Markelz Andrea, Whitmire Scott, Hillebrecht Jay, Birge Robert
Physics Department, University at Buffalo, Buffalo, NY, USA.
Phys Med Biol. 2002 Nov 7;47(21):3797-805. doi: 10.1088/0031-9155/47/21/318.
We discuss the use of terahertz time domain spectroscopy for studies of conformational flexibility and conformational change in biomolecules. Protein structural dynamics are vital to biological function with protein flexibility affecting enzymatic reaction rates and sensory transduction cycling times. Conformational mode dynamics occur on the picosecond timescale and with the collective vibrational modes associated with these large scale structural motions in the 1-100 cm(-1) range. We have performed THz time domain spectroscopy (TTDS) of several biomolecular systems to explore the sensitivity of TTDS to distinguish different molecular species, different mutations within a single species and different conformations of a given biomolecule. We compare the measured absorbances to normal mode calculations and find that the TTDS absorbance reflects the density of normal modes determined by molecular mechanics calculations, and is sensitive to both conformation and mutation. These early studies demonstrate some of the advantages and limitations of using TTDS for the study of biomolecules.
我们讨论了太赫兹时域光谱在生物分子构象灵活性和构象变化研究中的应用。蛋白质结构动力学对生物功能至关重要,蛋白质的灵活性会影响酶促反应速率和传感转导循环时间。构象模式动力学发生在皮秒时间尺度上,且与1-100厘米(-1)范围内这些大规模结构运动相关的集体振动模式有关。我们对几个生物分子系统进行了太赫兹时域光谱(TTDS)研究,以探索TTDS区分不同分子种类、单一物种内不同突变以及给定生物分子不同构象的灵敏度。我们将测量的吸光度与正常模式计算结果进行比较,发现TTDS吸光度反映了由分子力学计算确定的正常模式密度,并且对构象和突变都很敏感。这些早期研究展示了使用TTDS研究生物分子的一些优点和局限性。