针对肿瘤细胞的人工自然杀伤细胞模拟系统的设计。

IF 7 1区 工程技术 Q1 CELL & TISSUE ENGINEERING
Journal of Tissue Engineering Pub Date : 2025-09-27 eCollection Date: 2025-01-01 DOI:10.1177/20417314251349675
Vaishali Chugh, Vijaya Krishna Kanala, Dagmar Quandt, Suainibhe Kelly, Damien King, Lasse D Jensen, Jeremy C Simpson, Abhay Pandit
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引用次数: 0

摘要

NK细胞模拟物是细胞膜和模板的集合,分别复制仿生特征和物理化学特性。为了开发这种靶向药物递送系统,明胶微球(cG)使用油包水乳液制成,并通过DMTMM交联增强,以显示可调节的杨氏模量,这是细胞-材料相互作用的关键参数。这些微球随后被来自人类NK细胞系KHYG-1的膜包裹,形成仿生NK细胞模拟物(cGCM),将物理化学控制与生物启发功能相结合。这些工程化的cGCM无毒,无炎症,与分化的THP-1细胞孵育时,能够减少巨噬细胞摄取约10%。体外研究表明,在二维培养的乳腺癌细胞(MDA-MB-231)、三维培养的肝球体(HepG2)和结肠癌(HT-29)细胞模型以及斑马鱼乳腺癌异种移植(MDA-MB-231)模型中,cGCM与癌细胞有显著的相互作用/接近性。在Kdrl:EGFP Spil:Ds红斑马鱼模型中,cGCM也逃避了巨噬细胞的检测。此外,在一项中试评估中,使用cGCM加载和释放唾液转移酶抑制剂(STI, 3fx - peracetyl Neu5Ac)可显著降低MDA-MB-231细胞2D培养中的α-2,6唾液化,证明STI在抑制唾液化方面具有完整的功能。通过将生物激发膜与机械可调明胶载体相结合,我们的系统展示了一个与组织工程、肿瘤建模、免疫调节和药物输送相关的多功能免疫模拟平台。这些发现为未来癌症研究和免疫工程的治疗策略提供了有希望的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design of an artificial natural killer cell mimicking system to target tumour cells.

NK cell mimics are assemblies of a cell membrane and a template that replicate biomimetic features and physicochemical properties, respectively. To develop this targeted drug delivery system, gelatin microspheres (cG) were fabricated using a water-in-oil emulsion and reinforced via DMTMM cross-linking to exhibit tunable Young's modulus, a critical parameter for cell-material interactions. These microspheres were subsequently coated with membranes derived from the human NK cell line KHYG-1 to form biomimetic NK cell mimics (cGCM), combining physicochemical control with bioinspired functionality. These engineered cGCM were non-toxic, non-inflammatory, and capable of reducing macrophage uptake by ~10% when incubated with differentiated THP-1 cells. In vitro studies demonstrated significant interaction/ proximity of the cGCM with cancer cells in 2D cultures of breast cancer cells (MDA-MB-231), 3D spheroids of liver (HepG2), and colon (HT-29) cancer cell models, and a zebrafish breast cancer xenograft (MDA-MB-231) model. The cGCM also evaded macrophage detection in a Kdrl:EGFP Spil:Ds Red zebrafish model. Furthermore, in a pilot assessment, loading and release of the sialyltransferase inhibitor (STI, 3Fax-Peracetyl Neu5Ac) using cGCM significantly reduced α-2,6 sialylation in 2D cultures of MDA-MB-231 cells, demonstrating the STI's intact functionality in inhibiting sialylation. By integrating bioinspired membranes with mechanically tunable gelatin-based carriers, our system demonstrates a multifunctional immune-mimicking platform with relevance to tissue engineering, tumour modelling, immune modulation, and drug delivery. These findings offer a promising foundation for future therapeutic strategies in cancer research and immuno-engineering.

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来源期刊
Journal of Tissue Engineering
Journal of Tissue Engineering Engineering-Biomedical Engineering
CiteScore
11.60
自引率
4.90%
发文量
52
审稿时长
12 weeks
期刊介绍: The Journal of Tissue Engineering (JTE) is a peer-reviewed, open-access journal dedicated to scientific research in the field of tissue engineering and its clinical applications. Our journal encompasses a wide range of interests, from the fundamental aspects of stem cells and progenitor cells, including their expansion to viable numbers, to an in-depth understanding of their differentiation processes. Join us in exploring the latest advancements in tissue engineering and its clinical translation.
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