MRI/RNA-Seq-Based Radiogenomics and Artificial Intelligence for More Accurate Staging of Muscle-Invasive Bladder Cancer

IF 4.9 2区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY International Journal of Molecular Sciences Pub Date : 2023-12-20 DOI:10.3390/ijms25010088
T. Qureshi, Xingyu Chen, Yibin Xie, Kaoru Murakami, Toru Sakatani, Yuki Kita, Takashi Kobayashi, M. Miyake, Simon R. V. Knott, Debiao Li, Charles J. Rosser, H. Furuya
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Abstract

Accurate staging of bladder cancer assists in identifying optimal treatment (e.g., transurethral resection vs. radical cystectomy vs. bladder preservation). However, currently, about one-third of patients are over-staged and one-third are under-staged. There is a pressing need for a more accurate staging modality to evaluate patients with bladder cancer to assist clinical decision-making. We hypothesize that MRI/RNA-seq-based radiogenomics and artificial intelligence can more accurately stage bladder cancer. A total of 40 magnetic resonance imaging (MRI) and matched formalin-fixed paraffin-embedded (FFPE) tissues were available for analysis. Twenty-eight (28) MRI and their matched FFPE tissues were available for training analysis, and 12 matched MRI and FFPE tissues were used for validation. FFPE samples were subjected to bulk RNA-seq, followed by bioinformatics analysis. In the radiomics, several hundred image-based features from bladder tumors in MRI were extracted and analyzed. Overall, the model obtained mean sensitivity, specificity, and accuracy of 94%, 88%, and 92%, respectively, in differentiating intra- vs. extra-bladder cancer. The proposed model demonstrated improvement in the three matrices by 17%, 33%, and 25% and 17%, 16%, and 17% as compared to the genetic- and radiomic-based models alone, respectively. The radiogenomics of bladder cancer provides insight into discriminative features capable of more accurately staging bladder cancer. Additional studies are underway.
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基于 MRI/RNA-Seq 的放射基因组学和人工智能为肌肉浸润性膀胱癌提供更准确分期
膀胱癌的准确分期有助于确定最佳治疗方法(如经尿道切除术与根治性膀胱切除术、保留膀胱术)。然而,目前约有三分之一的患者分期过高,三分之一的患者分期过低。我们迫切需要一种更准确的分期方法来评估膀胱癌患者,以协助临床决策。我们假设,基于磁共振成像/RNA-seq的放射基因组学和人工智能可以更准确地对膀胱癌进行分期。共有 40 份磁共振成像(MRI)和匹配的福尔马林固定石蜡包埋(FFPE)组织可供分析。其中 28 例磁共振成像样本及其匹配的 FFPE 组织可用于训练分析,12 例匹配的磁共振成像样本和 FFPE 组织可用于验证分析。对 FFPE 样本进行了大量 RNA-seq,然后进行了生物信息学分析。在放射组学中,提取并分析了数百个基于核磁共振成像的膀胱肿瘤图像特征。总体而言,该模型在区分膀胱内癌和膀胱外癌方面的平均灵敏度、特异度和准确度分别为 94%、88% 和 92%。与单独基于基因和放射组学的模型相比,所提出的模型在三个矩阵中分别提高了 17%、33% 和 25%,以及 17%、16% 和 17%。膀胱癌放射基因组学深入揭示了能够更准确地对膀胱癌进行分期的鉴别特征。其他研究正在进行中。
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来源期刊
International Journal of Molecular Sciences
International Journal of Molecular Sciences Chemistry-Organic Chemistry
CiteScore
8.10
自引率
10.70%
发文量
13472
审稿时长
17.49 days
期刊介绍: The International Journal of Molecular Sciences (ISSN 1422-0067) provides an advanced forum for chemistry, molecular physics (chemical physics and physical chemistry) and molecular biology. It publishes research articles, reviews, communications and short notes. Our aim is to encourage scientists to publish their theoretical and experimental results in as much detail as possible. Therefore, there is no restriction on the length of the papers or the number of electronics supplementary files. For articles with computational results, the full experimental details must be provided so that the results can be reproduced. Electronic files regarding the full details of the calculation and experimental procedure, if unable to be published in a normal way, can be deposited as supplementary material (including animated pictures, videos, interactive Excel sheets, software executables and others).
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