Takala Heikki, Lehtivuori Heli, Hammarén Henrik, Hytönen Vesa P, Ihalainen Janne A
Nanoscience Center, Department of Biological and Environmental Science, University of Jyväskylä , 40014 Jyväskylä, Finland.
Biochemistry. 2014 Nov 18;53(45):7076-85. doi: 10.1021/bi501180s. Epub 2014 Nov 7.
Phytochromes consist of several protein domains and a linear tetrapyrrole molecule, which interact as a red-light-sensing system. In this study, size-exclusion chromatography and light-scattering techniques are combined with UV-vis spectroscopy to investigate light-induced changes in dimeric Deinococcus radiodurans bacterial phytochrome (DrBphP) and its subdomains. The photosensory unit (DrCBD-PHY) shows an unusually stable Pfr state with minimal dark reversion, whereas the histidine kinase (HK) domain facilitates dark reversion to the resting state. Size-exclusion chromatography reveals that all phytochrome fragments remain as dimers in the illuminated state and dark state. Still, the elution profiles of all phytochrome fragments differ between the illuminated and dark states. The differences are observed reliably only when the whole UV-vis spectrum is characterized along the elution profile and show more Pfr-state characteristics at later elution volumes in DrBphP and DrCBD-PHY fragments. This implies that the PHY domain has an important role in amplifying and relaying light-induced conformational changes to the HK domain. In the illuminated state, the HK domain appears partially unfolded and prone to form oligomers. The oligomerization of DrBphP can be diminished by converting the molecule back to the resting Pr state by using far-red light.
光敏色素由几个蛋白质结构域和一个线性四吡咯分子组成,它们作为一个红光感应系统相互作用。在本研究中,尺寸排阻色谱法和光散射技术与紫外可见光谱法相结合,以研究二聚体耐辐射球菌细菌光敏色素(DrBphP)及其亚结构域中光诱导的变化。光感受单元(DrCBD-PHY)显示出异常稳定的Pfr状态,暗逆转最小,而组氨酸激酶(HK)结构域促进暗逆转至静止状态。尺寸排阻色谱显示,所有光敏色素片段在光照状态和黑暗状态下均保持二聚体形式。然而,所有光敏色素片段在光照状态和黑暗状态下的洗脱曲线不同。只有当沿洗脱曲线对整个紫外可见光谱进行表征时,才能可靠地观察到这些差异,并且在DrBphP和DrCBD-PHY片段中,在较晚的洗脱体积下显示出更多Pfr状态特征。这意味着PHY结构域在放大和传递光诱导的构象变化至HK结构域方面具有重要作用。在光照状态下,HK结构域似乎部分展开并易于形成寡聚体。通过使用远红光将分子转换回静止的Pr状态,可以减少DrBphP的寡聚化。