Braun P, Végh A P, von Jan M, Strohmann B, Hunter C N, Robert B, Scheer H
Department Biologie 1, Section Botanik, Universität München, Menzinger Str. 67, D-80638 Munich, Germany.
Biochim Biophys Acta. 2003 Oct 17;1607(1):19-26. doi: 10.1016/j.bbabio.2003.08.004.
Intramembrane hydrogen bonding and its effect on the structural integrity of purple bacterial light-harvesting complex 2, LH2, have been assessed in the native membrane environment. A novel hydrogen bond has been identified by Raman resonance spectroscopy between a serine residue of the membrane-spanning region of LH2 alpha-subunit, and the C-13(1) keto carbonyl of bacteriochlorophyll (BChl) B850 bound to the beta-subunit. Replacement of the serine by alanine disrupts this strong hydrogen bond, but this neither alters the strongly red-shifted absorption nor the structural arrangement of the BChls, as judged from circular dichroism. It also decreases only slightly the thermal stability of the mutated LH2 in the native membrane environment. The possibility is discussed that weak H-bonding between the C-13(1) keto carbonyl and a methyl hydrogen of the alanine replacing serine(-4) or the imidazole group of the nearby histidine maintains structural integrity in this very stable bacterial light-harvesting complex. A more widespread occurrence of H-bonding to C-13(1) not only in BChl, but also in chlorophyll proteins, is indicated by a theoretical analysis of chlorophyll/polypeptide contacts at <3.5 A in the high-resolution structure of Photosystem I. Nearly half of the 96 chlorophylls have aa residues suitable as hydrogen bond donors to their keto groups.
在天然膜环境中,已对膜内氢键及其对紫色细菌捕光复合物2(LH2)结构完整性的影响进行了评估。通过拉曼共振光谱法,在LH2α亚基跨膜区域的一个丝氨酸残基与结合在β亚基上的细菌叶绿素(BChl)B850的C-13(1)酮羰基之间鉴定出一种新型氢键。用丙氨酸取代丝氨酸会破坏这种强氢键,但从圆二色性判断,这既不会改变BChls强烈红移的吸收,也不会改变其结构排列。在天然膜环境中,它也只会略微降低突变型LH2的热稳定性。文中讨论了一种可能性,即丙氨酸取代丝氨酸(-4)的甲基氢或附近组氨酸的咪唑基团与C-13(1)酮羰基之间的弱氢键在这种非常稳定的细菌捕光复合物中维持结构完整性。对光系统I高分辨率结构中<3.5 Å的叶绿素/多肽接触进行的理论分析表明,不仅在BChl中,而且在叶绿素蛋白中,与C-13(1)形成氢键的情况更为普遍。96个叶绿素中近一半具有适合作为其酮基氢键供体的氨基酸残基。