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A Multicenter, Retrospective, Observational Study to Develop and Validate a Multimodal Deep Learning Model for Predicting Metachronous Liver Metastasis in Colorectal Cancer Patients After Curative Resection

Status: Recruiting
Location: See location...
Intervention Type: Other
Study Type: Observational
SUMMARY

This multicenter, retrospective study aims to develop and validate a multimodal deep learning model for predicting the risk of metachronous liver metastasis in patients with stage I-III colorectal cancer following curative resection. The model will integrate preoperative contrast-enhanced CT imaging, digitized histopathological whole-slide images, and standard clinical-pathological data. The primary objective is to assess the model's discriminatory performance, measured by the area under the receiver operating characteristic curve (AUC), and to compare its predictive accuracy against traditional prognostic factors such as TNM staging and serum carcinoembryonic antigen levels. This research utilizes existing archival data; no direct patient contact or intervention is involved. The ultimate goal is to provide a robust, data-driven tool for improved risk stratification, which could potentially guide personalized surveillance strategies and adjuvant therapy decisions in the future.

Eligibility
Participation Requirements
Sex: All
Minimum Age: 18
Maximum Age: 75
Healthy Volunteers: f
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• Age 18-75 years, any gender.

• Histologically confirmed primary colon or rectal adenocarcinoma.

• Underwent curative radical resection (R0 resection) for colorectal cancer.

• Preoperative contrast-enhanced abdominal/pelvic CT scan performed within 1 month before surgery, with acceptable image quality.

• No evidence of distant metastasis (including synchronous liver metastasis) on preoperative or intraoperative exploration.

Locations
Other Locations
China
Tongji Hospital
RECRUITING
Wuhan
Contact Information
Primary
Yang wu, M.D.
255001907@qq.com
13636076910
Time Frame
Start Date: 2015-01-01
Estimated Completion Date: 2026-01-30
Participants
Target number of participants: 1500
Treatments
Colorectal Cancer Resection Cohort
A retrospective cohort of adult patients (aged 18-75) with stage I-III primary colorectal adenocarcinoma who underwent curative (R0) resection. This cohort is defined for the purpose of developing and validating a multimodal deep learning model to predict the risk of metachronous liver metastasis. All data, including preoperative contrast-enhanced CT scans, postoperative digitized pathology slides, and clinical records, were collected retrospectively from routine clinical practice. No interventions were administered as part of this study.
Related Therapeutic Areas
Sponsors
Leads: Tongji Hospital

This content was sourced from clinicaltrials.gov