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利用神经网络从血清白蛋白的电子自旋共振光谱中识别恶性病变过程。

Recognition of malignant processes with neural nets from ESR spectra of serum albumin.

作者信息

Seidel Peter, Gurachevsky Andrey, Muravsky Vladimir, Schnurr Kerstin, Seibt Günter, Matthes Gert

机构信息

Institute of Medical Physics and Biophysics, University Leipzig, Germany.

出版信息

Z Med Phys. 2005;15(4):265-72. doi: 10.1078/0939-3889-00263.

Abstract

Cancer diseases are the focus of intense research due to their frequent occurrence. It is known from the literature that serum proteins are changed in the case of malignant processes. Changes of albumin conformation, transport efficiency, and binding characteristics can be determined by electron spin resonance spectroscopy (ESR). The present study analysed the binding/dissociation function of albumin with an ESR method using 16-doxyl stearate spin probe as reporter molecule and ethanol as modifier of hydrophobic interactions. Native and frozen plasma of healthy donors (608 samples), patients with malignant diseases (423 samples), and patients with benign conditions (221 samples) were analysed. The global specificity was 91% and the sensitivity 96%. In look-back samples of 27 donors, a malignant process could be detected up to 30 months before clinical diagnosis. To recognise different entities of malignant diseases from the ESR spectra, Artificial neural networks were implemented. For 48 female donors with breast cancer, the recognition specificity was 85%. Other carcinoma entities (22 colon, 18 prostate, 12 stomach) were recognised with specificities between 75% and 84%. Should these specificity values be reproduced in larger studies, the described method could be used as a new specific tumour marker for the early detection of malignant processes. Since transmission of cancer via blood transfusion cannot be excluded as yet, the described ESR method could also be used as a quality test for plasma products.

摘要

癌症疾病因其频繁发生而成为深入研究的焦点。从文献中可知,在恶性病变情况下血清蛋白会发生变化。白蛋白构象、转运效率和结合特性的变化可以通过电子自旋共振光谱法(ESR)来测定。本研究使用16 - 硬脂酸氧基自旋探针作为报告分子,乙醇作为疏水相互作用的调节剂,采用ESR方法分析白蛋白的结合/解离功能。对健康供体的天然和冷冻血浆(608份样本)、恶性疾病患者的血浆(423份样本)和良性疾病患者的血浆(221份样本)进行了分析。总体特异性为91%,敏感性为96%。在27名供体的回顾性样本中,在临床诊断前长达30个月就能检测到恶性病变。为了从ESR光谱中识别恶性疾病的不同实体,实施了人工神经网络。对于48名患有乳腺癌的女性供体,识别特异性为85%。其他癌实体(22例结肠癌、18例前列腺癌、12例胃癌)的识别特异性在75%至84%之间。如果这些特异性值能在更大规模的研究中得到重现,那么所描述的方法可作为一种新的特异性肿瘤标志物用于恶性病变的早期检测。由于目前尚不能排除癌症通过输血传播的可能性,所描述的ESR方法也可用于血浆制品的质量检测。

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