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Addressing the Clinical Feasibility of Adopting Circulating miRNA for Breast Cancer Detection,Monitoring and Management with Artificial Intelligence and Machine Learning Platforms
Authors:Lloyd Ling  Ahmed Faris Aldoghachi  Zhi Xiong Chong  Wan Yong Ho  Swee Keong Yeap  Ren Jie Chin  Eugene Zhen Xiang Soo  Jen Feng Khor  Yoke Leng Yong  Joan Lucille Ling  Naing Soe Yan  Alan Han Kiat Ong
Abstract:Detecting breast cancer (BC) at the initial stages of progression has always been regarded as a lifesaving intervention. With modern technology, extensive studies have unraveled the complexity of BC, but the current standard practice of early breast cancer screening and clinical management of cancer progression is still heavily dependent on tissue biopsies, which are invasive and limited in capturing definitive cancer signatures for more comprehensive applications to improve outcomes in BC care and treatments. In recent years, reviews and studies have shown that liquid biopsies in the form of blood, containing free circulating and exosomal microRNAs (miRNAs), have become increasingly evident as a potential minimally invasive alternative to tissue biopsy or as a complement to biomarkers in assessing and classifying BC. As such, in this review, the potential of miRNAs as the key BC signatures in liquid biopsy are addressed, including the role of artificial intelligence (AI) and machine learning platforms (ML), in capitalizing on the big data of miRNA for a more comprehensive assessment of the cancer, leading to practical clinical utility in BC management.
Keywords:liquid biopsy   circulating miRNA   breast cancer   AI   ML
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