实时、人工智能引导的光动力腹腔镜增强兔腹膜癌转移模型的检测。

IF 4.5 2区 医学 Q1 ONCOLOGY
Cancer Science Pub Date : 2025-02-10 DOI:10.1111/cas.70009
Adriana Rivera-Piza, Sung-Ho Lee, Hannah HeeJung Lee, Seungho Lee, Su-Jin Shin, Jaehyuk Kim, Jong-Hyun Park, Jae Eun Yu, Sang Won Lee, Gyuri Park, Brian C. Wilson, Hyoung-Il Kim
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引用次数: 0

摘要

准确的诊断对于有效的癌症治疗至关重要,特别是在腹膜表面恶性肿瘤中,未能发现转移性病变可能会误导治疗计划。本研究利用人工智能(AI)引导的光动力学诊断(PDD)与光敏剂Phonozen的结合,在兔模型中评估分期腹腔镜诊断的准确性,光敏剂在405 nm激活。为了制造腹膜癌,腹腔镜下将VX2细胞接种于雌性新西兰白兔腹膜。常规和pdd引导的腹腔镜使用定制的光源,分别发射广谱白光和405纳米蓝光。手术过程包括三个方面:在白光下探查和标记可疑结节,在蓝激发荧光下识别其他转移性肿瘤,以及通过触诊确定开腹探查以定位被忽视的结节。我们的研究结果显示,对14只家兔371个结节的初步实验数据进行比较,常规腹腔镜诊断和PDD的检测灵敏度从67%±1.9%(常规)提高到98%±0.7% (PDD)。在第二个实验数据集中,来自10只兔子的265个结节,加入实时AI算法将灵敏度进一步提高到100%±0.0%。PDD联合人工智能可提高腹腔镜分期腹膜癌转移的检出率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Real-Time, AI-Guided Photodynamic Laparoscopy Enhances Detection in a Rabbit Model of Peritoneal Cancer Metastasis

Real-Time, AI-Guided Photodynamic Laparoscopy Enhances Detection in a Rabbit Model of Peritoneal Cancer Metastasis

Accurate diagnosis is essential for effective cancer treatment, particularly in peritoneal surface malignancies, where failure to detect metastatic lesions can mislead the treatment plan. This study assessed the diagnostic accuracy of staging laparoscopy using the integration of artificial intelligence (AI)-guided photodynamic diagnosis (PDD) with the photosensitizer Phonozen, activated at 405 nm in a rabbit model. To create peritoneal carcinomatosis, VX2 cells were inoculated laparoscopically into the peritoneum of female white New Zealand rabbits. Conventional and PDD-guided laparoscopy utilized a customized light source that emitted broad-spectrum white light or 405-nm blue light, respectively. The surgical procedure comprised a tripartite approach: exploration and labeling of suspected nodules under white-light visualization, identification of additional metastatic tumors under blue-excitation fluorescent light, and confirmatory open laparotomy to locate overlooked nodules by palpation. Our results showed that the initial experimental data from 371 nodules in 14 rabbits, comparing conventional diagnostic laparoscopy and PDD, showed increased detection sensitivity from 67% ± 1.9% (conventional) to 98% ± 0.7% (PDD) in the small-size nodule. In the second experimental data set from 265 nodules in 10 rabbits, the addition of a real-time AI algorithm further increased the sensitivity to 100% ± 0.0%. Combining PDD with AI enhances the detection of peritoneal cancer metastasis in staging laparoscopy.

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来源期刊
Cancer Science
Cancer Science 医学-肿瘤学
自引率
3.50%
发文量
406
审稿时长
2 months
期刊介绍: Cancer Science (formerly Japanese Journal of Cancer Research) is a monthly publication of the Japanese Cancer Association. First published in 1907, the Journal continues to publish original articles, editorials, and letters to the editor, describing original research in the fields of basic, translational and clinical cancer research. The Journal also accepts reports and case reports. Cancer Science aims to present highly significant and timely findings that have a significant clinical impact on oncologists or that may alter the disease concept of a tumor. The Journal will not publish case reports that describe a rare tumor or condition without new findings to be added to previous reports; combination of different tumors without new suggestive findings for oncological research; remarkable effect of already known treatments without suggestive data to explain the exceptional result. Review articles may also be published.
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