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Structural Basis of Stereospecificity in the Bacterial Enzymatic Cleavage of β-Aryl Ether Bonds in Lignin

机译:木质素中β-芳基醚键的细菌酶切反应中立体特异性的结构基础

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摘要

Lignin is a combinatorial polymer comprising monoaromatic units that are linked via covalent bonds. Although lignin is a potential source of valuable aromatic chemicals, its recalcitrance to chemical or biological digestion presents major obstacles to both the production of second-generation biofuels and the generation of valuable coproducts from lignin's monoaromatic units. Degradation of lignin has been relatively well characterized in fungi, but it is less well understood in bacteria. A catabolic pathway for the enzymatic breakdown of aromatic oligomers linked via β-aryl ether bonds typically found in lignin has been reported in the bacterium Sphingobium sp. SYK-6. Here, we present x-ray crystal structures and biochemical characterization of the glutathione-dependent β-etherases, LigE and LigF, from this pathway. The crystal structures show that both enzymes belong to the canonical two-domain fold and glutathione binding site architecture of the glutathione S-transferase family. Mutagenesis of the conserved active site serine in both LigE and LigF shows that, whereas the enzymatic activity is reduced, this amino acid side chain is not absolutely essential for catalysis. The results include descriptions of cofactor binding sites, substrate binding sites, and catalytic mechanisms. Because β-aryl ether bonds account for 50–70% of all interunit linkages in lignin, understanding the mechanism of enzymatic β-aryl ether cleavage has significant potential for informing ongoing studies on the valorization of lignin.
机译:木质素是包含通过共价键连接的单芳族单元的组合聚合物。尽管木质素是有价值的芳香族化学物质的潜在来源,但木质素对化学或生物消化的顽固性构成了第二代生物燃料生产和木质素单芳烃装置有价值的副产物生产的主要障碍。木质素的降解已在真菌中得到了比较好的表征,但在细菌中却鲜为人知。鞘氨醇单胞菌细菌中已经报道了通过木质素中通常发现的经由β-芳基醚键连接的芳香族低聚物的酶促分解的分解代谢途径。 SYK-6。在这里,我们从该途径介绍了谷胱甘肽依赖性β-醚酶,LigE和LigF的X射线晶体结构和生化特征。晶体结构表明这两种酶都属于谷胱甘肽S-转移酶家族的典型的两个结构域折叠和谷胱甘肽结合位点结构。 LigE和LigF中保守的活性位点丝氨酸的诱变表明,虽然酶活性降低,但该氨基酸侧链并不是催化必不可少的。结果包括辅因子结合位点,底物结合位点和催化机理的描述。由于β-芳基醚键占木质素中所有单元间键合的50-70%,因此了解酶促β-芳基醚裂解的机理对于为正在进行的木质素增值研究提供了巨大的潜力。

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