Bio-Design and Manufacturing  2026 Vol.9 No.5 P.954 - 978

http://doi.org/10.1631/bdm.2500501


Folic acid-conjugated hydroxyapatite nanoparticles induce 4T1 cell apoptosis via multiple pathways to potentiate breast cancer inhibition: a mechanistic study


Author(s):  Huishan Li,Wenjue Kang,Chunhua Guo,Wenhao Li,Xiaoqin He,Jing Wang

Affiliation(s):  1. School of Life Science and Technology, Northwestern Polytechnical University, Xi’an 710072, China more

Corresponding email(s):   jingwang_@nwpu.edu.cn

Key Words:  Hydroxyapatite, Folic acid, Cell apoptosis, Calcium signaling, Inflammatory remodeling


Huishan Li, Wenjue Kang, Chunhua Guo, Wenhao Li, Xiaoqin He, Jing Wang. Folic acid-conjugated hydroxyapatite nanoparticles induce 4T1 cell apoptosis via multiple pathways to potentiate breast cancer inhibition: a mechanistic study[J]. Journal of Zhejiang University Science D, 2026, 9(5): 954 - 978.

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publisher="Zhejiang University Press & Springer",
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Abstract: 
An increasing number of nanomaterials are being applied in adjuvant tumor therapy, and prior studies have reported that inorganic nanoparticles can exert tumor-suppressive effects. Among these materials, hydroxyapatite (HA) nanoparticles have garnered substantial attention owing to their strong biocompatibility and inhibitory activity against tumor cell proliferation. However, insufficient cancer cell targeting of HA nanoparticles limits their antitumor efficacy. In this study, we developed folic acid (FA)-conjugated HA nanoparticles (HF nanoparticles) that enhance HA-mediated tumor inhibition by binding to overexpressed FA receptors on cancer cell membranes and exploiting the elevated FA demand in cancer metabolism. In in vivo experiments, HF nanoparticles significantly inhibited tumor growth compared with HA nanoparticles alone, and the former exhibited a synergistic antitumor effect with doxorubicin. Subsequent in vitro mechanistic analyses revealed that tumor-targeted HF nanoparticles induced intracellular calcium overload in 4T1 cells, causing calcium homeostasis imbalance, which disrupted mitochondrial membrane integrity, promoted cytochrome c release, and increased reactive oxygen species accumulation, ultimately activating apoptotic signaling and accelerating apoptosis. Additionally, these exogenous nanoparticles remodeled the immune landscape of the tumor microenvironment: HF nanoparticles promoted M1 macrophage polarization and elevated tumor necrosis factor-α expression, interfering with cancer cell cycle progression and division while activating caspase-related apoptotic genes, further intensifying apoptosis. Overall, this study demonstrated that HF nanoparticles can be engineered as highly targeted antitumor agents and drug delivery carriers, providing nanobiomaterials for more efficient tumor therapy.

叶酸偶联羟基磷灰石纳米颗粒通过多通路调控4T1 细胞凋亡增强乳腺癌抑制作用的机制解析

纳米材料在肿瘤辅助治疗中的应用日益广泛,已有研究证实无机纳米颗粒具备抑瘤活性,其中羟基磷灰石(HA)纳米颗粒因优异的生物相容性及肿瘤细胞增殖抑制能力成为研究热点,但肿瘤细胞靶向性不足的缺陷显著限制其抗肿瘤效能。本研究构建叶酸偶联羟基磷灰石(HF)纳米颗粒,通过靶向肿瘤细胞膜高表达的叶酸受体、契合肿瘤代谢的叶酸高需求特性,实现 HA 抑瘤效应的高效增强。体内实验证实,与单纯 HA 纳米颗粒相比,HF 纳米颗粒可显著抑制肿瘤生长,且与阿霉素联用呈现协同抗肿瘤作用;体外机制研究表明,靶向性 HF 纳米颗粒可诱导 4T1 细胞发生钙超载并引发钙稳态失衡,进而破坏线粒体膜完整性、促进细胞色素 C 释放及活性氧蓄积,最终激活凋亡信号通路加速肿瘤细胞凋亡。此外,该外源性纳米颗粒可重构肿瘤微环境免疫微生态,通过促进巨噬细胞 M1 型极化、上调肿瘤坏死因子-α 表达,一方面干扰肿瘤细胞周期进程与分裂,另一方面激活半胱氨酸天冬氨酸蛋白酶相关凋亡基因,实现肿瘤细胞凋亡的进一步强化。综上,本研究证实 HF 纳米颗粒可作为高靶向性抗肿瘤制剂及药物递送载体,为研发高效肿瘤治疗方案提供了新型纳米生物材料支撑。
关键词:羟基磷灰石;叶酸;细胞凋亡;钙信号;免疫重塑

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On-line Access: 2026-09-12

Received: 2025-09-30

Revision Accepted: 2026-01-17

Crosschecked: 0000-00-00

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Citations:  Bibtex RefMan EndNote GB/T7714

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