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通用且可编程的杂化脂质体/金属纳米粒子的合成。

General and programmable synthesis of hybrid liposome/metal nanoparticles.

机构信息

Department of Chemical and Biomolecular Engineering, Sogang University, Seoul 121-742, Korea.; Biomolecular Nanotechnology Center, Berkeley Sensor and Actuator Center, Department of Bioengineering, University of California, Berkeley, Berkeley, CA 94720, USA.

Department of Chemical and Biomolecular Engineering, Sogang University, Seoul 121-742, Korea.

出版信息

Sci Adv. 2016 Dec 16;2(12):e1601838. doi: 10.1126/sciadv.1601838. eCollection 2016 Dec.

Abstract

Hybrid liposome/metal nanoparticles are promising candidate materials for biomedical applications. However, the poor selectivity and low yield of the desired hybrid during synthesis pose a challenge. We designed a programmable liposome by selective encoding of a reducing agent, which allows self-crystallization of metal nanoparticles within the liposome to produce stable liposome/metal nanoparticles alone. We synthesized seven types of liposome/monometallic and more complex liposome/bimetallic hybrids. The resulting nanoparticles are tunable in size and metal composition, and their surface plasmon resonance bands are controllable in visible and near infrared. Owing to outer lipid bilayer, our liposome/Au nanoparticle shows better colloidal stability in biologically relevant solutions as well as higher endocytosis efficiency than gold nanoparticles without the liposome. We used this hybrid in intracellular imaging of living cells via surface-enhanced Raman spectroscopy, taking advantage of its improved physicochemical properties. We believe that our method greatly increases the utility of metal nanoparticles in in vivo applications.

摘要

杂化脂质体/金属纳米粒子是有前途的生物医学应用候选材料。然而,在合成过程中所需杂化物的选择性差和产率低是一个挑战。我们通过选择性编码还原剂设计了可编程脂质体,这使得金属纳米粒子在脂质体内自结晶,从而单独产生稳定的脂质体/金属纳米粒子。我们合成了七种类型的脂质体/单金属和更复杂的脂质体/双金属杂化物。所得纳米粒子的尺寸和金属组成可调,其表面等离子体共振带在可见光和近红外范围内可控。由于外层脂质双层,与没有脂质体的金纳米粒子相比,我们的脂质体/Au 纳米粒子在生物相关溶液中具有更好的胶体稳定性和更高的内吞效率。我们通过表面增强拉曼光谱法将这种杂化物用于活细胞的细胞内成像,利用其改善的物理化学性质。我们相信,我们的方法大大提高了金属纳米粒子在体内应用中的实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/40c5/5161430/1dc6ed9fada8/1601838-F1.jpg

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