数据科学方法在自身免疫性甲状腺疾病精准医学研究中的应用

Ayodeji Folorunsho Ajayi, Emmanuel Tayo Adebayo, Iyanuoluwa Oluwadunsi Adebayo, Olubunmi Simeon Oyekunle, Victor Oluwaseyi Amos, Segun Emmanuel Bamidele, Goodness Olusayo Olatinwo
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引用次数: 0

摘要

近年来,人工智能在促进、捕获和重组大数据方面的应用,改变了疾病诊断和治疗的准确性,这是一个被称为精准医学的领域。大数据已经在医学的各个领域建立起来,例如,人工智能已经进入免疫学领域,称为免疫信息学。有证据表明,精准医疗工具已经在利用成像和基因序列等大数据来准确检测、描述甲状腺功能障碍并提出治疗方案方面做出了努力。此外,随着时间的推移,多态性、自身免疫性甲状腺疾病以及与环境因素相关的遗传数据的积累,导致了临床自身免疫性甲状腺疾病研究的迅猛发展。这篇综述强调了基因数据在诊断和治疗自身免疫性甲状腺疾病(如Graves病、微妙的亚临床甲状腺功能障碍、桥本甲状腺炎和甲状腺功能低下)相关疾病中的重要作用。此外,还讨论了环境和内分泌危险因素在遗传易感个体疾病病因学中的内涵。因此,内分泌学家在癌症和甲状腺结节领域的潜在障碍包括不可靠的生物标志物,由于遗传差异而缺乏独特的治疗方案。精准医疗数据可以利用人工智能提高他们的诊断和治疗能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of Data Science Approaches to Investigate Autoimmune Thyroid Disease in Precision Medicine
In recent times, the application of artificial intelligence in facilitating, capturing, and restructuring Big data has transformed the accuracy of diagnosis and treatment of diseases, a field known as precision medicine. Big data has been established in various domains of medicine for example, artificial intelligence has found its way into immunology termed as immunoinformatics. There is evidence that precision medicine tools have made an effort to accurately detect, profile, and suggest treatment regimens for thyroid dysfunction using Big data such as imaging and genetic sequences. In addition, the accumulation of data on polymorphisms, autoimmune thyroid disease, and genetic data related to environmental factors has occurred over time resulting in drastic development of clinical autoimmune thyroid disease study. This review emphasized how genetic data plays a vital role in diagnosing and treating diseases related to autoimmune thyroid disease like Graves’ disease, subtle subclinical thyroid dysfunctions, Hashimoto’s thyroiditis, and hypothyroid autoimmune thyroiditis. Furthermore, connotation between environmental and endocrine risk factors in the etiology of the disease in genetically susceptible individuals were discussed. Thus, endocrinologists’ potential hurdles in cancer and thyroid nodules field include unreliable biomarkers, lack of distinct therapeutic alternatives due to genetic difference. Precision medicine data may improve their diagnostic and therapeutic capabilities using artificial intelligence.
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