Tsuge Takeharu, Sato Shun, Hiroe Ayaka, Ishizuka Koya, Kanazawa Hiromi, Shiro Yoshitsugu, Hisano Tamao
Department of Innovative and Engineered Materials, Tokyo Institute of Technology, Midori-ku, Yokohama, Japan
Research Institute for Sustainable Chemistry, National Institute of Advanced Industrial Science and Technology (AIST), Tsukuba, Ibaraki, Japan.
Appl Environ Microbiol. 2015 Dec;81(23):8076-83. doi: 10.1128/AEM.02412-15. Epub 2015 Sep 18.
(R)-Specific enoyl-coenzyme A (enoyl-CoA) hydratases (PhaJs) are capable of supplying monomers from fatty acid β-oxidation to polyhydroxyalkanoate (PHA) biosynthesis. PhaJ1Pp from Pseudomonas putida showed broader substrate specificity than did PhaJ1Pa from Pseudomonas aeruginosa, despite sharing 67% amino acid sequence identity. In this study, the substrate specificity characteristics of two Pseudomonas PhaJ1 enzymes were investigated by site-directed mutagenesis, chimeragenesis, X-ray crystallographic analysis, and homology modeling. In PhaJ1Pp, the replacement of valine with isoleucine at position 72 resulted in an increased preference for enoyl-coenzyme A (CoA) elements with shorter chain lengths. Conversely, at the same position in PhaJ1Pa, the replacement of isoleucine with valine resulted in an increased preference for enoyl-CoAs with longer chain lengths. These changes suggest a narrowing and broadening in the substrate specificity range of the PhaJ1Pp and PhaJ1Pa mutants, respectively. However, the substrate specificity remains broader in PhaJ1Pp than in PhaJ1Pa. Additionally, three chimeric PhaJ1 enzymes, composed from PhaJ1Pp and PhaJ1Pa, all showed significant hydratase activity, and their substrate preferences were within the range exhibited by the parental PhaJ1 enzymes. The crystal structure of PhaJ1Pa was determined at a resolution of 1.7 Å, and subsequent homology modeling of PhaJ1Pp revealed that in the acyl-chain binding pocket, the amino acid at position 72 was the only difference between the two structures. These results indicate that the chain-length specificity of PhaJ1 is determined mainly by the bulkiness of the amino acid residue at position 72, but that other factors, such as structural fluctuations, also affect specificity.
(R)-特异性烯酰辅酶A(烯酰-CoA)水合酶(PhaJs)能够将脂肪酸β-氧化产生的单体供应至聚羟基脂肪酸酯(PHA)生物合成过程中。尽管恶臭假单胞菌的PhaJ1Pp与铜绿假单胞菌的PhaJ1Pa氨基酸序列一致性达67%,但前者显示出比后者更广泛的底物特异性。在本研究中,通过定点诱变、嵌合诱变、X射线晶体学分析和同源建模对两种假单胞菌PhaJ1酶的底物特异性特征进行了研究。在PhaJ1Pp中,第72位的缬氨酸被异亮氨酸取代导致对链长较短的烯酰辅酶A(CoA)元件的偏好增加。相反,在PhaJ1Pa的相同位置,异亮氨酸被缬氨酸取代导致对链长较长的烯酰-CoA的偏好增加。这些变化分别表明PhaJ1Pp和PhaJ1Pa突变体底物特异性范围变窄和变宽。然而,PhaJ1Pp的底物特异性仍比PhaJ1Pa更广泛。此外,由PhaJ1Pp和PhaJ1Pa组成的三种嵌合PhaJ1酶均显示出显著的水合酶活性,且它们的底物偏好处于亲本PhaJ1酶所显示的范围内。PhaJ1Pa的晶体结构以1.7 Å的分辨率确定,随后对PhaJ1Pp的同源建模显示,在酰基链结合口袋中,第72位的氨基酸是两种结构之间的唯一差异。这些结果表明,PhaJ1的链长特异性主要由第72位氨基酸残基的体积决定,但其他因素,如结构波动,也会影响特异性。