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Featured researches published by Meiwen Cao.


Langmuir | 2010

Facile Disassembly of Amyloid Fibrils Using Gemini Surfactant Micelles

Yuchun Han; Chengqian He; Meiwen Cao; Xu Huang; Yilin Wang; Zhibo Li

The accumulation of a peptide of 38-43 amino acids, in the form of fibrillar plaques, was one of the essential reasons for Alzheimers disease (AD). Discovering an agent that is able to disassemble and clear disease-associated Abeta peptide fibrils from the brains of AD patients would have critical implications not only in understanding the dynamic process of peptide aggregation but also in the development of therapeutic strategies for AD. This study reported a new finding that cationic gemini surfactant C(12)C(6)C(12)Br(2) micelles can effectively disassemble the Abeta(1-40) fibrils in vitro. Systematic comparisons with other surfactants using ThT fluorescence, AFM, and FTIR techniques suggested that the disassembly effectiveness of gemini surfactant micelles arises from their special molecular structure (i.e., positively bicharged head and twin hydrophobic chains). To track the disassembly process, systematic cryoTEM characterization was also done, which suggested a three-stage disassembly process: (i) Spherical micelles are first absorbed onto the Abeta fibrils because of attractive electrostatic interaction. (ii) Elongated fibrils then disintegrate into short pieces and form nanoscopic aggregates via synergistic hydrophobic and electrostatic interactions. (iii) Finally, complete disaggregation of fibrils and dynamic reassembly result in the formation of peptide/surfactant complexes.


Journal of Physical Chemistry B | 2008

Micellization of Surfactin and Its Effect on the Aggregate Conformation of Amyloid β(1-40)

Yuchun Han; Xu Huang; Meiwen Cao; Yilin Wang

The aggregation of amyloid beta-peptide (Abeta(1-40)) into fibrils is a key pathological process associated with Alzheimers disease. This work has investigated the micellization process of biosurfactant surfactin and its effect on the aggregation behavior of Abeta(1-40). The results show that surfactin has strong self-assembly ability to form micelles and the micelles tend to form larger aggregates. Surfactin adopts a beta-turn conformation at low micelle concentration but a beta-sheet conformation at high micelle concentration. The effect of surfactin on the Abeta(1-40) aggregation behavior exhibits a strong concentration-dependent fashion. Below the critical micelle concentration of surfactin, the electrostatic binding of surfactin monomers on Abeta(1-40) causes Abeta(1-40) molecules to unfold. Assisted by the hydrophobic interaction among surfactin monomers on the Abeta(1-40) chain, the conformation of Abeta(1-40) transfers to the beta-sheet structure, which promotes the formation of fibrils. At low surfactin micelle concentration, besides the electrostatic force and hydrophobic interaction, hydrogen bonds formed between surfactin micelles and adjacent Abeta(1-40) peptide chains may promote the ordered organization of these Abeta(1-40) peptide chains, thus leading to the formation of beta-sheets and fibrils to a great extent. At high surfactin micelle concentration, the separating of Abeta(1-40) chains by the excessive surfactin micelles and the aggregation of the complexes of Abeta(1-40) with surfactin micelles inhibit the formation of beta-sheets and fibrils.


Journal of Physical Chemistry B | 2006

Fabrication of Highly Antireflective Silicon Surfaces with Superhydrophobicity

Meiwen Cao; Xiaoyan Song; Jin Zhai; Jinben Wang; Yilin Wang


Journal of Colloid and Interface Science | 2008

Aggregation behaviors of a series of anionic sulfonate gemini surfactants and their corresponding monomeric surfactant

Yingxiong Wang; Yuchun Han; Xu Huang; Meiwen Cao; Yilin Wang


Colloids and Surfaces A: Physicochemical and Engineering Aspects | 2008

Aggregation properties of cationic gemini surfactants with dihydroxyethylamino headgroups in aqueous solution

Xu Huang; Yuchun Han; Yingxiong Wang; Meiwen Cao; Yilin Wang


Langmuir | 2007

Micellization of dissymmetric cationic gemini surfactants and their interaction with dimyristoylphosphatidylcholine vesicles.

Yanru Fan; Yajuan Li; Meiwen Cao; Jinben Wang; Yilin Wang; Robert J. Thomas


Journal of Physical Chemistry B | 2007

Modulation of Fibrillogenesis of Amyloid β(1−40) Peptide with Cationic Gemini Surfactant

Meiwen Cao; Yuchun Han; Jinben Wang; Yilin Wang


Journal of Physical Chemistry B | 2006

Controllable Organization of a Carboxylic Acid Type Gemini Surfactant at Different pH Values by Adding Copper(II) Ions

Xu Huang; Meiwen Cao; Jinben Wang; Yilin Wang


Journal of Colloid and Interface Science | 2006

Adsorption of hexyl-α,ω-bis(dodecyldimethylammonium bromide) gemini surfactant on silica and its effect on wettability

Meiwen Cao; Xiaoyan Song; Jinben Wang; Yilin Wang


Langmuir | 2007

Surface patterns induced by Cu2+ ions on BPEI/PAA layer-by-layer assembly.

Meiwen Cao; Jinben Wang; Yilin Wang

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Yilin Wang

Chinese Academy of Sciences

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Jinben Wang

Chinese Academy of Sciences

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Yuchun Han

Chinese Academy of Sciences

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Xu Huang

Chinese Academy of Sciences

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Xiaoyan Song

Chinese Academy of Sciences

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Yanru Fan

Chinese Academy of Sciences

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Yingxiong Wang

Chinese Academy of Sciences

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Charles C. Han

Chinese Academy of Sciences

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Haike Yan

Chinese Academy of Sciences

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Jin Zhai

Chinese Academy of Sciences

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