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Comparison of Predicted Epimerases and Reductases of the Campylobacter jejunid-altro- and l-gluco-Heptose Synthesis Pathways

机译:空肠弯曲菌的预测差向异构酶和还原酶的比较d-氨基葡萄糖和l-葡萄糖庚糖合成途径

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摘要

Uniquely modified heptoses found in surface carbohydrates of bacterial pathogens are potential therapeutic targets against such pathogens. Our recent biochemical characterization of the GDP-6-deoxy-d-manno- and GDP-6-deoxy-d-altro-heptose biosynthesis pathways has provided the foundation for elucidation of the more complex l-gluco-heptose synthesis pathway of Campylobacter jejuni strain NCTC 11168. In this work we use GDP-4-keto,6-deoxy-d-lyxo-heptose as a surrogate substrate to characterize three enzymes predicted to be involved in this pathway: WcaGNCTC (also known as Cj1427), MlghB (Cj1430), and MlghC (Cj1428). We compare them with homologues involved in d-altro-heptose production: WcaG81176 (formerly WcaG), DdahB (Cjj1430), and DdahC (Cjj1427). We show that despite high levels of similarity, the enzymes have pathway-specific catalytic activities and substrate specificities. MlghB forms three products via C3 and C5 epimerization activities, whereas its DdahB homologue only had C3 epimerase activity along its cognate pathway. MlghC is specific for the double C3/C5 epimer generated by MlghB and produces l-gluco-heptose via stereospecific C4 reductase activity. In contrast, its homologue DdahC only uses the C3 epimer to yield d-altro-heptose via C4 reduction. Finally, we show that WcaGNCTC is not necessary for l-gluco-heptose synthesis and does not affect its production by MlghB and MlghC, in contrast to its homologue WcaG81176, that has regulatory activity on d-altro-heptose synthesis. These studies expand our fundamental understanding of heptose modification, provide new glycobiology tools to synthesize novel heptose derivatives with biomedical applications, and provide a foundation for the structure function analysis of these enzymes.
机译:在细菌病原体的表面碳水化合物中发现的独特修饰的庚糖是针对此类病原体的潜在治疗靶标。我们最近对GDP-6-脱氧-甘露糖-和GDP-6-脱氧-d-庚糖生物合成途径的生化表征为阐明空肠弯曲菌更复杂的l-葡萄糖-庚糖合成途径奠定了基础菌株NCTC11168。在这项工作中,我们使用GDP-4-酮,6-脱氧-d-lyxo-庚糖作为替代底物,表征预计参与该途径的三种酶:WcaGNCTC(也称为Cj1427),MlghB( Cj1430)和MlghC(Cj1428)。我们将它们与参与d-al-庚糖生产的同源物进行比较:WcaG81176(以前为WcaG),DdahB(Cjj1430)和DdahC(Cjj1427)。我们显示,尽管高度相似,但这些酶具有途径特异性催化活性和底物特异性。 MlghB通过C3和C5差向异构活性形成三种产物,而其DdahB同源物沿其同源途径仅具有C3差向异构酶活性。 MlghC对由MlghB生成的双C3 / C5差向异构体具有特异性,并通过立体特异性C4还原酶活性产生1-葡萄糖-庚糖。相反,其同源物DdahC仅使用C3差向异构体通过C4还原产生d-α-庚糖。最后,我们证明,WcaGNCTC不是L-葡萄糖-庚糖合成所必需的,并且与它的同系物WcaG81176相反,它对d-alt-庚糖合成具有调节活性,并且不影响MlghB和MlghC的生产。这些研究拓宽了我们对庚糖修饰的基本认识,提供了新的糖生物学工具,可在生物医学应用中合成新型庚糖衍生物,并为这些酶的结构功能分析奠定了基础。

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