下一代肿瘤不可知靶点即将出现
Next-generation tumor-agnostic targets on the horizon.
肿瘤不可知药物开发将肿瘤学重新聚焦于共享的分子依赖性而非组织来源,从而能够针对跨肿瘤的罕见可操作驱动因素进行高效开发。
英文原题:Establishment of a high-fidelity patient-derived xenograft model for cervical cancer enables the evaluation of patient's response to conventional and novel therapies.
我们建立了迄今为止规模最大的CC PDX生物样本库,其移植成功率很高,能够保留患者活检样本的组织病理学和遗传学特征,重现患者对常规治疗的反应,并能够评估CC新型治疗模式的疗效。
复发性或转移性宫颈癌(r/m CC)因治疗选择有限,预后往往较差。由于缺乏能够准确反映宫颈癌(CC)生物学和基因组异质性的临床前模型,新型治疗策略的开发受到阻碍。在此,我们旨在建立大规模的宫颈癌患者来源异种移植(PDX)生物样本库,评估PDX与患者原发肿瘤组织之间生物学指标的一致性,并探索其在评估患者对传统疗法和新型疗法反应中的实用性。
将69例新鲜CC肿瘤组织直接植入免疫缺陷小鼠以建立PDX模型。通过苏木精-伊红染色、免疫组织化学和全外显子组测序,分别基于临床病理特征、蛋白质生物标志物水平和基因组特征,比较PDX模型与其相应原发肿瘤(PT)的一致性。此外,整合CC患者的临床信息、原发肿瘤的RNA转录组和免疫表型,以识别可能影响异种移植植入成功的潜在参数。随后,评估PDX模型反映患者对化疗反应的能力。最后,利用PDX模型和PDX来源的类器官(PDXO)评估来那替尼和过继细胞疗法(ACT)联合策略对携带人表皮生长因子受体2(HER2)突变的CC患者的治疗效果。
我们建立了一个CC的PDX生物样本库,成功率为63.8%(44/69)。已建立的PDX肿瘤的主要特征,包括临床病理特征、蛋白生物标志物如Ki67、α-平滑肌肌动蛋白和p16的表达水平以及基因组学,与其PT高度一致。此外,异种移植植入可能受原发肿瘤大小、滤泡辅助性T细胞的存在以及原发肿瘤组织中细胞黏附相关基因表达的影响。CC来源的PDX模型能够重现患者对化疗的反应。在一个PDX模型中,一种新的治疗策略,即ACT和neratinib的联合,被证明能有效抑制来自HER2突变CC患者的PDX肿瘤的生长。
BACKGROUND: Recurrent or metastatic cervical cancer (r/m CC) often has poor prognosis owing to its limited treatment options. The development of novel therapeutic strategies has been hindered by the lack of preclinical models that accurately reflect the biological and genomic heterogeneity of cervical cancer (CC). Herein, we aimed to establish a large patient-derived xenograft (PDX) biobank for CC, evaluate the consistency of the biologic indicators between PDX and primary tumor tissues of patients, and explore its utility for assessing patient's response to conventional and novel therapies. METHODS: Sixty-nine fresh CC tumor tissues were implanted directly into immunodeficient mice to establish PDX models. The concordance of the PDX models with their corresponding primary tumors (PTs) was compared based on the clinical pathological features, protein biomarker levels, and genomic features through hematoxylin & eosin staining, immunohistochemistry, and whole exome sequencing, respectively. Moreover, the clinical information of CC patients, RNA transcriptome and immune phenotyping of primary tumors were integrated to identify the potential parameters that could affect the success of xenograft engraftment. Subsequently, PDX model was evaluated for its capacity to mirror patient's response to chemotherapy. Finally, PDX model and PDX-derived organoid (PDXO) were utilized to evaluate the therapeutic efficacy of neratinib and adoptive cell therapy (ACT) combination strategy for CC patients with human epidermal growth factor receptor 2 (HER2) mutation. RESULTS: We established a PDX biobank for CC with a success rate of 63.8% (44/69). The primary features of established PDX tumors, including clinicopathological features, the expression levels of protein biomarkers including Ki67, α-smooth muscle actin, and p16, and genomics, were highly consistent with their PTs. Furthermore, xenograft engraftment was likely influenced by the primary tumor size, the presence of follicular helper T cells and the expression of cell adhesion-related genes in primary tumor tissue. The CC derived PDX models were capable of recapitulating the patient's response to chemotherapy. In a PDX model, a novel therapeutic strategy, the combination of ACT and neratinib, was shown to effectively inhibit the growth of PDX tumors derived from CC patients with HER2-mutation. CONCLUSIONS: We established by far the largest PDX biobank with a high engraftment rate for CC that preserves the histopathological and genetic characteristics of patient's biopsy samples, recapitulates patient's response to conventional therapy, and is capable of evaluating the efficacy of novel therapeutic modalities for CC.
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