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首页> 外文期刊>Biochemistry >Intersubunit communication in hybrid hexamers of K89L/A163G/S380A and C320S mutants of glutamate dehydrogenase from Clostridium symbiosum
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Intersubunit communication in hybrid hexamers of K89L/A163G/S380A and C320S mutants of glutamate dehydrogenase from Clostridium symbiosum

机译:共生梭状芽孢杆菌谷氨酸脱氢酶K89L / A163G / S380A和C320S突变体六聚体间的亚基通讯

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The triple mutant K89L/A163G/S380A (inactive with glutamate but active with L-Nle and L-Met) and C320S (fully active with glutamate, entirely inactive with L-Nle and L-Met, and also lacking reactive cysteine) mutant of glutamate dehydrogenase (EC 1.4.1.2) of Clostridium symbiosum could be completely denatured by urea with the loss of structure and activity. The mutants denatured by urea could be reassociated to give stable hexamers with recovery of activity of approximately 67% by dilution in 0.1 M potassium phosphate buffer (pH 7.0) containing 2 mM NAD+. The native, urea-denatured, and renatured states of mutant enzymes were characterized by size exclusion chromatography on FPLC and native PAGE. Intersubunit hybrid hexamers containing five subunits of triple mutant and one subunit of C320S mutant were constructed by in vitro subunit hybridization followed by affinity chromatography. Kinetic analysis showed that a 5:1 hybrid hexamer, with only one C320S subunit able to bind NAD+ after DTNB modification, shows classical Michaelis-Menten kinetics with regard to NAD+. This contrasts with the apparent negative co-operativity shown by pure C320S hexamers and suggests that the interaction in NAD+ binding among subunits is eliminated in the hybrid. After removal of thionitrobenzoate, however, all of the subunits in the hybrid are able to bind NAD+. In this state the hybrid enzyme showed slight deviation from classical behavior with regard to NAD+, indicating reintroduction of some level of allosteric interaction. The hybrid hexamer also showed much reduced co-operativity with glutamate at pH 8.8, with a Hill coefficient of 3 for DTNB-treated hybrid (as compared to 5.2 for the pure C320S mutant) and 2.2 for the untreated hybrid. The fact that co-operativity in glutamate binding is not entirely eliminated correlates with evidence that the triple mutant subunits, though inactive toward glutamate, can nevertheless still bind this amino acid.
机译:的三重突变体K89L / A163G / S380A(对谷氨酸不活泼,但对L-Nle和L-Met有活性)和C320S(对谷氨酸完全活泼,对L-Nle和L-Met完全不活,也缺乏反应性半胱氨酸)突变体共生梭菌的谷氨酸脱氢酶(EC 1.4.1.2)可被尿素完全变性而失去结构和活性。通过在含有2 mM NAD +的0.1 M磷酸钾缓冲液(pH 7.0)中稀释,可以将尿素变性的突变体重新缔合,得到稳定的六聚体,其活性回收率约为67%。通过FPLC和天然PAGE上的尺寸排阻色谱法表征突变酶的天然,尿素变性和变性状态。通过体外亚基杂交,然后进行亲和层析,构建了包含五个三重突变体亚基和一个C320S突变体亚基的亚基间杂合六聚体。动力学分析表明,在DTNB修饰后,只有一个C320S亚基能够结合NAD +的5:1杂合六聚体显示了关于NAD +的经典米利斯-门腾动力学。这与纯C320S六聚体表现出的明显的负协同性相反,并表明在杂种中消除了亚基之间NAD +结合的相互作用。但是,除去硫代硝基苯甲酸酯后,杂种中的所有亚基都能够结合NAD +。在这种状态下,杂合酶在NAD +方面显示出与经典行为略有偏离,表明重新引入了一定水平的变构相互作用。在pH 8.8时,杂合六聚体还显示出与谷氨酸的协同作用大大降低,DTNB处理的杂合体的Hill系数为3(纯C320S突变体为5.2,未处理的杂合体为2.2)。谷氨酸结合中的协同作用没有完全消除的事实与以下事实相关:三倍突变体亚基尽管对谷氨酸无活性,但仍然可以结合该氨基酸。

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