4.8 Article

Enthalpy-driven self-assembly of amphiphilic Janus dendrimers into onion-like vesicles: a Janus particle model

期刊

NANOSCALE
卷 11, 期 37, 页码 17350-17356

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/c9nr05885k

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资金

  1. National Natural Science Foundation of China [21774129, 21674116, 21833008, 21790344]
  2. National Key R&D Program of China [2018YFB0703701]
  3. Jilin Provincial science and technology development program [20190101021JH]
  4. Key Research Program of Frontier Sciences CAS [QYZDY-SSW-SLH027]
  5. Network and Computing Center CIAC CAS
  6. Youth Innovation Promotion Association CAS [2018257]

向作者/读者索取更多资源

Synthetic vesicles of amphiphilic Janus dendrimers are known as dendrimersomes. The understanding of the conditions and formation mechanism of dendrimersomes is meaningful for further controlling the structures. Herein, the characteristics of the self-assembly of amphiphilic Janus dendrimer/water solutions into unilamellar and onion-like dendrimersomes are studied by molecular dynamics simulations via a spherical single-site Janus particle model. The model with two distinct surfaces, one hydrophobic side and another hydrophilic side, describes the amphiphilic nature of Janus dendrimers. By reducing the dendrimers with complex architectures to be simple Janus particles, we investigate the concentration-dependent self-assembled structures as well as the enthalpy-driven formation process of onion-like dendrimersomes, in contrast to the entropy-mediated self-assembly of amphiphilic flexible chains. Three typical equilibrium morphologies including linear micelles, lamellar structures and vesicles are found upon varying the Janus balance and dendrimer concentration. It is observed that the dendrimersomes consisting of the dendrimers with neglectable molecular configuration entropy become very stable, which agrees well with experimental observation. Specifically, different from many lipidsomes and polymersomes which can spontaneously merge, the size of dendrimersomes will not increase through mutual fusion once the well-defined onion-like structure is formed. Moreover, the discharge of water is achieved by water diffusion in our simulations, instead of in the peeling-one-onion-layer-at-a-time fashion. Our study combined with the previous ones using flexible chain models could depict a complete picture of dendrimersomes in favor of their applications in drug and gene delivery.

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