Wenzel Cory Q, Daniels Craig, Keates Robert A B, Brewer Dyanne, Lam Joseph S
Department of Molecular and Cellular Biology, University of Guelph, Guelph, Ontario, Canada N1G 2W1.
Mol Microbiol. 2005 Sep;57(5):1288-303. doi: 10.1111/j.1365-2958.2004.04767.x.
Di-N-acetylated uronic acid residues are unique sugar moieties observed in the lipopolysaccharides (LPS) of respiratory pathogens including several serotypes of Pseudomonas aeruginosa and several species of Bordetella. WbpD of P. aeruginosa PAO1 (serotype O5) is a putative 3-N-acetyltransferase that has been implicated in the biosynthesis of UDP-2,3-diacetamido-2,3-dideoxy-d-mannuronic acid [UDP-d-Man(2NAc3NAc)A], a precursor for the d-Man(2NAc3NAc)A residues in the B-band O antigen of this bacterium. A chromosomal knockout mutant of wbpD is incapable of producing either long-chain B-band O antigen (> or = 2 repeating units) or semi-rough LPS (lipid A-core + one repeat). Adding wbpD in trans restored LPS production to the wild-type level; this indicates that wbpD is important for biosynthesis of individual B-band O-antigen repeating units. WbpD contains left-handed beta-helical (LbetaH) structure as observed by Conserved Domain analysis and in silico secondary and tertiary structure predictions. This feature suggested that WbpD belongs to the hexapeptide acyltransferase (HexAT) superfamily of enzymes. WbpD was overexpressed as an N-terminally histidine-tagged fusion protein (His6-WbpD) and purified to > 95% purity. The protein was subjected to Far-UV circular dichroism spectroscopy, and the data revealed that WbpD contains left-handed helical structure, which substantiated in silico predictions made earlier. Results from SDS-PAGE, matrix-assisted laser desorption/ionization-time of flight (MALDI-TOF) mass spectrometry (MS), and gel filtration analyses indicated that His6-WbpD has trimeric organization, consistent with the quaternary structure of HexATs. The binding of acetyl-CoA by WbpD was demonstrated by MALDI-TOF MS, suggesting that WbpD is an acetyltransferase that utilizes a direct-transfer reaction mechanism. Incubation of WbpD with acetyl-CoA significantly enhanced the stability of the protein and prevented precipitation over a course of 14 days. As a substrate for studying the enzymatic activity of WbpD is unavailable at present, a structure-based model for the LbetaH domain of WbpD was generated. Comparisons between this model and the LbetaH domains of known HexATs suggested that Lys136 plays a role in acetyl-CoA binding. A K136A site-directed mutant construct could only partially complement the wbpD knockout, and this mutation also reduced the stabilizing effects of acetyl-CoA, while a K136R mutation showed no discernible effect on complementation of the wbpD mutant or the stabilizing effects of acetyl-CoA on the purified mutant protein. A modified pathway was proposed for the biosynthesis of UDP-d-Man(2NAc3NAc)A, in which WbpD is involved in the catalysis of the fourth step by acting as a UDP-2-acetamido-3-amino-2,3-dideoxy-d-glucuronic acid 3-N-acetyltransferase.
二 - N - 乙酰化糖醛酸残基是在呼吸道病原体的脂多糖(LPS)中观察到的独特糖部分,这些病原体包括铜绿假单胞菌的几种血清型以及博德特氏菌属的几种菌种。铜绿假单胞菌PAO1(血清型O5)的WbpD是一种推定的3 - N - 乙酰基转移酶,它与UDP - 2,3 - 二乙酰氨基 - 2,3 - 二脱氧 - D - 甘露糖醛酸[UDP - d - Man(2NAc3NAc)A]的生物合成有关,UDP - d - Man(2NAc3NAc)A是该细菌B带O抗原中d - Man(2NAc3NAc)A残基的前体。wbpD的染色体敲除突变体无法产生长链B带O抗原(≥2个重复单元)或半粗糙型LPS(脂质A - 核心 + 一个重复单元)。通过反式添加wbpD可将LPS产量恢复到野生型水平;这表明wbpD对于单个B带O抗原重复单元的生物合成很重要。通过保守结构域分析以及计算机模拟的二级和三级结构预测发现,WbpD含有左手β - 螺旋(LβH)结构。这一特征表明WbpD属于六肽酰基转移酶(HexAT)超家族的酶。WbpD作为N端带有组氨酸标签的融合蛋白(His6 - WbpD)进行了过表达,并纯化至纯度>95%。对该蛋白进行了远紫外圆二色光谱分析,数据显示WbpD含有左手螺旋结构,这证实了之前的计算机模拟预测。SDS - PAGE、基质辅助激光解吸/电离飞行时间(MALDI - TOF)质谱(MS)和凝胶过滤分析结果表明,His6 - WbpD具有三聚体结构,这与HexATs的四级结构一致。MALDI - TOF MS证实了WbpD与乙酰辅酶A的结合,表明WbpD是一种利用直接转移反应机制的乙酰基转移酶。将WbpD与乙酰辅酶A一起孵育显著增强了蛋白质的稳定性,并在14天内防止了沉淀。由于目前尚无用于研究WbpD酶活性的底物,因此构建了基于结构的WbpD的LβH结构域模型。该模型与已知HexATs的LβH结构域之间的比较表明,Lys136在乙酰辅酶A结合中起作用。K136A定点突变构建体只能部分互补wbpD敲除,并且这种突变还降低了乙酰辅酶A的稳定作用,而K136R突变对wbpD突变体的互补或乙酰辅酶A对纯化突变蛋白的稳定作用没有明显影响。提出了一种UDP - d - Man(2NAc3NAc)A生物合成的修饰途径,其中WbpD作为UDP - 2 - 乙酰氨基 - 3 - 氨基 - 2,3 - 二脱氧 - D - 葡萄糖醛酸3 - N - 乙酰基转移酶参与第四步催化反应。