Lee Jung-Kul, Koo Bong-Seong, Kim Sang-Yong, Hyun Hyung-Hwan
BioNgene Co. Ltd., Jongro-Ku, Seoul, Korea.
Appl Environ Microbiol. 2003 Aug;69(8):4438-47. doi: 10.1128/AEM.69.8.4438-4447.2003.
Mannitol biosynthesis in Candida magnoliae HH-01 (KCCM-10252), a yeast strain that is currently used for the industrial production of mannitol, is catalyzed by mannitol dehydrogenase (MDH) (EC 1.1.1.138). In this study, NAD(P)H-dependent MDH was purified to homogeneity from C. magnoliae HH-01 by ion-exchange chromatography, hydrophobic interaction chromatography, and affinity chromatography. The relative molecular masses of C. magnoliae MDH, as determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis and size-exclusion chromatography, were 35 and 142 kDa, respectively, indicating that the enzyme is a tetramer. This enzyme catalyzed both fructose reduction and mannitol oxidation. The pH and temperature optima for fructose reduction and mannitol oxidation were 7.5 and 37 degrees C and 10.0 and 40 degrees C, respectively. C. magnoliae MDH showed high substrate specificity and high catalytic efficiency (k(cat) = 823 s(-1), K(m) = 28.0 mM, and k(cat)/K(m) = 29.4 mM(-1) s(-1)) for fructose, which may explain the high mannitol production observed in this strain. Initial velocity and product inhibition studies suggest that the reaction proceeds via a sequential ordered Bi Bi mechanism, and C. magnoliae MDH is specific for transferring the 4-pro-S hydrogen of NADPH, which is typical of a short-chain dehydrogenase reductase (SDR). The internal amino acid sequences of C. magnoliae MDH showed a significant homology with SDRs from various sources, indicating that the C. magnoliae MDH is an NAD(P)H-dependent tetrameric SDR. Although MDHs have been purified and characterized from several other sources, C. magnoliae MDH is distinguished from other MDHs by its high substrate specificity and catalytic efficiency for fructose only, which makes C. magnoliae MDH the ideal choice for industrial applications, including enzymatic synthesis of mannitol and salt-tolerant plants.
季氏假丝酵母HH-01(KCCM-10252)是一种目前用于工业生产甘露醇的酵母菌株,其甘露醇生物合成由甘露醇脱氢酶(MDH)(EC 1.1.1.138)催化。在本研究中,通过离子交换色谱、疏水相互作用色谱和亲和色谱从季氏假丝酵母HH-01中纯化出了具有高纯度的NAD(P)H依赖性MDH。通过十二烷基硫酸钠-聚丙烯酰胺凝胶电泳和尺寸排阻色谱法测定,季氏假丝酵母MDH的相对分子质量分别为35 kDa和142 kDa,表明该酶是一种四聚体。这种酶催化果糖还原和甘露醇氧化。果糖还原和甘露醇氧化的最适pH和温度分别为7.5和37℃以及10.0和40℃。季氏假丝酵母MDH对果糖表现出高底物特异性和高催化效率(k(cat)=823 s(-1),K(m)=28.0 mM,k(cat)/K(m)=29.4 mM(-1) s(-1)),这可能解释了该菌株中观察到的高甘露醇产量。初始速度和产物抑制研究表明,该反应通过顺序有序的双底物双产物机制进行,并且季氏假丝酵母MDH特异性地转移NADPH的4-pro-S氢,这是短链脱氢酶还原酶(SDR)的典型特征。季氏假丝酵母MDH内部氨基酸序列与来自各种来源的SDR具有显著同源性,表明季氏假丝酵母MDH是一种NAD(P)H依赖性四聚体SDR。虽然已经从其他几个来源纯化并表征了MDH,但季氏假丝酵母MDH与其他MDH的区别在于其仅对果糖具有高底物特异性和催化效率,这使得季氏假丝酵母MDH成为工业应用(包括甘露醇酶促合成和耐盐植物)的理想选择。