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Characterization of Multi-Omics Landscapes and AI Pathological Prediction Model for Long-Term Survival in NSCLC Immunotherapy

RECRUITINGSponsored by Cancer Institute and Hospital, Chinese Academy of Medical Sciences
Actively Recruiting
SponsorCancer Institute and Hospital, Chinese Academy of Medical Sciences
Started2026-05-01
Est. completion2030-05-01
Eligibility
Age18 Years+
Healthy vol.Accepted

Summary

This study is a retrospective, multicenter, observational cohort study in patients with advanced or locally advanced non-small cell lung cancer (NSCLC). The aim of this study was to establish a long-term survival (LTS) versus short-term survival (STS) real-world cohort, to systematically characterize the multi-omics landscapes, and to develop and validate an artificial intelligence (AI) pathological prediction model based on routine H\&E-stained images for predicting immune microenvironment features and long-term survival outcomes following immunotherapy.

Eligibility

Age: 18 Years+Healthy volunteers accepted
Inclusion Criteria:

* Patients with pathologically confirmed advanced or locally advanced non-small cell lung cancer (NSCLC).
* Patients derived from real-world data of multiple centers (including Cancer Hospital, Chinese Academy of Medical Sciences; Cancer Hospital of Shanxi, Chinese Academy of Medical Sciences \[Shanxi Cancer Hospital\]; and other participating centers) or from completed phase III clinical trials (e.g., Choice-01, Rationale-307, Rationale-304).
* Patients who received first-line or later-line immune checkpoint inhibitor (ICI) monotherapy or ICI-based combination therapy.
* Patients with complete clinical information and available follow-up data.

Exclusion Criteria:

* Patients whose systemic therapy did not include an immunotherapy regimen.
* Patients lost to follow-up.

Conditions5

Advanced Non-Small Cell Lung CancerCancerImmunotherapyLung CancerNon-Small Cell Carcinoma of Lung

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