 结合的纤维比未调节的纤维更容易被 Cofilin2 切割,但切割后的纤维的解聚被抑制。Tpm3.12 对纤维的稳定作用更有效,这可能归因于 Tpm3.12 与肌动蛋白结合的动力学较低。