An Integrated Microfluidic Biomimetic Tumor-on-a-Chip for Wide-Range Screening of Chemotherapy and Photodynamic Therapy.

IF 9.6 2区 医学 Q1 ENGINEERING, BIOMEDICAL
Jinwei Zhang, Meilin Sun, Fen Zhang, Tingting Xuanyuan, Xufang Liu, Danyang Yu, Wenming Liu
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引用次数: 0

Abstract

Microengineered cancer model is exceedingly practical in preclinical screening, while establishing a highly tumor-biomimetic pathophysiological microsystem with multi-function integration remains challenging. Here, an integrated microfluidic biomimetic tumor-on-a-chip (IMBTC) platform is established to reinforce at once the spatiotemporal control of fluid/cell samples and wide-range gradient (WRG), as well as the in vitro multi-feature reconstruction of native tumors for supporting diverse preclinical therapy evaluations. The active pneumatic manipulators enable precise cell capture and array-like organization with high positioning efficiency. The WRG generator can unprecedentedly create a wide range of chemical gradients with up to 8 orders of magnitude, affording efficient therapy screening evaluation in a single chip capable of producing hundreds of tumors with size-uniformity via coculturing under a physiological flow condition. Multiple high-biomimetic characteristics in the engineered tumors, including complex multilayer organization, various phenotypic/biochemical gradients involving proliferation, viability, metabolism, hypoxia, and molecular penetration, and heterogeneous cell and stroma compositions, are validated. The IMBTC system is applied to successively evaluate individual drug chemotherapy, combinatorial chemotherapy, and photosensitive drug-dominant photodynamic therapy, thereby identifying the effective lethal doses from wide-range antitumor concentration screenings. The verified IMBTC system offers considerable benefits for advancing the development of next-generation tumor-on-a-chip and an innovative preclinical screening paradigm.

用于化疗和光动力治疗大范围筛选的集成微流控仿生肿瘤芯片。
微工程肿瘤模型在临床前筛选中具有重要的实用价值,但建立一个高度肿瘤仿生、多功能集成的病理生理微系统仍是一个挑战。本研究建立了一个集成的微流控仿生肿瘤芯片(IMBTC)平台,以加强对流体/细胞样本和宽范围梯度(WRG)的时空控制,以及原生肿瘤的体外多特征重建,以支持多种临床前治疗评估。主动气动机械手能够精确捕获细胞和具有高定位效率的阵列式组织。WRG发生器可以前所未有地产生高达8个数量级的大范围化学梯度,在单个芯片上提供有效的治疗筛选评估,能够在生理流动条件下通过共培养产生数百个尺寸均匀的肿瘤。工程肿瘤的多种高仿生特性,包括复杂的多层组织,涉及增殖、活力、代谢、缺氧和分子渗透的各种表型/生化梯度,以及异质细胞和基质组成,都得到了验证。IMBTC系统被应用于依次评价单个药物化疗、联合化疗和光敏药物优势光动力治疗,从而从大范围抗肿瘤浓度筛选中确定有效致死剂量。经过验证的IMBTC系统为推进下一代芯片肿瘤的发展和创新的临床前筛查范式提供了相当大的好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advanced Healthcare Materials
Advanced Healthcare Materials 工程技术-生物材料
CiteScore
14.40
自引率
3.00%
发文量
600
审稿时长
1.8 months
期刊介绍: Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.
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