Institute of Molecular Biophysics, Florida State University, Tallahassee, FL 32306-4380.
Department of Physics, Florida State University, Tallahassee, FL 32306-4380.
Proc Natl Acad Sci U S A. 2021 Apr 6;118(14). doi: 10.1073/pnas.2024151118.
The atomic structure of the complete myosin tail within thick filaments isolated from flight muscle is described and compared to crystal structures of recombinant, human cardiac myosin tail segments. Overall, the agreement is good with three exceptions: the proximal S2, in which the filament has heads attached but the crystal structure doesn't, and skip regions 2 and 4. At the head-tail junction, the tail α-helices are asymmetrically structured encompassing well-defined unfolding of 12 residues for one myosin tail, ∼4 residues of the other, and different degrees of α-helix unwinding for both tail α-helices, thereby providing an atomic resolution description of coiled-coil "uncoiling" at the head-tail junction. Asymmetry is observed in the nonhelical C termini; one C-terminal segment is intercalated between ribbons of myosin tails, the other apparently terminating at Skip 4 of another myosin tail. Between skip residues, crystal and filament structures agree well. Skips 1 and 3 also agree well and show the expected α-helix unwinding and coiled-coil untwisting in response to skip residue insertion. Skips 2 and 4 are different. Skip 2 is accommodated in an unusual manner through an increase in α-helix radius and corresponding reduction in rise/residue. Skip 4 remains helical in one chain, with the other chain unfolded, apparently influenced by the acidic myosin C terminus. The atomic model may shed some light on thick filament mechanosensing and is a step in understanding the complex roles that thick filaments of all species undergo during muscle contraction.
完整肌球蛋白尾部在飞行肌中从粗丝中分离出来的原子结构被描述,并与重组的人心脏肌球蛋白尾部片段的晶体结构进行比较。总体而言,一致性很好,有三个例外:近端 S2,其中细丝有头部附着,但晶体结构没有,以及跳过区域 2 和 4。在头尾部连接处,尾部α-螺旋结构不对称,一个肌球蛋白尾部的 12 个残基明显展开,另一个肌球蛋白尾部的 4 个残基展开,两个尾部α-螺旋的α-螺旋展开程度不同,从而提供了在头尾部连接处缠绕的螺旋“展开”的原子分辨率描述。非螺旋 C 末端存在不对称性;一个 C 末端片段夹在肌球蛋白尾部的带状物之间,另一个显然在另一个肌球蛋白尾部的 Skip 4 终止。在跳过残基之间,晶体和细丝结构很好地吻合。跳过 1 和 3 也很好地吻合,并显示出预期的α-螺旋展开和螺旋缠绕的解绕,以响应跳过残基的插入。跳过 2 和 4 则不同。跳过 2 通过增加α-螺旋半径和相应减少上升/残基来以不寻常的方式适应。跳过 4 在一个链中保持螺旋状,另一个链展开,显然受酸性肌球蛋白 C 末端的影响。原子模型可能会揭示一些关于粗丝机械感应的信息,并且是理解所有物种的粗丝在肌肉收缩过程中经历的复杂作用的一步。