RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Mathematical Modeling of Non-Small-Cell Lung Cancer Biology through the Experimental Data on Cell Composition and Growth of Patient-Derived Organoids.
Mathematical Modeling of Non-Small-Cell Lung Cancer Biology through the Experimental Data on Cell Composition and Growth of Patient-Derived Organoids.
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非小细胞肺癌的数学模型是利用临床和实验数据描述肿瘤发生各个方面的强大工具。所开发的算法能够捕捉肿瘤的表型变化,并预测肿瘤行为的变化、耐药性以及抗癌治疗的临床结局。本研究的目的是提出一种数学模型,该模型能够预测患者来源的肿瘤类器官随时间推移的细胞组成变化,并有望将这些结果转化至亲本肿瘤,进而预测患者可能的临床病程和结局。以癌细胞特异性生物标志物(PD-L1)、肿瘤相关巨噬细胞(CD206)、NK 细胞(CD8)和成纤维细胞(αSMA)的数据作为输入,我们提出了一个能够准确预测患者来源的肿瘤类器官在所需时间点细胞组成的模型。将所获得的结果与“组学”方法相结合,将增进我们对非小细胞肺癌本质的理解。此外,将其应用于临床实践将有助于治疗策略的决策过程,并开发出一种新的抗癌治疗个性化方法。
Mathematical models of non-small-cell lung cancer are powerful tools that use clinical and experimental data to describe various aspects of tumorigenesis. The developed algorithms capture phenotypic changes in the tumor and predict changes in tumor behavior, drug resistance, and clinical outcomes of anti-cancer therapy. The aim of this study was to propose a mathematical model that predicts the changes in the cellular composition of patient-derived tumor organoids over time with a perspective of translation of these results to the parental tumor, and therefore to possible clinical course and outcomes for the patient.
Using the data on specific biomarkers of cancer cells (PD-L1), tumor-associated macrophages (CD206), natural killer cells (CD8), and fibroblasts (αSMA) as input, we proposed a model that accurately predicts the cellular composition of patient-derived tumor organoids at a desired time point. Combining the obtained results with "omics" approaches will improve our understanding of the nature of non-small-cell lung cancer.
Moreover, their implementation into clinical practice will facilitate a decision-making process on treatment strategy and develop a new personalized approach in anti-cancer therapy.
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