Morris Meredith T, DeBruin Courtney, Yang Zhaoqing, Chambers Jeremy W, Smith Kerry S, Morris James C
Department of Genetics and Biochemistry, Clemson University, 214 Biosystems Research Complex, 51 New Cherry Street, Clemson, SC 29634, USA.
Eukaryot Cell. 2006 Dec;5(12):2014-23. doi: 10.1128/EC.00146-06. Epub 2006 Oct 6.
Trypanosoma brucei expresses two hexokinases that are 98% identical, namely, TbHK1 and TbHK2. Homozygous null TbHK2-/- procyclic-form parasites exhibit an increased doubling time, a change in cell morphology, and, surprisingly, a twofold increase in cellular hexokinase activity. Recombinant TbHK1 enzymatic activity is similar to that of other hexokinases, with apparent Km values for glucose and ATP of 0.09 +/- 0.02 mM and 0.28 +/- 0.1 mM, respectively. The k(cat) value for TbHK1 is 2.9 x 10(4) min(-1). TbHK1 can use mannose, fructose, 2-deoxyglucose, and glucosamine as substrates. In addition, TbHK1 is inhibited by fatty acids, with lauric, myristic, and palmitic acids being the most potent (with 50% inhibitory concentrations of 75.8, 78.4, and 62.4 microM, respectively). In contrast to TbHK1, recombinant TbHK2 lacks detectable enzymatic activity. Seven of the 10 amino acid differences between TbHK1 and TbHK2 lie within the C-terminal 18 amino acids of the polypeptides. Modeling of the proteins maps the C-terminal tails near the interdomain cleft of the enzyme that participates in the conformational change of the enzyme upon substrate binding. Replacing the last 18 amino acids of TbHK2 with the corresponding residues of TbHK1 yields an active recombinant protein with kinetic properties similar to those of TbHK1. Conversely, replacing the C-terminal tail of TbHK1 with the TbHK2 tail inactivates the enzyme. These findings suggest that the C-terminal tail of TbHK1 is important for hexokinase activity. The altered C-terminal tail of TbHK2, along with the phenotype of the knockout parasites, suggests a distinct function for the protein.
布氏锥虫表达两种同源性为98%的己糖激酶,即TbHK1和TbHK2。纯合缺失的TbHK2-/-前循环型寄生虫表现出倍增时间延长、细胞形态改变,令人惊讶的是,细胞己糖激酶活性增加了两倍。重组TbHK1的酶活性与其他己糖激酶相似,葡萄糖和ATP的表观Km值分别为0.09±0.02 mM和0.28±0.1 mM。TbHK1的k(cat)值为2.9×10(4) min(-1)。TbHK1可以使用甘露糖、果糖、2-脱氧葡萄糖和氨基葡萄糖作为底物。此外,TbHK1受到脂肪酸的抑制,月桂酸、肉豆蔻酸和棕榈酸的抑制作用最强(50%抑制浓度分别为75.8、78.4和62.4 microM)。与TbHK1相反,重组TbHK2缺乏可检测到的酶活性。TbHK1和TbHK2之间10个氨基酸差异中的7个位于多肽的C末端18个氨基酸内。蛋白质建模将C末端尾巴定位在酶的结构域间裂隙附近,该裂隙在底物结合时参与酶的构象变化。用TbHK1的相应残基替换TbHK2的最后18个氨基酸可产生一种具有与TbHK1相似动力学特性的活性重组蛋白。相反,用TbHK2的尾巴替换TbHK1的C末端尾巴会使酶失活。这些发现表明TbHK1的C末端尾巴对己糖激酶活性很重要。TbHK2改变的C末端尾巴以及基因敲除寄生虫的表型表明该蛋白具有独特的功能。