Department of Microbiology, University of Delhi South Campus, New Delhi 110 021, India.
Bioresour Technol. 2012 Aug;117:360-7. doi: 10.1016/j.biortech.2012.04.034. Epub 2012 Apr 21.
In industrial processes, chemical catalysis is being replaced by enzyme catalysis, since the latter is environmentally benign, non-persistent and cost effective. Microbial xylanases have significant applications in textile, baking, food and feed industries, and in paper and pulp industries for reducing the chlorine requirement. The hazardous chlorine required for bleaching can be reduced up to 25-30% by including an enzymatic step in the pulp bleaching process. The paper pulp bleaching requires xylanases that are active at alkaline pH and elevated temperatures. The enzymes from the cultured microbes do not perform optimally in the paper industry due to their inadequate stability under the process conditions of high temperature and alkaline pH. This review, therefore, deals with the rationale of molecular approaches such as protein engineering for designing xylanases with improved characteristics to suit the process conditions in industries, and prospects and problems.
在工业过程中,化学催化正被酶催化所取代,因为后者对环境友好、非持久性且具有成本效益。微生物木聚糖酶在纺织、烘焙、食品和饲料工业,以及在造纸和纸浆工业中具有重要的应用,可减少对氯的需求。通过在纸浆漂白过程中加入酶步骤,可以将漂白所需的危险氯减少 25-30%。纸浆漂白需要在碱性 pH 值和高温下仍具有活性的木聚糖酶。由于在高温和碱性 pH 值的工艺条件下,培养微生物产生的酶稳定性不足,因此它们在造纸工业中的表现并不理想。因此,本综述讨论了诸如蛋白质工程等分子方法的基本原理,用于设计具有改善特性的木聚糖酶,以适应工业中的工艺条件,以及展望和问题。