基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Clinical and radiomics integrated nomogram for preoperative prediction of tumor-infiltrating lymphocytes in patients with triple-negative breast cancer.
Clinical and radiomics integrated nomogram for preoperative prediction of tumor-infiltrating lymphocytes in patients with triple-negative breast cancer.
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纳入后方回声和 Rad-score 的 Clin+RS 整合模型对 TIL 水平展现出了可接受的术前评估效能。
本研究旨在开发基于常规超声(CUS)的影像组学列线图,用于术前区分三阴性乳腺癌(TNBC)患者的TIL(肿瘤浸润淋巴细胞)高水平和低水平。
回顾性纳入145例TNBC患者,以苏木精-伊红切片的TIL病理评估作为金标准。患者按7:3比例随机分入训练集和验证集。收集临床特征(年龄和CUS特征)及影像组学特征。筛选影像组学特征后构建Rad-score模型;采用logistic回归分别建立临床特征模型及临床特征联合Rad-score(Clin+RS)模型。研究通过受试者工作特征(ROC)曲线、校准曲线和决策曲线分析(DCA)评估模型表现。
研究从837项影像组学特征中通过单变量分析和LASSO回归筛选出25项,并据此计算Rad-score。结合后方回声和Rad-score的Clin+RS整合模型,预测表现优于Rad-score模型和临床模型;训练集和验证集的曲线下面积(AUC)分别为0.848和0.847。
结合后方回声和Rad-score的Clin+RS整合模型可接受地评估术前TIL水平。Clin+RS整合列线图具有巨大潜力,可用于TNBC患者TIL水平的术前个体化预测。
The present study aimed to develop a radiomics nomogram based on conventional ultrasound (CUS) to preoperatively distinguish high tumor-infiltrating lymphocytes (TILs) and low TILs in triple-negative breast cancer (TNBC) patients.
In the present study, 145 TNBC patients were retrospectively included. Pathological evaluation of TILs in the hematoxylin and eosin sections was set as the gold standard. The patients were randomly allocated into training dataset and validation dataset with a ratio of 7:3. Clinical features (age and CUS features) and radiomics features were collected. Then, the Rad-score model was constructed after the radiomics feature selection. The clinical features model and clinical features plus Rad-score (Clin+RS) model were built using logistic regression analysis. Furthermore, the performance of the models was evaluated by analyzing the receiver operating characteristic (ROC) curve, calibration curve, and decision curve analysis (DCA).
Univariate analysis and LASSO regression were employed to identify a subset of 25 radiomics features from a pool of 837 radiomics features, followed by the calculation of Rad-score. The Clin+RS integrated model, which combined posterior echo and Rad-score, demonstrated better predictive performance compared to both the Rad-score model and clinical model, achieving AUC values of 0.848 in the training dataset and 0.847 in the validation dataset.
The Clin+RS integrated model, incorporating posterior echo and Rad-score, demonstrated an acceptable preoperative evaluation of the TIL level. The Clin+RS integrated nomogram holds tremendous potential for preoperative individualized prediction of the TIL level in TNBC.
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