Departament de Bioquímica i de Biologia Molecular and Centre d'Estudis en Biofísica, Universitat Autònoma de Barcelona, Barcelona, Spain.
PLoS One. 2012;7(8):e42447. doi: 10.1371/journal.pone.0042447. Epub 2012 Aug 3.
Bacteriorhodopsin has a polar cluster of amino acids surrounding the retinal molecule, which is responsible for light harvesting to fuel proton pumping. From our previous studies, we have shown that threonine 90 is the pivotal amino acid in this polar cluster, both functionally and structurally. In an attempt to perform a phenotype rescue, we have chemically designed a retinal analogue molecule to compensate the drastic effects of the T90A mutation in bacteriorhodopsin. This analogue substitutes the methyl group at position C(13) of the retinal hydrocarbon chain by and ethyl group (20-methyl retinal). We have analyzed the effect of reconstituting the wild-type and the T90A mutant apoproteins with all-trans-retinal and its 20-methyl derivative (hereafter, 13-ethyl retinal). Biophysical characterization indicates that recovering the steric interaction between the residue 90 and retinal, eases the accommodation of the chromophore, however it is not enough for a complete phenotype rescue. The characterization of these chemically engineered chromoproteins provides further insight into the role of the hydrogen bond network and the steric interactions involving the retinal binding pocket in bacteriorhodopsin and other microbial sensory rhodopsins.
菌紫质的视黄醛分子周围有一个氨基酸极性簇,负责收集光线以推动质子泵。根据我们之前的研究,苏氨酸 90 是这个极性簇中具有功能和结构意义的关键氨基酸。为了进行表型挽救,我们通过化学设计一种视黄醛类似物分子来补偿菌紫质中 T90A 突变的剧烈影响。该类似物用乙基取代了视黄醛烃链 C(13)位的甲基(20-甲基视黄醛)。我们分析了用全反式视黄醛及其 20-甲基衍生物(以下简称 13-乙基视黄醛)重新构建野生型和 T90A 突变体脱辅基蛋白的效果。生物物理特性表明,恢复残基 90 和视黄醛之间的空间相互作用,可减轻发色团的适应能力,但不足以完全挽救表型。这些化学工程化的色蛋白的特性为菌紫质和其他微生物感应视紫红质中涉及视黄醛结合口袋的氢键网络和空间相互作用的作用提供了更深入的了解。