Hoffmann Katherine M, Million-Perez H Rachael, Merkhofer Richard, Nicholson Hilary, Rowlett Roger S
Department of Chemistry, Gonzaga University , 502 East Boone Avenue, Spokane, Washington 99258, United States.
Biochemistry. 2015 Jan 20;54(2):598-611. doi: 10.1021/bi501116e. Epub 2014 Dec 24.
Haemophilus influenzae β-carbonic anhydrase (HICA) has been reverse-engineered in the allosteric site region to resemble the nonallosteric Pisum sativum enzyme in order to identify critical features of allostery and intersusbunit communication. Three variants (W39V/G41A, P48S/A49P, and W39V/G41A/P48S/A49P) were identified, through a comparison with a crystal structure of nonallosteric P. sativum β-carbonic anhydrase (PSCA, PDB 1EKJ ), to potentially revert HICA to a nonallosteric enzyme. The W39V/G41A and P48S/A49P mutations decreased the apparent kcat/Km proton dependence from 4 to 2 and 1, respectively, increasing the overall maximal kcat/Km to 16 ± 2 μM(-1) s(-1) (380% of wild type) and 17 ± 3 μM(-1) s(-1) (405% of wild type). The pKa values of the metal-bound water molecule based on the pH-rate profile kinetics (8.32 ± 0.04 for W39V/G41A and 8.3 ± 0.1 for P48S/A49P) were also slightly higher than that for the wild-type enzyme (7.74 ± 0.04). The P48S/A49P variant has lost all pH-rate cooperativity. The W39V/G41A/P48S/A49P variant's kinetics were unusual and were fit with a log-linear function with a slope 0.9 ± 0.2. The crystal structure of the W39V/G41A variant revealed an active site very similar to the T-state wild-type oligomer with bicarbonate trapped in the escort site. By contrast, the X-ray crystal structure of a proline shift variant (P48S/A49P) reveals that it has adopted an active site conformation nearly identical to that of nonallosteric β-carbonic anhydrase (R-state) for one chain, including a tight association with the dimer-exchanged N-terminal helices; the second chain in the asymmetric unit is associated in a biologically relevant oligomer, but it adopts a T-state conformation that is not capped by dimer-exchanged N-terminal helices. The hybrid R/T nature of HICA P48S/A49P structurally recapitulates the interruption of pH-rate cooperativity observed for this variant. Comparison of the conformations of the R and T chains of P48S/A49P suggests a new hypothesis to explain HICA allosteric communication that is mediated by the N-terminal helices and anion binding at the dimer interface.
流感嗜血杆菌β - 碳酸酐酶(HICA)已在变构位点区域进行反向工程改造,使其类似于非变构的豌豆碳酸酐酶,以确定变构和亚基间通讯的关键特征。通过与非变构豌豆β - 碳酸酐酶(PSCA,PDB 1EKJ)的晶体结构比较,鉴定出三个变体(W39V/G41A、P48S/A49P和W39V/G41A/P48S/A49P),它们有可能将HICA转变为非变构酶。W39V/G41A和P48S/A49P突变分别将表观kcat/Km质子依赖性从4降至2和1,使总体最大kcat/Km增加到16±2 μM⁻¹ s⁻¹(野生型的380%)和17±3 μM⁻¹ s⁻¹(野生型的405%)。基于pH - 速率曲线动力学的金属结合水分子的pKa值(W39V/G41A为8.32±0.04,P48S/A49P为8.3±0.1)也略高于野生型酶(7.74±0.04)。P48S/A49P变体已失去所有pH - 速率协同性。W39V/G41A/P48S/A49P变体的动力学异常,符合斜率为0.9±0.2的对数线性函数。W39V/G41A变体的晶体结构显示其活性位点与T态野生型寡聚体非常相似,碳酸氢盐被困在护送位点。相比之下,脯氨酸移位变体(P48S/A49P)的X射线晶体结构表明,对于一条链,它采用了与非变构β - 碳酸酐酶(R态)几乎相同的活性位点构象,包括与二聚体交换的N端螺旋紧密结合;不对称单元中的第二条链与生物学相关的寡聚体相关,但它采用的T态构象未被二聚体交换的N端螺旋覆盖。HICA P48S/A49P的R/T混合性质在结构上概括了该变体观察到的pH - 速率协同性的中断。P48S/A49P的R链和T链构象比较提出了一个新的假说来解释由N端螺旋和二聚体界面处的阴离子结合介导的HICA变构通讯。