生物打印肝肿瘤球体在柱/灌注板中的动态培养用于抗癌药物的预测筛选

IF 3.5 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Pranav Joshi, Hamilton Silva do Nascimento, Soo-Yeon Kang, Minseong Lee, Manav Goud Vanga, Sang-Hyun Lee, Bosung Ku, Moyses dos Santos Miranda, Moo-Yeal Lee
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引用次数: 0

摘要

三维(3D)细胞培养技术的最新进展,如细胞球体、类器官和3D生物打印组织结构,显著提高了体外模型的生理相关性。这些模型可以更好地模拟组织结构和功能,密切模拟体内特征,增强表型分析,对个性化癌症治疗的基础研究和药物筛选至关重要。尽管具有潜力,但目前的3D细胞培养平台面临着技术挑战,包括长期动态细胞培养的用户不友好性,与仿生水凝胶中的快速细胞封装不兼容,以及化合物筛选的低通量。为了解决这些问题,我们开发了一种带有侧壁和缝隙的144柱平板(144PillarPlate)和一种带有灌注孔和储层的补充144柱平板(144PerfusionPlate),用于动态3D细胞培养和预测性化合物筛选。为了加速仿生组织的形成,采用微电磁阀驱动生物3D打印技术,将悬浮在海藻酸盐中的Hep3B肝肿瘤小球体快速打印封装在144PillarPlate上。微阵列生物打印技术能够在柱板上精确、快速地将海藻酸盐中的小球体加载,从而在最少的人工干预下促进大肿瘤球体的可复制和可扩展形成。144PillarPlate上生物打印的Hep3B球体在144PerfusionPlate上动态培养,并与抗癌药物一起检测药物有效性,确定抑制50%细胞活力所需的浓度(IC50值)。灌注板方便了肿瘤球体的动态培养,方便了抗癌药物的动态检测,灵敏度提高。设想将肿瘤球体的微阵列生物打印集成到柱板上,并在灌注板上进行动态3D细胞培养,可以更准确地复制肿瘤微环境。这一进展有可能显著提高个体化癌症治疗的预测性药物筛选过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dynamic Culture of Bioprinted Liver Tumor Spheroids in a Pillar/Perfusion Plate for Predictive Screening of Anticancer Drugs

Dynamic Culture of Bioprinted Liver Tumor Spheroids in a Pillar/Perfusion Plate for Predictive Screening of Anticancer Drugs

Recent advancements in three-dimensional (3D) cell culture technologies, such as cell spheroids, organoids, and 3D bioprinted tissue constructs, have significantly improved the physiological relevance of in vitro models. These models better mimic tissue structure and function, closely emulating in vivo characteristics and enhancing phenotypic analysis, critical for basic research and drug screening in personalized cancer therapy. Despite their potential, current 3D cell culture platforms face technical challenges, which include user-unfriendliness in long-term dynamic cell culture, incompatibility with rapid cell encapsulation in biomimetic hydrogels, and low throughput for compound screening. To address these issues, we developed a 144-pillar plate with sidewalls and slits (144PillarPlate) and a complementary 144-perfusion plate with perfusion wells and reservoirs (144PerfusionPlate) for dynamic 3D cell culture and predictive compound screening. To accelerate biomimetic tissue formation, small Hep3B liver tumor spheroids suspended in alginate were printed and encapsulated on the 144PillarPlate rapidly by using microsolenoid valve-driven 3D bioprinting technology. The microarray bioprinting technology enabled precise and rapid loading of small spheroids in alginate on the pillar plate, facilitating reproducible and scalable formation of large tumor spheroids with minimal manual intervention. The bioprinted Hep3B spheroids on the 144PillarPlate were dynamically cultured in the 144PerfusionPlate and tested with anticancer drugs to measure drug effectiveness and determine the concentration required to inhibit 50% of the cell viability (IC50 value). The perfusion plate enabled the convenient dynamic culture of tumor spheroids and facilitated the dynamic testing of anticancer drugs with increased sensitivity. It is envisioned that the integration of microarray bioprinting of tumor spheroids onto the pillar plate, along with dynamic 3D cell culture in the perfusion plate, could more accurately replicate tumor microenvironments. This advancement has the potential to enhance the predictive drug screening process in personalized cancer therapy significantly.

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来源期刊
Biotechnology and Bioengineering
Biotechnology and Bioengineering 工程技术-生物工程与应用微生物
CiteScore
7.90
自引率
5.30%
发文量
280
审稿时长
2.1 months
期刊介绍: Biotechnology & Bioengineering publishes Perspectives, Articles, Reviews, Mini-Reviews, and Communications to the Editor that embrace all aspects of biotechnology. These include: -Enzyme systems and their applications, including enzyme reactors, purification, and applied aspects of protein engineering -Animal-cell biotechnology, including media development -Applied aspects of cellular physiology, metabolism, and energetics -Biocatalysis and applied enzymology, including enzyme reactors, protein engineering, and nanobiotechnology -Biothermodynamics -Biofuels, including biomass and renewable resource engineering -Biomaterials, including delivery systems and materials for tissue engineering -Bioprocess engineering, including kinetics and modeling of biological systems, transport phenomena in bioreactors, bioreactor design, monitoring, and control -Biosensors and instrumentation -Computational and systems biology, including bioinformatics and genomic/proteomic studies -Environmental biotechnology, including biofilms, algal systems, and bioremediation -Metabolic and cellular engineering -Plant-cell biotechnology -Spectroscopic and other analytical techniques for biotechnological applications -Synthetic biology -Tissue engineering, stem-cell bioengineering, regenerative medicine, gene therapy and delivery systems The editors will consider papers for publication based on novelty, their immediate or future impact on biotechnological processes, and their contribution to the advancement of biochemical engineering science. Submission of papers dealing with routine aspects of bioprocessing, description of established equipment, and routine applications of established methodologies (e.g., control strategies, modeling, experimental methods) is discouraged. Theoretical papers will be judged based on the novelty of the approach and their potential impact, or on their novel capability to predict and elucidate experimental observations.
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