PO.TB04.02 · 肿瘤生物学
使用移植PDX肿瘤的PBMC人源化NOG-ΔMHC小鼠对免疫检查点抑制剂进行体内评估
In vivo evaluation of immune checkpoint inhibitors using PBMC-humanized NOG-ΔMHC mice engrafted with PDX tumors
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
免疫治疗已成为癌症治疗的“第四大支柱”,是对手术以及化疗和放疗的补充。在这些治疗方式中,免疫检查点抑制剂(ICIs),尤其是抗PD-1抗体,是关键工具。目前正致力于识别新的治疗靶点并优化使用现有药物的联合方案。动物模型对于评估临床前药物开发的疗效和安全性不可或缺。然而,传统的同基因小鼠模型往往无法再现人类的药效学和毒性特征,尤其是在分子靶向治疗的情境下,物种间差异更为显著,这凸显了对具有转化相关性平台的迫切需求。为弥补这一空缺,我们通过将人外周血单个核细胞(PBMCs)移植到NOG-ΔMHC小鼠中,随后移植患者来源异种移植物(PDXs)或PDX来源细胞系(PDXCs),建立了小鼠模型。这些模型部分重建了人类免疫组分,而PDX/PDXC肿瘤保留了关键特征(如组织学结构、细胞异质性和肿瘤微环境),从而能够更忠实地模拟人类癌症,包括免疫-肿瘤细胞相互作用。我们开发了两种不同的肺腺癌来源PDX/PDXC模型,并针对每个品系优化了检测时间安排。使用这些模型,我们评估了抗PD-1抗体(KEYTRUDA®)和一种新型IDO1/TDO2双重抑制剂(KYPS-80)单药及联合应用的抗肿瘤疗效。两种模型在各治疗组中均表现出肿瘤生长抑制,并伴有CD8 + T细胞活化增强。组织病理学分析显示肿瘤巢退缩、单细胞坏死和纤维化,提示存在治疗反应。总之,我们开发了一个稳健且具有转化相关性的平台,用于评估ICIs和联合免疫治疗,该平台再现了人类免疫肿瘤动态的关键方面,有望推进临床前免疫肿瘤学研究。
查看英文原文 English abstract
Immunotherapy has emerged as the “fourth pillar” of cancer treatment, complementing surgery as well as chemo- and radiotherapies. Among these modalities, immune checkpoint inhibitors (ICIs), particularly anti-PD-1 antibodies, are key tools. Ongoing efforts are focused on identifying novel therapeutic targets and optimizing combination regimens using existing agents. Animal models are indispensable for evaluating the therapeutic efficacy and safety of preclinical drug development. However, conventional syngeneic mouse models often fail to recapitulate human pharmacodynamics and toxicity profiles, especially in molecularly targeted therapeutic contexts, where interspecies differences are pronounced, which underscores the urgent need for translationally relevant platforms.To address this gap, we established mouse models by engrafting human peripheral blood mononuclear cells (PBMCs) into NOG-ΔMHC mice, followed by the transplantation of patient-derived xenografts (PDXs) or PDX-derived cell lines (PDXCs). These models partially reconstitute human immune components, while PDX/PDXC tumors preserve critical features (e.g., histological architecture, cellular heterogeneity, and tumor microenvironment), thereby allowing for a more faithful modeling of human cancer, including immune-tumor cell interactions. We developed two distinct lung adenocarcinoma-derived PDX/PDXC models and optimized testing schedules tailored to each strain. Using these models, we assessed the antitumor efficacy of an anti-PD-1 antibody (KEYTRUDA®) and a novel IDO1/TDO2 dual inhibitor (KYPS-80), both applied as monotherapies and in combination. Both models exhibited tumor growth suppression across the treatment groups, accompanied by enhanced CD8 + T cell activation. Histopathological analyses revealed tumor nest regression, single-cell necrosis, and fibrosis, indicating a therapeutic response. In conclusion, we developed a robust and translationally relevant platform for evaluating ICIs and combination immunotherapies, which recapitulates key aspects of human immune tumor dynamics and holds promise for advancing preclinical immuno-oncology research.
利益披露 Disclosure
A. Hanazawa, None..
S. Sakai, None..
M. Komatsu, None..
C. Nishime, None..
N. Ogo, None..
M. Suzuki, None..
J. Hata, None..
A. Asai, None.
T. Yamamoto,
In-Vivo Science Inc. Employment, g., Board of Directors, non-salaried role).