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Steric control of bacteriochlorophyll ligation

机译:立体控制细菌叶绿素的连接

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The axial coordination of central Mg2+ ion in chlorophylls is of great structural and functional importance for virtually all photosynthetic chlorophyll proteins; however, little thermodynamic data are available on the ligand binding to these pigments. In the present study, spectral deconvolution of the bacteriochlorophyll Qx band serves to determine the ligand binding equilibria and relationships between thermodynamic parameters of ligand binding, ligand properties, and steric interactions occurring within the pigment. On the basis of the temperature effects on coordination, Delta H degrees, Delta S degrees, and Delta G degrees of binding various types of ligands (acetone, dimethylformamide, imidazole, and pyridine) to diastereoisomeric bacteriochlorophylls were derived from respective van't Hoff's plots. At ambient temperatures, only ligation by imidazole and pyridine occurs spontaneously while Delta G degrees becomes positive for ligation by acetone and dimethylformamide, due to a relatively large entropic effect, which is dominating when the energetic effects of ligation are small. It reflects, in quantitative terms, the control of the equatorial coordination of the Mg2+ ion via the axial coordination: a "hard" free Mg2+ ion is made into a softer center through the coordination of tetrapyrrole. Pigment structural features have comparable effects on the energetic and entropic contributions to the difference of ligation free energy between the diastereoisomers of bacteriochlorophyll. Delta S degrees and Delta H degrees values are consistently lower for the S epimer, most likely due to the steric crowding between bulky substituents. The two epimers show a 5 J center dot mol(-l)center dot K-1 difference in AS' values, regardless of the ligand type, while the difference in Delta H degrees amounts to 1.7 kJ center dot mol(-1), depending on the ligand. Such steric control of ligation would relate to the partial diastereoselectivity of chlorophyll self-assembly and, in particular, the very high diastereoselectivity of the ligation of chlorophylls in photosynthetic proteins.
机译:叶绿素中的中央Mg2 +离子的轴向配位对于几乎所有光合作用的叶绿素蛋白都具有重要的结构和功能重要性。然而,关于配体与这些颜料结合的热力学数据很少。在本研究中,细菌叶绿素Qx带的光谱去卷积用于确定配体结合平衡以及配体结合的热力学参数,配体性质和颜料中发生的空间相互作用之间的关系。根据温度对配位的影响,结合各自的van't Hoff图,得出了将各种类型的配体(丙酮,二甲基甲酰胺,咪唑和吡啶)与非对映体细菌叶绿素结合的ΔH度,ΔS度和ΔG度。 。在环境温度下,由于相对较大的熵效应,仅由咪唑和吡啶进行的连接会自发发生,而Delta G度对于由丙酮和二甲基甲酰胺产生的连接则呈阳性,而当连接的能量效应较小时,则占主导地位。它定量地反映了通过轴向配位对Mg2 +离子的赤道配位的控制:通过四吡咯配位,将一个“硬”的游离Mg2 +离子变成一个较软的中心。色素结构特征对细菌叶绿素的非对映异构体之间的连接自由能的差异在能量和熵的贡献方面具有可比的作用。 S差向异构体的ΔS度和ΔH度值始终较低,这很可能是由于庞大取代基之间的空间拥挤。这两个差向异构体显示AS'值的5 J中心点mol(-1)中心点K-1差异,而与配体类型无关,而Delta H度的差异为1.7 kJ中心点mol(-1),取决于配体。这种对连接的空间控制将涉及叶绿素自组装的部分非对映选择性,尤其涉及光合蛋白中叶绿素的连接的非常高的非对映选择性。

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