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Characterization of homologous sphingosine-1-phosphate lyase isoforms in the bacterial pathogen Burkholderia pseudomallei

机译:细菌性病原体假苹果伯克霍尔德菌中同源神经鞘氨醇-1-磷酸裂合酶同工型的表征

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摘要

Sphingolipids (SLs) are ubiquitous elements in eukaryotic membranes and are also found in some bacterial and viral species. As well as playing an integral structural role, SLs also act as potent signaling molecules involved in numerous cellular pathways and have been linked to many human diseases. A central SL signaling molecule is sphingosine-1-phosphate (S1P), whose breakdown is catalyzed by S1P lyase (S1PL), a pyridoxal 5′-phosphate (PLP)-dependent enzyme that catalyzes the cleavage of S1P to (2E)-hexadecenal (2E-HEX) and phosphoethanolamine. Here, we show that the pathogenic bacterium, Burkholderia pseudomallei K96243, encodes two homologous proteins (S1PL2021 and S1PL2025) that display moderate sequence identity to known eukaryotic and prokaryotic S1PLs. Using an established MS-based methodology, we show that recombinant S1PL2021 is catalytically active. We also used recombinant human fatty aldehyde dehydrogenase to develop a spectrophotometric enzyme-coupled assay to detect 2E-HEX formation and measure the kinetic constants of the two B. pseudomallei S1PL isoforms. Furthermore, we determined the X-ray crystal structure of the PLP-bound form of S1PL2021 at 2.1 Å resolution revealing that the enzyme displays a conserved structural fold and active site architecture comparable with known S1PLs. The combined data suggest that B. pseudomallei has the potential to degrade host SLs in a S1PL-dependent manner.
机译:鞘脂(SLs)是真核膜中普遍存在的元素,也存在于某些细菌和病毒物种中。除了发挥不可或缺的结构作用外,SL还充当涉及许多细胞途径的有效信号分子,并与许多人类疾病有关。一个主要的SL信号分子是1磷酸鞘氨醇(S1P),其分解是由S1P裂解酶(S1PL)催化的,S1P裂解酶是一种依赖吡ido醛的5'-磷酸(PLP)依赖性酶,可催化S1P裂解为(2E)-十六烯醛(2E-HEX)和磷酸乙醇胺。在这里,我们显示了致病细菌伯克霍尔德氏菌假单胞菌K96243,编码两个同源蛋白(S1PL2021和S1PL2025),它们与已知的真核和原核S1PLs具有中等序列同一性。使用建立的基于MS的方法,我们显示重组S1PL2021具有催化活性。我们还使用重组人脂肪醛脱氢酶开发了一种分光光度法酶联测定法,以检测2E-HEX的形成并测量两个假苹果芽孢杆菌S1PL亚型的动力学常数。此外,我们以2.1分辨率确定了S1PL2021的PLP结合形式的X射线晶体结构,揭示了该酶显示出与已知S1PL相当的保守结构折叠和活性位点结构。组合的数据表明,假小芽孢杆菌具有以S1PL依赖性方式降解宿主SL的潜力。

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