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Turning pyridoxal-5'-phosphate-dependent enzymes into thermostable binding proteins: D-Serine dehydratase from baker's yeast as a case study

机译:将吡pyr醛5'-磷酸依赖性酶转变为热稳定结合蛋白:以面包酵母中的D-丝氨酸脱水酶为例

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D-serine dehydratase from Saccharomyces cerevisae is a recently discovered dimeric enzyme catalyzing the P-elimination of D-serine to pyruvate and ammonia. The reaction is highly enantioselective and depends on cofactor pyridoxal-5'-phosphate (PLP) and Zn~(2+). In our work, the aldimine linkage tethering PLP to recombinant, tagged D-serine dehydratase (Dsd) has been reduced by treatment with NaBH_4 so as to yield an inactive form of the holoenzyme (DsdR), which was further treated with a protease in order to remove the amino-terminal purification tag. Fourier Transform infrared (FT-IR) spectroscopic analysis revealed that both the reduced form (DsdR) and the reduced/detagged form (DsdRD) maintain the overall secondary structure of Dsd, but featured a significant increased thermal stability. The observed T_m values for DsdR and for DsdRD shifted to 71.5 ℃ and 73.3 ℃, respectively, resulting in nearly 11 ℃ and 13 ℃ higher than the one measured for Dsd. Furthermore, the analysis of the FT-IR spectra acquired in the presence of D-serine and L-serine indicates that, though catalytically inert, DsdRD retains the ability to enantioselectively bind its natural substrate. Sequence analysis of D-serine dehydratase and other PLP-dependent enzymes also highlighted critical residues involved in PLP binding. In virtue of its intrinsic properties, DsdRD represents an ideal candidate for the design of novel platforms based on stable, non-consuming binding proteins aimed at measuring D-serine levels in biological fluids.
机译:来自酿酒酵母的D-丝氨酸脱水酶是最近发现的二聚酶,其催化D-丝氨酸的P-消除作用为丙酮酸和氨。该反应是高度对映体选择性的,并且取决于辅因子吡x醛-5'-磷酸酯(PLP)和Zn〜(2+)。在我们的工作中,通过NaBH_4处理减少了与PLP标记的重组D-丝氨酸脱水酶(Dsd)连接的醛亚胺键连接,从而产生了无活性形式的全酶(DsdR),该酶随后用蛋白酶进一步处理。去除氨基末端纯化标签。傅立叶变换红外(FT-IR)光谱分析表明,还原形式(DsdR)和还原/脱标记形式(DsdRD)都保留了Dsd的整体二级结构,但具有显着提高的热稳定性。 DsdR和DsdRD的观测T_m值分别移至71.5℃和73.3℃,比Dsd测得的值高了近11℃和13℃。此外,对在D-丝氨酸和L-丝氨酸存在下获得的FT-IR光谱的分析表明,尽管具有催化惰性,但DsdRD仍具有对映选择性结合其天然底物的能力。 D-丝氨酸脱水酶和其他PLP依赖性酶的序列分析也突出了参与PLP结合的关键残基。凭借其固有的特性,DsdRD代表了基于稳定,非消耗性结合蛋白的新型平台设计的理想候选者,该结合蛋白旨在测量生物流体中的D-丝氨酸水平。

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