The Promise and Future of Radiomics for Personalized Radiotherapy Dosing and Adaptation

无线电技术 医学 医学物理学 放射治疗计划 放射治疗 个性化医疗 医学影像学 磁共振成像 影像引导放射治疗 放射基因组学 正电子发射断层摄影术 放射科 生物信息学 生物
作者
Rachel B. Ger,Lin-Hung Wei,Issam El Naqa,Jing Wang
出处
期刊:Seminars in Radiation Oncology [Elsevier BV]
卷期号:33 (3): 252-261
标识
DOI:10.1016/j.semradonc.2023.03.003
摘要

Quantitative image analysis, also known as radiomics, aims to analyze large-scale quantitative features extracted from acquired medical images using hand-crafted or machine-engineered feature extraction approaches. Radiomics has great potential for a variety of clinical applications in radiation oncology, an image-rich treatment modality that utilizes computed tomography (CT), magnetic resonance imaging (MRI), and positron emission tomography (PET) for treatment planning, dose calculation, and image guidance. A promising application of radiomics is in predicting treatment outcomes after radiotherapy such as local control and treatment-related toxicity using features extracted from pretreatment and on-treatment images. Based on these individualized predictions of treatment outcomes, radiotherapy dose can be sculpted to meet the specific needs and preferences of each patient. Radiomics can aid in tumor characterization for personalized targeting, especially for identifying high-risk regions within a tumor that cannot be easily discerned based on size or intensity alone. Radiomics-based treatment response prediction can aid in developing personalized fractionation and dose adjustments. In order to make radiomics models more applicable across different institutions with varying scanners and patient populations, further efforts are needed to harmonize and standardize the acquisition protocols by minimizing uncertainties within the imaging data.

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