工程DHCM/GelMA微凝胶的新方法:在肝癌细胞包封和化疗耐药研究中的应用。

IF 4.8 3区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Frontiers in Bioengineering and Biotechnology Pub Date : 2025-03-14 eCollection Date: 2025-01-01 DOI:10.3389/fbioe.2025.1564543
Dandan Zhou, Xiaoxiao Li, Wencun Liu, Mingjun Zhang, Ying Cheng, Zhousong Xu, Jian Gao, Yiyang Wang
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引用次数: 0

摘要

肝癌是一种高度侵袭性的恶性肿瘤,由于其明显的化疗耐药性,在治疗管理方面继续面临重大挑战。这种耐药性破坏了传统化疗和靶向治疗的疗效,是由多方面的机制驱动的,越来越强调肿瘤微环境(TME)的保护作用。肝细胞癌细胞外基质(ECM)是TME的主要非细胞成分,已成为癌症进展和耐药的关键调节因子,特别是在肝细胞癌(HCC)中。在这项研究中,通过将脱细胞肝癌基质(DHCM)与甲基丙烯酸明胶(GelMA)前体结合,设计了一种混合仿生水凝胶。该DHCM/GelMA复合水凝胶旨在复制肝细胞癌ECM的物理化学和功能特性,从而为探索hcc与其微环境之间的相互作用提供仿生平台。利用定制的微流控3D打印平台,我们实现了hcc封装DHCM/GelMA微凝胶的高通量制造,其特点是增强了均匀性,生物相容性和可扩展性。这些微凝胶促进了肝细胞癌微组织的构建,随后用于化疗耐药研究。我们的研究结果表明,DHCM/GelMA微凝胶紧密模拟肝细胞癌肿瘤微环境,有效地概括了ecm介导的耐药的关键特征。机制研究进一步表明,DHCM可显著上调囊化hcc中水通道蛋白3 (AQP3)的表达。这种上调可能激活mTOR信号相关的自噬途径,从而增强hcc的化疗耐药。这些仿生模型为研究耐药性的潜在机制和评估治疗干预措施提供了一个强大而通用的平台。这种创新的方法突出了DHCM/GelMA微凝胶作为癌症相关组织工程和抗癌药物筛选的变革性工具的潜力。通过详细研究ECM在化疗耐药中的作用,本研究有助于推进治疗研究,并为克服耐药提供有希望的策略,最终改善肝癌治疗的临床结果。
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A novel approach for engineering DHCM/GelMA microgels: application in hepatocellular carcinoma cell encapsulation and chemoresistance research.

Liver cancer, a highly aggressive malignancy, continues to present significant challenges in therapeutic management due to its pronounced chemoresistance. This resistance, which undermines the efficacy of conventional chemotherapy and targeted therapies, is driven by multifaceted mechanisms, with increasing emphasis placed on the protective role of the tumor microenvironment (TME). The hepatocellular carcinoma extracellular matrix (ECM), a primary non-cellular component of the TME, has emerged as a critical regulator in cancer progression and drug resistance, particularly in hepatocellular carcinoma cell (HCC). In this study, a hybrid biomimetic hydrogel was engineered by integrating decellularized hepatocellular carcinoma matrix (DHCM) with gelatin methacrylate (GelMA) precursors. This composite DHCM/GelMA hydrogel was designed to replicate the physicochemical and functional properties of the hepatocellular carcinoma ECM, thereby offering a biomimetic platform to explore the interactions between HCCs and their microenvironment. Leveraging a custom-designed microfluidic 3D printing platform, we achieved high-throughput fabrication of HCC-encapsulated DHCM/GelMA microgels, characterized by enhanced uniformity, biocompatibility, and scalability. These microgels facilitated the construction of hepatocellular carcinoma microtissues, which were subsequently employed for chemoresistance studies. Our findings revealed that DHCM/GelMA microgels closely mimic the hepatocellular carcinoma tumor microenvironment, effectively recapitulating key features of ECM-mediated drug resistance. Mechanistic studies further demonstrated that DHCM significantly upregulates the expression of Aquaporin 3 (AQP3) in the encapsulated HCCs. This upregulation potentially activates mTOR signaling-associated autophagy pathways, thereby enhancing chemoresistance in HCCs. These biomimetic models provide a robust and versatile platform for studying the underlying mechanisms of drug resistance and evaluating therapeutic interventions. This innovative approach highlights the potential of DHCM/GelMA microgels as a transformative tool in cancer-associated tissue engineering and anticancer drug screening. By enabling detailed investigations into the role of ECM in chemoresistance, this study contributes to advancing therapeutic research and offers promising strategies to overcome drug resistance, ultimately improving clinical outcomes in liver cancer treatment.

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来源期刊
Frontiers in Bioengineering and Biotechnology
Frontiers in Bioengineering and Biotechnology Chemical Engineering-Bioengineering
CiteScore
8.30
自引率
5.30%
发文量
2270
审稿时长
12 weeks
期刊介绍: The translation of new discoveries in medicine to clinical routine has never been easy. During the second half of the last century, thanks to the progress in chemistry, biochemistry and pharmacology, we have seen the development and the application of a large number of drugs and devices aimed at the treatment of symptoms, blocking unwanted pathways and, in the case of infectious diseases, fighting the micro-organisms responsible. However, we are facing, today, a dramatic change in the therapeutic approach to pathologies and diseases. Indeed, the challenge of the present and the next decade is to fully restore the physiological status of the diseased organism and to completely regenerate tissue and organs when they are so seriously affected that treatments cannot be limited to the repression of symptoms or to the repair of damage. This is being made possible thanks to the major developments made in basic cell and molecular biology, including stem cell science, growth factor delivery, gene isolation and transfection, the advances in bioengineering and nanotechnology, including development of new biomaterials, biofabrication technologies and use of bioreactors, and the big improvements in diagnostic tools and imaging of cells, tissues and organs. In today`s world, an enhancement of communication between multidisciplinary experts, together with the promotion of joint projects and close collaborations among scientists, engineers, industry people, regulatory agencies and physicians are absolute requirements for the success of any attempt to develop and clinically apply a new biological therapy or an innovative device involving the collective use of biomaterials, cells and/or bioactive molecules. “Frontiers in Bioengineering and Biotechnology” aspires to be a forum for all people involved in the process by bridging the gap too often existing between a discovery in the basic sciences and its clinical application.
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