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Outlining a Strategy for Screening Non-coding RNAs on a Transcriptome Through Support Vector Machines

机译:概述通过支持向量机筛选在转录机上筛选非编码RNA的策略

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Evidences that non-coding RNAs exert functions in organisms accumulate in the literature. Both computational predictions and experimental results have shown that, albeit not coding for a protein product, these transcripts play roles as diverse as catalytic activities and complex gene regulations, suggesting its therapeutic potential when applied to the study of pathogenic organisms. A target for such approach is the fungus Paracoccidioides brasiliensis (Pb), the ethyological agent of paracoccidioidomycosis, whose transcriptome has recently been elucidated. This work reports the compiling of a large training set and implementation of a framework of programs for sequence feature extraction, generating input for a Support Vector Machines algorithm for characterizing the coding potential of transcripts from a transcriptome.
机译:证据表明,非编码的RNA在生物体中发挥作用的证据在文献中积累。计算预测和实验结果都表明,尽管没有编码蛋白质产品,但这些转录物在催化活性和复杂的基因规则中扮演多样化的作用,这表明其在应用于致病生物的研究时其治疗潜力。这种方法的靶标是真菌脱乙酰突硅酰亚胺(Pb),脱酰基酰亚胺霉菌的乙酰丙虫病,其转录组最近被阐明。这项工作报告了对序列特征提取的程序框架的框架进行了编制的,用于从转录组的表征转录物的编码电位的支持向量机算法的输入。

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