Laboratory of Physiology, Department of Evolutionary Biology, University of Florence, 50125 Florence, Italy.
Proc Natl Acad Sci U S A. 2010 Apr 27;107(17):7763-8. doi: 10.1073/pnas.0914782107. Epub 2010 Apr 12.
Understanding of complex biological processes requires knowledge of molecular structures and measurement of their dynamics in vivo. The collective chemomechanical action of myosin molecules (the molecular motors) in the muscle sarcomere represents a paradigmatic example in this respect. Here, we describe a label-free imaging method sensitive to protein conformation in vivo. We employed the order-based contrast enhancement by second-harmonic generation (SHG) for the functional imaging of muscle cells. We found that SHG polarization anisotropy (SPA) measurements report on the structural state of the actomyosin motors, with significant sensitivity to the conformation of myosin. In fact, each physiological/biochemical state we probed (relaxed, rigor, isometric contraction) produced a distinct value of polarization anisotropy. Employing a full reconstruction of the contributing elementary SHG emitters in the actomyosin motor array at atomic scale, we provide a molecular interpretation of the SPA measurements in terms of myosin conformations. We applied this method to the discrimination between attached and detached myosin heads in an isometrically contracting intact fiber. Our observations indicate that isometrically contracting muscle sustains its tetanic force by steady-state commitment of 30% of myosin heads. Applying SPA and molecular structure modeling to the imaging of unstained living tissues provides the basis for a generation of imaging and diagnostic tools capable of probing molecular structures and dynamics in vivo.
理解复杂的生物过程需要了解分子结构,并测量其在体内的动态。在肌肉肌节中肌球蛋白分子(分子马达)的集体化学机械作用就是这方面的一个典范例子。在这里,我们描述了一种对体内蛋白质构象敏感的无标记成像方法。我们采用基于二阶非线性光学的二次谐波产生(SHG)对比度增强,对肌肉细胞进行功能成像。我们发现,SHG 偏振各向异性(SPA)测量报告肌球蛋白的结构状态,对肌球蛋白的构象具有显著的敏感性。事实上,我们探测到的每个生理/生化状态(松弛、僵硬、等长收缩)都产生了独特的偏振各向异性值。通过在原子尺度上对肌球蛋白马达阵列中的贡献的基本 SHG 发射体进行全重构,我们根据肌球蛋白构象对 SPA 测量值进行了分子解释。我们将该方法应用于等长收缩完整纤维中附着和分离肌球蛋白头部的区分。我们的观察表明,等长收缩的肌肉通过 30%的肌球蛋白头部的稳态参与来维持其强直性力。将 SPA 和分子结构建模应用于未染色的活组织成像为能够探测体内分子结构和动态的成像和诊断工具的产生提供了基础。