Chaudhary Nikhil, Gupta Ankit, Gupta Sudheer, Sharma Vineet K
Department of Biological Sciences, Indian Institute of Science Education and Research, Bhopal, Madhya Pradesh, India.
PeerJ. 2017 Aug 28;5:e3497. doi: 10.7717/peerj.3497. eCollection 2017.
In light of the rapid decrease in fossils fuel reserves and an increasing demand for energy, novel methods are required to explore alternative biofuel production processes to alleviate these pressures. A wide variety of molecules which can either be used as biofuels or as biofuel precursors are produced using microbial enzymes. However, the common challenges in the industrial implementation of enzyme catalysis for biofuel production are the unavailability of a comprehensive biofuel enzyme resource, low efficiency of known enzymes, and limited availability of enzymes which can function under extreme conditions in the industrial processes.
We have developed a comprehensive database of known enzymes with proven or potential applications in biofuel production through text mining of PubMed abstracts and other publicly available information. A total of 131 enzymes with a role in biofuel production were identified and classified into six enzyme classes and four broad application categories namely 'Alcohol production', 'Biodiesel production', 'Fuel Cell' and 'Alternate biofuels'. A prediction tool 'Benz' was developed to identify and classify novel homologues of the known biofuel enzyme sequences from sequenced genomes and metagenomes. 'Benz' employs a hybrid approach incorporating HMMER 3.0 and RAPSearch2 programs to provide high accuracy and high speed for prediction.
Using the Benz tool, 153,754 novel homologues of biofuel enzymes were identified from 23 diverse metagenomic sources. The comprehensive data of curated biofuel enzymes, their novel homologs identified from diverse metagenomes, and the hybrid prediction tool Benz are presented as a web server which can be used for the prediction of biofuel enzymes from genomic and metagenomic datasets. The database and the Benz tool is publicly available at http://metabiosys.iiserb.ac.in/biofueldb& http://metagenomics.iiserb.ac.in/biofueldb.
鉴于化石燃料储备的迅速减少以及能源需求的不断增加,需要新的方法来探索替代生物燃料生产工艺,以缓解这些压力。利用微生物酶可以生产多种可用作生物燃料或生物燃料前体的分子。然而,酶催化用于生物燃料生产的工业实施中的常见挑战是缺乏全面的生物燃料酶资源、已知酶的效率低以及在工业过程中能在极端条件下起作用的酶的可用性有限。
我们通过对PubMed摘要和其他公开可用信息进行文本挖掘,开发了一个关于在生物燃料生产中具有已证实或潜在应用的已知酶的综合数据库。共鉴定出131种在生物燃料生产中起作用的酶,并将其分为六个酶类和四个广泛的应用类别,即“酒精生产”、“生物柴油生产”、“燃料电池”和“替代生物燃料”。开发了一种预测工具“Benz”,用于从已测序的基因组和宏基因组中识别和分类已知生物燃料酶序列的新同源物。“Benz”采用结合HMMER 3.0和RAPSearch2程序的混合方法,以提供高精度和高速度的预测。
使用Benz工具,从23种不同的宏基因组来源中鉴定出153,754种生物燃料酶的新同源物。经过整理的生物燃料酶的综合数据、从不同宏基因组中鉴定出的它们的新同源物以及混合预测工具Benz以网络服务器的形式呈现,可用于从基因组和宏基因组数据集中预测生物燃料酶。该数据库和Benz工具可在http://metabiosys.iiserb.ac.in/biofueldb&http://metagenomics.iiserb.ac.in/biofueldb上公开获取。