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Classification of protein profiles using fuzzy clustering techniques: An application in early diagnosis of oral, cervical and ovarian cancer

机译:使用模糊聚类技术对蛋白质谱进行分类:在口腔癌,子宫颈癌和卵巢癌的早期诊断中的应用

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Present study has brought out a comparison of PCA and fuzzy clustering techniques in classifying protein profiles (chromatogram) of homogenates of different tissue origins: Ovarian, Cervix, Oral cancers, which were acquired using HPLC-LIF (High Performance Liquid Chromatography-Laser Induced Fluorescence) method developed in our laboratory. Study includes 11 chromatogram spectra each from oral, cervical, ovarian cancers as well as healthy volunteers. Generally multivariate analysis like PCA demands clear data that is devoid of day-to-day variation, artifacts due to experimental strategies, inherent uncertainty in pumping procedure which is very common activities during HPLC-LIF experiment. Under these circumstances we demonstrate how fuzzy clustering algorithm like Gath Geva followed by Sammon mapping outperform PCA mapping in classifying various cancers from healthy spectra with classification rate up to 95 % from 60%. Methods are validated using various clustering indexes and shows promising improvement in developing optical pathology like HPLC-LIF for early detection of various cancers in all uncertain conditions with high sensitivity and specificity.
机译:目前的研究对PCA和模糊聚类技术在对不同组织来源的匀浆的蛋白谱(色谱图)进行分类方面进行了比较,这些均质蛋白是使用HPLC-LIF(高效液相色谱-激光诱导荧光)获得的)方法是在我们实验室开发的。研究包括口腔癌,宫颈癌,卵巢癌以及健康志愿者的11个色谱图。通常,多变量分析(例如PCA)需要清晰的数据,这些数据没有日常变化,由于实验策略而导致的假象,泵送过程中固有的不确定性,这是HPLC-LIF实验中非常常见的活动。在这种情况下,我们证明了在从健康光谱对各种癌症进行分类(分类率从60%到高达95%)的过程中,像Gath Geva和Sammon映射之类的模糊聚类算法如何优于PCA映射。使用各种聚类指标对方法进行了验证,这些方法显示出在开发光学病理学(如HPLC-LIF)方面有希望的改进,该技术可在所有不确定条件下以高灵敏度和特异性早期检测各种癌症。

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