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GFP-Tagged Regulatory Light Chain Monitors Single Myosin Lever-Arm Orientation in a Muscle Fiber

机译:GFP标记的监管轻链监测肌纤维中的单个肌球蛋白杠杆臂方向。

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摘要

Myosin is the molecular motor in muscle-binding actin and executing a power stroke by rotating its lever arm through an angle of ∼70° to translate actin against resistive force. A green fluorescent protein (GFP)-tagged human cardiac myosin regulatory light chain (HCRLC) was constructed to study in situ lever arm orientation one molecule at a time by polarized fluorescence emitted from the GFP probe. The recombinant protein physically and functionally replaced the native RLC on myosin lever arms in the thick filaments of permeabilized skeletal muscle fibers. Detecting single molecules in fibers where myosin concentration reaches 300 μM is accomplished using total internal reflection fluorescence microscopy. With total internal reflection fluorescence, evanescent field excitation, supercritical angle fluorescence detection, and CCD detector pixel size limits detection volume to just a few attoliters. Data analysis manages both the perturbing effect of the TIR interface on probe emission and the effect of high numerical aperture collection of light. The natural myosin concentration gradient in a muscle fiber allows observation of fluorescence polarization from C-term GFP-tagged HCRLC exchanged myosin from regions in the thick filament containing low and high myosin concentrations. In rigor, cross-bridges at low concentration at the end of the thick filament maintain GFP dipole moments at two distinct polar angles relative to the fiber symmetry axis. The lower angle, where the dipole is nearly parallel to fiber axis, is more highly populated than the alternative, larger angle. Cross-bridges at higher concentration in the center of the thick filament are oriented in a homogeneous band at ∼45° to the fiber axis. The data suggests molecular crowding impacts myosin conformation, implying mutual interactions between cross-bridges alter how the muscle generates force. The GFP-tagged RLC is a novel probe to assess single-lever-arm orientation characteristics in situ.
机译:肌球蛋白是肌肉结合肌动蛋白中的分子马达,通过将其杠杆臂旋转约70°角来使肌动蛋白抵抗阻力,从而执行动力冲程。构建了带有绿色荧光蛋白(GFP)标签的人心脏肌球蛋白调节轻链(HCRLC),以通过GFP探针发出的偏振荧光来一次研究一个分子的原位杠杆臂方向。重组蛋白在物理和功能上替代了透化骨骼肌纤维细丝中肌球蛋白杠杆臂上的天然RLC。使用全内反射荧光显微镜可以检测肌球蛋白浓度达到300μM的纤维中的单个分子。借助全内反射荧光,e逝场激发,超临界角荧光检测和CCD检测器像素尺寸,将检测体积限制在几attoliters。数据分析既可以管理TIR接口对探针发射的干扰效应,又可以管理高数值孔径的光收集效应。肌纤维中的自然肌球蛋白浓度梯度允许观察来自C末端GFP标记的HCRLC交换的肌球蛋白的荧光偏振,该荧光蛋白来自粗丝中包含低和高肌球蛋白浓度的区域。严格地说,粗丝末端的低浓度交叉桥将GFP偶极矩保持在相对于纤维对称轴的两个不同的极角处。偶极子几乎平行于光纤轴的较低角度比其他较大角度的填充角度更高。在粗丝中心较高浓度的交叉桥在与纤维轴成〜45°的均匀带中定向。数据表明分子拥挤会影响肌球蛋白的构象,这意味着跨桥之间的相互作用会改变肌肉产生力的方式。带有GFP标记的RLC是一种新颖的探针,可用于原位评估单杠杆臂的定向特性。

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