Chauhan Prakram Singh, Tripathi Satya Prakash, Sangamwar Abhays T, Puri Neena, Sharma Prince, Gupta Naveen
Department of Microbiology, BMS Block, Panjab University South Campus, Chandigarh, India.
Department of Pharmacoinformatics, National Institute of Pharmaceutical Science Education and Research, S.A.S, Nagar, Mohali, Punjab, India.
Appl Microbiol Biotechnol. 2015 Nov;99(21):8917-25. doi: 10.1007/s00253-015-6613-2. Epub 2015 May 13.
An alkali-thermostable β-mannanase gene from Bacillus nealsonii PN-11 was cloned by functional screening of E. coli cells transformed with pSMART/HaeIII genomic library. The ORF encoding mannanase consisted of 1100 bp, corresponding to protein of 369 amino acids and has a catalytic domain belonging to glycoside hydrolase family 5. Cloned mannanase was smaller in size than the native mannanase by 10 kDa. This change in molecular mass could be because of difference in the glycosylation. The tertiary structure of the β-mannanase (MANPN11) was designed and it showed a classical (α/β) TIM-like barrel motif. Active site of MANPN11 was represented by 8 amino acid residues viz., Glu152, Trp189, His217, Tyr219, Glu247, Trp276, Trp285, and Tyr287. Model surface charge of MANPN11 predicted that surface near active site was mostly negative, and the opposite side was positive which might be responsible for the stability of the enzymes at high pH. Stability of MANPN11 at alkaline pH was further supported by the formation of a hydrophobic pocket near active site of the enzyme. To understand the ability of MANPN11 to bind with different substrates, docking studies were performed and found that mannopentose fitted properly into active site and form stable enzyme substrate complex.
通过对用pSMART/HaeIII基因组文库转化的大肠杆菌细胞进行功能筛选,克隆了来自尼尔森芽孢杆菌PN-11的一种碱稳定β-甘露聚糖酶基因。编码甘露聚糖酶的开放阅读框由1100个碱基对组成,对应于369个氨基酸的蛋白质,并且具有属于糖苷水解酶家族5的催化结构域。克隆的甘露聚糖酶在大小上比天然甘露聚糖酶小10 kDa。这种分子量的变化可能是由于糖基化的差异。设计了β-甘露聚糖酶(MANPN11)的三级结构,其显示出经典的(α/β)TIM桶状基序。MANPN11的活性位点由8个氨基酸残基表示,即Glu152、Trp189、His217、Tyr219、Glu247、Trp276、Trp285和Tyr287。MANPN11的模型表面电荷预测活性位点附近的表面大多为负电荷,而另一侧为正电荷,这可能是酶在高pH下稳定性的原因。酶活性位点附近形成疏水口袋进一步支持了MANPN11在碱性pH下的稳定性。为了了解MANPN11与不同底物结合的能力,进行了对接研究,发现甘露五糖能正确地适配到活性位点并形成稳定的酶-底物复合物。