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用于直接相互作用的肿瘤类器官-免疫细胞共培养系统的声学虚拟 3D 支架。

Acoustic virtual 3D scaffold for direct-interacting tumor organoid-immune cell coculture systems.

机构信息

Department of Dermatology, Xiangya Hospital, Central South University, Changsha 410008, China.

National Engineering Research Center of Personalized Diagnostic and Therapeutic Technology, Changsha 410008, China.

出版信息

Sci Adv. 2024 Nov 22;10(47):eadr4831. doi: 10.1126/sciadv.adr4831.

Abstract

Three-dimensional (3D) cell culture has revolutionized life sciences, particularly in organoid technologies. Traditional bioscaffold materials, however, complicate the detachment of tumor organoids and hamper the routine use of organoid-immune cell cocultures. Here, we show an acoustic virtual 3D scaffold (AV-Scaf) method to achieve 3D tumor organoid culture, enabling a direct-interacting tumor organoid-immune cell coculture system. The self-organization process of tumor cells is facilitated by a vortex acoustic field, which enables the cell bioassembly and ion channel activation. This approach can significantly enhance the influx of calcium ions, thereby accelerating intercellular interactions of cellular assemblies. We established scaffold-free melanoma and breast cancer organoids using AV-Scaf and cocultured melanoma organoids with T cells. We found that our coculture system resulted in a high activation state of T cells, characterized by notable up-regulation of granzyme B (2.82 to 17.5%) and interferon-γ (1.36 to 16%). AV-Scaf offers an efficient method for tumor organoid-immune cell studies, advancing cancer research and immunotherapy development.

摘要

三维(3D)细胞培养技术极大地推动了生命科学的发展,特别是在类器官技术方面。然而,传统的生物支架材料使得肿瘤类器官的分离变得复杂,阻碍了类器官-免疫细胞共培养的常规应用。在这里,我们展示了一种声学分型 3D 支架(AV-Scaf)方法,用于实现 3D 肿瘤类器官培养,从而构建直接相互作用的肿瘤类器官-免疫细胞共培养系统。利用涡旋声场促进肿瘤细胞的自组织过程,从而实现细胞的生物组装和离子通道的激活。该方法可以显著增加钙离子的内流,从而加速细胞组装体之间的细胞间相互作用。我们使用 AV-Scaf 构建了无支架的黑色素瘤和乳腺癌类器官,并将黑色素瘤类器官与 T 细胞共培养。我们发现,我们的共培养系统导致 T 细胞的高激活状态,其特征是颗粒酶 B(2.82 至 17.5%)和干扰素-γ(1.36 至 16%)的显著上调。AV-Scaf 为肿瘤类器官-免疫细胞研究提供了一种有效的方法,推动了癌症研究和免疫疗法的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e41a/11584020/862562a9a095/sciadv.adr4831-f1.jpg

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