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Assimilating Text-Mining Bio-Informatics Tools to Analyze Cellulase structures

机译:吸收文本挖掘和生物信息学工具分析纤维素酶结构

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Text-mining is one of the best potential way of automatically extracting information from the huge biological literature. To exploit its prospective, the knowledge encrypted in the text should be converted to some semantic representation such as entities and relations, which could be analyzed by machines. But large-scale practical systems for this purpose are rare. But text mining could be helpful for generating or validating predictions. Cellulases have abundant applications in various industries. Cellulose degrading enzymes are cellulases and the same producing bacteria - Bacillus subtilis & fungus Pseudomonas putida were isolated from top soil of Guntur Dt. A.P. India. Absolute cultures were conserved on potato dextrose agar medium for molecular studies. In this paper, we presented how well the text mining concepts can be used to analyze cellulase producing bacteria and fungi, their comparative structures are also studied with the aid of well-establised, high quality standard bioinformatic tools such as Bioedit, Swissport, Protparam, EMBOSSwin with which a complete data on Cellulases like structure, constituents of the enzyme has been obtained.
机译:文本挖掘是自动提取巨大的生物学文献中信息的最佳潜在方法之一。为了利用其前瞻性,文本加密的知识应转换为某些语义表示,例如实体和关系,可以通过机器分析。但是为此目的的大规模实用系统很少见。但是文本挖掘可能有助于生成或验证预测。纤维素酶在各种行业中具有丰富的应用。纤维素降解酶是纤维素酶,并且来自甘杆菌和真菌的枯芽孢杆菌和真菌副植物,从噱头DT的顶部土壤中分离出来。 A.P.印度。对马铃薯葡萄糖琼脂介质保守绝对培养物进行分子研究。在本文中,我们介绍了文本挖掘概念如何用于分析纤维素酶产生细菌和真菌,还借助于良好的建立,高质量的标准生物信息工具等比较结构,如BioEdit,Swissport,Protparam,已经获得了嵌入式纤维素酶的完整数据的骨折,已经获得了酶的成分。

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