骨髓
嵌合抗原受体
多发性骨髓瘤
癌症研究
肿瘤微环境
间质细胞
抗原
免疫学
生物
免疫疗法
医学
免疫系统
作者
Delta Ghoshal,Ingrid Petersen,Rachel Ringquist,Liana Kramer,Eshant Bhatia,Thomas Hu,Ariane Richard,Reda Park,Jenna Corbin,Savi Agarwal,Abel Thomas,Sebastián Ramírez,Jacob Tharayil,Emma Downey,Frank Ketchum,Abigail Ochal,Neha Sonthi,Sagar Lonial,James N. Kochenderfer,Reginald Tran
标识
DOI:10.1101/2024.04.08.588601
摘要
ABSTRACT Multiple myeloma (MM), a cancer of bone marrow plasma cells, is the second-most common hematological malignancy. However, despite immunotherapies like chimeric antigen receptor (CAR)-T cells, relapse is nearly universal. The bone marrow (BM) microenvironment influences how MM cells survive, proliferate, and resist treatment. Yet, it is unclear which BM niches give rise to MM pathophysiology. Here, we present a 3D microvascularized culture system, which models the endosteal and perivascular bone marrow niches, allowing us to study MM-stroma interactions in the BM niche and model responses to therapeutic CAR-T cells. We demonstrated the prolonged survival of cell line-based and patient-derived multiple myeloma cells within our in vitro system and successfully flowed in donor-matched CAR-T cells. We then measured T cell survival, differentiation, and cytotoxicity against MM cells using a variety of analysis techniques. Our MM-on-a-chip system could elucidate the role of the BM microenvironment in MM survival and therapeutic evasion and inform the rational design of next-generation therapeutics. TEASER A multiple myeloma model can study why the disease is still challenging to treat despite options that work well in other cancers.
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