首页> 外文OA文献 >Biodegradation of All Stereoisomers of the EDTA Substitute Iminodisuccinate by Agrobacterium tumefaciens BY6 Requires an Epimerase and a Stereoselective C-N Lyase
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Biodegradation of All Stereoisomers of the EDTA Substitute Iminodisuccinate by Agrobacterium tumefaciens BY6 Requires an Epimerase and a Stereoselective C-N Lyase

机译:根癌农杆菌BY6对EDTA取代亚氨基二琥珀酸酯的所有立体异构体的生物降解都需要一种差向异构酶和一种立体选择性C-N裂解酶

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摘要

Biodegradation tests according to Organization for Economic Cooperation and Development standard 301F (manometric respirometry test) with technical iminodisuccinate (IDS) revealed ready biodegradability for all stereoisomers of IDS. The IDS-degrading strain Agrobacterium tumefaciens BY6 was isolated from activated sludge. The strain was able to grow on each IDS isomer as well as on Fe2+-, Mg2+-, and Ca2+-IDS complexes as the sole carbon, nitrogen, and energy source. In contrast, biodegradation of and growth on Mn2+-IDS were rather scant and very slow on Cu2+-IDS. Growth and turnover experiments with A. tumefaciens BY6 indicated that the isomer R,S-IDS is the preferred substrate. The IDS-degrading enzyme system isolated from this organism consists of an IDS-epimerase and a C-N lyase. The C-N lyase is stereospecific for the cleavage of R,S-IDS, generating d-aspartic acid and fumaric acid. The decisive enzyme for S,S-IDS and R,R-IDS degradation is the epimerase. It transforms S,S-IDS and R,R-IDS into R,S-IDS. Both enzymes do not require any cofactors. The two enzymes were purified and characterized, and the N-termini were sequenced. The purified lyase and also the epimerase catalyzed the transformation of alkaline earth metal-IDS complexes, while heavy metal-IDS complexes were transformed rather slowly or not at all. The observed mechanism for the complete mineralization of all IDS isomers involving an epimerase offers an interesting possibility of funneling all stereoisomers into a catabolic pathway initiated by a stereoselective lyase.
机译:根据经济合作与发展组织标准301F的生物降解测试(测压呼吸法测试),使用亚氨基二琥珀酸酯(IDS)技术,发现IDS的所有立体异构体均具有良好的生物降解能力。从活性污泥中分离出IDS降解菌株根癌农杆菌BY6。该菌株能够在每个IDS异构体以及Fe2 +-,Mg2 +-和Ca2 + -IDS复合物上生长,作为唯一的碳,氮和能源。相反,Mn2 + -IDS的生物降解和生长很少,而在Cu2 + -IDS上则很慢。用根癌农杆菌BY6进行的生长和更新实验表明,异构体R,S-IDS是优选的底物。从该生物中分离出的IDS降解酶系统由IDS-表异构酶和C-N裂解酶组成。 C-N裂合酶对R,S-IDS的切割具有立体特异性,产生d-天冬氨酸和富马酸。 S,S-IDS和R,R-IDS降解的决定性酶是差向异构酶。它将S,S-IDS和R,R-IDS转换为R,S-IDS。两种酶都不需要任何辅助因子。纯化并表征了这两种酶,并对N-末端进行了测序。纯化的裂解酶以及差向异构酶催化了碱土金属-IDS配合物的转化,而重金属-​​IDS配合物的转化相当缓慢或根本没有转化。观察到的涉及差向异构酶的所有IDS异构体完全矿化的机制提供了将所有立体异构体集中到由立体选择性裂解酶引发的分解代谢途径中的有趣可能性。

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