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利用功能化还原氧化石墨烯通过内体破坏实现光热触发细胞溶质药物递送。

Photothermally triggered cytosolic drug delivery via endosome disruption using a functionalized reduced graphene oxide.

机构信息

Center for Self-assembly and Complexity, Institute for Basic Science, Pohang 790-784, Korea.

出版信息

ACS Nano. 2013 Aug 27;7(8):6735-46. doi: 10.1021/nn403096s. Epub 2013 Jul 16.


DOI:10.1021/nn403096s
PMID:23829596
Abstract

Graphene oxide has unique physiochemical properties, showing great potential in biomedical applications. In the present work, functionalized reduced graphene oxide (PEG-BPEI-rGO) has been developed as a nanotemplate for photothermally triggered cytosolic drug delivery by inducing endosomal disruption and subsequent drug release. PEG-BPEI-rGO has the ability to load a greater amount of doxorubicin (DOX) than unreduced PEG-BPEI-GO via π-π and hydrophobic interactions, showing high water stability. Loaded DOX could be efficiently released by glutathione (GSH) and the photothermal effect of irradiated near IR (NIR) in test tubes as well as in cells. Importantly, PEG-BPEI-rGO/DOX complex was found to escape from endosomes after cellular uptake by photothermally induced endosomal disruption and the proton sponge effect, followed by GSH-induced DOX release into the cytosol. Finally, it was concluded that a greater cancer cell death efficacy was observed in PEG-BPEI-rGO/DOX complex-treated cells with NIR irradiation than those with no irradiation. This study demonstrated the development of the potential of a PEG-BPEI-rGO nanocarrier by photothermally triggered cytosolic drug delivery via endosomal disruption.

摘要

氧化石墨烯具有独特的物理化学性质,在生物医学应用中具有巨大的潜力。在本工作中,功能化还原氧化石墨烯(PEG-BPEI-rGO)已被开发为一种纳米模板,通过诱导内涵体破裂和随后的药物释放,实现光热触发的细胞溶质药物递送。PEG-BPEI-rGO 通过π-π 和疏水相互作用能够比未还原的 PEG-BPEI-GO 装载更多的阿霉素(DOX),表现出高的水稳定性。负载的 DOX 可以通过谷胱甘肽(GSH)和近红外(NIR)照射的光热效应在试管中和细胞中有效地释放。重要的是,PEG-BPEI-rGO/DOX 复合物在细胞摄取后通过光热诱导的内涵体破坏和质子海绵效应从内涵体中逃逸,随后 GSH 诱导 DOX 释放到细胞质中。最后得出结论,与没有照射的细胞相比,用 NIR 照射的 PEG-BPEI-rGO/DOX 复合物处理的癌细胞死亡效果更大。本研究通过内涵体破坏的光热触发细胞溶质药物递送,展示了 PEG-BPEI-rGO 纳米载体的发展潜力。

相似文献

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Photothermally triggered cytosolic drug delivery via endosome disruption using a functionalized reduced graphene oxide.

ACS Nano. 2013-7-16

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J Transl Med. 2024-7-2

[2]
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[3]
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J Nanobiotechnology. 2024-2-18

[4]
Attenuation of Chronic Inflammation in Intestinal Organoids with Graphene Oxide-Mediated Tumor Necrosis Factor-α_Small Interfering RNA Delivery.

Langmuir. 2024-2-7

[5]
Progress and challenges of graphene and its congeners for biomedical applications.

J Mol Liq. 2022-12-15

[6]
Graphene Oxide Nanostructures as Nanoplatforms for Delivering Natural Therapeutic Agents: Applications in Cancer Treatment, Bacterial Infections, and Bone Regeneration Medicine.

Nanomaterials (Basel). 2023-9-28

[7]
Potential Biomedical Limitations of Graphene Nanomaterials.

Int J Nanomedicine. 2023

[8]
Graphene-based nanomaterials for stimuli-sensitive controlled delivery of therapeutic molecules.

Front Bioeng Biotechnol. 2023-2-9

[9]
Synthesis and Functionalization of Graphene Materials for Biomedical Applications: Recent Advances, Challenges, and Perspectives.

Adv Sci (Weinh). 2023-3

[10]
Nanocomposites of Nitrogen-Doped Graphene Oxide and Manganese Oxide for Photodynamic Therapy and Magnetic Resonance Imaging.

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