基于机器学习的个性化癌症治疗综述

Hanan Ahmed, S. Hamad, Howida A. Shedeed, A. Saad
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引用次数: 3

摘要

癌症是由细胞异常生长引起的一组100多种疾病,可能会扩散到身体的其他部位。因此,癌症治疗被认为是医学领域的挑战之一。根据世界卫生组织(世卫组织)的说法,“癌症是全世界第二大死亡原因;2018年有960万人死亡。”随着科学家对癌症的了解越来越多,他们发现一些突变在几种类型的癌症中普遍存在,因此癌症肿瘤可能有数千种基因突变。正因为如此,癌症是根据被批准为驱动因素的基因改变类型来分类的,而不仅仅是根据肿瘤在体内的发展位置和癌细胞在显微镜下的样子。他们还发现,某些治疗方法对某些患者的效果比其他患者更好,这意味着,患有相同癌症类型和相同治疗方案的患者的反应是不同的。现在,癌症治疗倾向于个性化医疗(也被称为精准医疗),在治疗前考虑到个人的遗传特征和病史,将每个DNA序列作为一个单独的病例处理,并分析其突变,这是一项耗时耗力的任务。研究每个病人的DNA序列需要一个医疗小组用几个工作日的时间来做出单个病人的决定,这在病人数量众多的情况下很难做到。因此,近年来人们致力于用基于人工智能的算法取代人类的努力来研究DNA序列,提取其突变并研究对DNA的各种治疗效果。本文综述了近年来使用机器和深度学习算法进行个性化癌症治疗的研究进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Review of Personalized Cancer Treatment with Machine Learning
Cancer is a group of more than 100 diseases caused by abnormal cell growth that may spread to other parts of the body. Therefore, cancer treatment is considered one of the challenges in the medical field. According to the World Health Organization (WHO) “Cancer is the second leading cause of death worldwide; there were 9.6 million deaths in 2018”. As scientists have learned more about cancer, they have found that some mutations are commonly found in several types of cancer so cancer tumors can have thousands of genetic mutations. Because of this, cancers are categorized by the types of genetic alterations that are approved to be the driver, not only by where the tumor developed in the body and how the cancer cells look under the microscope. They also have found that certain treatments worked better for some patients than for others which means that, the response of patients with the same cancer type and same treatment plan is different. Now, cancer treatment tends to personalize medicine (also known as precision medicine), taking into account an individual's genetic profile and medical or disease history before treatment, dealing with each DNA sequence as a separate case, and analyzing its mutations which is a time and effort consuming task. Studying each patient DNA sequence requires a medical team with several working days to make a decision for the single patient which is too difficult to do with the high number of patients. So, recently the effort is exerted in replacing the human effort with artificial intelligence-based algorithms to study the DNA sequence, extract its mutations and study the various treatment effect on DNA. In this paper, a review is introduced for recent researches that use the machine and deep learning algorithms to personalize cancer treatments.
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