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首页> 外文期刊>Frontiers in Molecular Biosciences >Nanogenomics and Artificial Intelligence: A Dynamic Duo for the Fight Against Breast Cancer
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Nanogenomics and Artificial Intelligence: A Dynamic Duo for the Fight Against Breast Cancer

机译:纳米科和人工智能:一种动态DUO用于抗乳腺癌的斗争

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Application software is utilized to aid in the diagnosis of breast cancer. Yet, recent advances in artificial intelligence (AI) are addressing challenges related to the detection, classification, and monitoring of different types of tumours. AI can apply deep learning algorithms to perform automated analysis on mammographic or histologic examinations. Large volume of data generated by digitalized mammogram or whole-slide images can be interoperated through advanced machine learning. This enables fast evaluation of every tissue patch on an image, resulting in a quicker more sensitivity, and more reproducible diagnoses compared to human performance. On the other hand, cancer cell-exosomes which are extracellular vesicles released by cancer cells into the blood circulation, are being explored as cancer biomarker. Recent studies on cancer-exosome-content revealed that the encapsulated miRNA and other biomolecules are indicative of tumour sub-type, possible metastasis and prognosis. Thus, theoretically, through nanogenomicas, a profile of each breast tumour sub-type, estrogen receptor status, and potential metastasis site can be constructed. Then, a laboratory instrument, fitted with an AI program, can be used to diagnose suspected patients by matching their sera miRNA and biomolecules composition with the available template profiles. In this paper, we discuss the advantages of establishing a nanogenomics-AI-based breast cancer diagnostic approach, compared to the gold standard radiology or histology based approaches that are currently being adapted to AI. Also, we discuss the advantages of building the diagnostic and prognostic biomolecular profiles for breast cancers based on the exosome encapsulated content, rather than the free circulating miRNA and other biomolecules.
机译:应用软件用于帮助诊断乳腺癌。然而,人工智能(AI)最近的进步正在解决与不同类型肿瘤的检测,分类和监测有关的挑战。 AI可以应用深度学习算法,以对乳房X光或组织学检查进行自动分析。通过先进的机器学习,可以通过先进的机器学习互操作由数字化乳房X线照片或全幻灯片产生的大量数据。这使得能够快速评估图像上的每个组织贴片,导致与人类性能相比更快的敏感性,更可重复的诊断。另一方面,作为癌细胞释放到血液循环中的细胞外囊泡的癌细胞外来体正在探索癌症生物标志物。最近关于癌细胞内含量的研究表明,包封的miRNA和其他生物分子表明肿瘤亚型,可能的转移和预后。因此,通过纳米MOMICAS,可以构建每种乳腺肿瘤亚型,雌激素受体状态和潜在转移位点的剖面。然后,拟合AI程序的实验室仪器,可用于通过将其血清miRNA和生物分子组合物与可用的模板谱配合诊断疑似患者。在本文中,与目前适应AI的金标准放射学或基于组织学的方法相比,我们讨论了建立纳米MOMICS-AI乳腺癌诊断方法的优点。此外,我们讨论了基于外侧包封的含量的乳腺癌诊断和预后生物分子谱的优点,而不是自由循环的miRNA和其他生物分子。

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