基于 DNA 超分子水凝胶的保护性 NK 细胞储库用于增强三阴性乳腺癌治疗
Protective NK Cell Reservoir Based on DNA Supramolecular Hydrogel for Enhanced Triple-Negative Breast Cancer Therapy.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Artificial Host-Guest Recognition Directs Glycometabolically Engineered Macrophages to Tumors.
Artificial Host-Guest Recognition Directs Glycometabolically Engineered Macrophages to Tumors.
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基于CD3ζ的嵌合抗原受体巨噬细胞(CAR-M)疗法在实体瘤中的应用受到复杂病毒介导的基因工程以及免疫抑制性肿瘤微环境中维持持久促炎表型困难的限制。
在此,我们引入一种超分子糖工程策略,绕过基因修饰。通过利用一种新型代谢标记试剂Ac₄ManNAda,我们成功通过天然生物合成途径将金刚烷(Ada,客体分子)标签安装到巨噬细胞表面,生成糖工程化超分子巨噬细胞(GSAR-M)。这种标记不仅通过CD-Ada主客体相互作用显著增强了对β-环糊精(β-CD,主体分子)标记肿瘤细胞的识别,而且出乎意料地充当了内在激活剂。它在GSAR-M中诱导了一种持续且独特的激活状态,其特征是激活标志物上调以及迁移、吞噬和杀肿瘤能力增强。
此外,随后用LPS刺激这些细胞(称为GSAR-M+)协同放大了F-actin含量和伪足形成,从而在体外实现了更优越的肿瘤细胞捕获。在小鼠4T1乳腺癌模型中,这种超分子糖工程策略实现了显著的肿瘤生长阻滞,并有效重塑了免疫抑制性肿瘤微环境。
本研究建立了一种简化、经济高效且非病毒的工程范式,将主客体识别与糖代谢工程相结合,为过继性细胞疗法中下一代工程化免疫细胞的开发提供了关键见解。
CD3ζ-based chimeric antigen receptor macrophage (CAR-M) therapy for solid tumors is limited by complex viral-mediated genetic engineering and the challenge of maintaining a durable pro-inflammatory phenotype within the immunosuppressive tumor microenvironment.
Here, we introduce a supramolecular glycoengineering strategy that bypasses genetic modification. By utilizing a novel metabolic labeling agent, Ac 4 ManNAda, we successfully install adamantane (Ada, a guest molecule) tags onto macrophage surfaces via native biosynthetic pathways to generate glycoengineered supramolecular macrophages (GSAR-M).
This labeling not only significantly enhances recognition of β-cyclodextrin (β-CD, a host molecule)-tagged tumor cells via CD-Ada host-guest interactions but also, unexpectedly, acts as an intrinsic activator. It induces a sustained distinct activated state in GSAR-M, characterized by upregulated activation markers and enhanced migratory, phagocytic, and tumoricidal capacities.
Furthermore, subsequent LPS stimulation of these cells (termed GSAR-M+) cooperatively amplifies F-actin content and pseudopodia formation, leading to superior tumor cell capture in vitro. In a murine 4T1 breast cancer model, this supramolecular glycoengineering strategy achieves profound tumor growth arrest and effectively remodels the immunosuppressive tumor microenvironment.
This study establishes a streamlined, cost-effective, and non-viral engineering paradigm that integrates host-guest recognition with glycometabolic engineering, providing critical insights for the development of next-generation engineered immune cells in adoptive cell therapies.
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