4.6 Article

Interfacial Assembly of Turnip Yellow Mosaic Virus Nanoparticles

期刊

LANGMUIR
卷 25, 期 9, 页码 5168-5176

出版社

AMER CHEMICAL SOC
DOI: 10.1021/la900167s

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资金

  1. U.S. DoD MURI program
  2. NSF
  3. Alfred P. Sloan Scholarship
  4. Camille Dreyfus Teacher Scholar Award
  5. DoD-BCRP
  6. W. M. Keck Foundation
  7. DOE
  8. BES [DE-AC02-06CH11357]
  9. Lichtenberg-Program of the VolkswagenStiftung
  10. Direct For Mathematical & Physical Scien
  11. Division Of Materials Research [820506] Funding Source: National Science Foundation

向作者/读者索取更多资源

An extensive study of the factors that affect the interfacial assembly of bionanoparticles at the oil/water (O/W) interface is reported. Bionanoparticles, such as viruses, have distinctive structural properties due to the unique arrangement of their protein structures. The assembly process of such bionanoparticles at interfaces is governed by factors including the ionic strength and pH of the aqueous layer, concentration of the particles, and nature of the oil phase. This study highlights the impact of these factors on the interfacial assembly of bionanoparticles at the O/W interface using native turnip yellow mosaic virus (TYMV) as the prototype. Robust monolayer assemblies of TYMV were produced by self-assembly at the O/W interface using emulsions and planar interfaces. TYMV maintained its structure and integrity under different assembly conditions. For the emulsion droplets, they were fully covered with TYMV as evidenced by transmission electron microscopy (TEM) and scanning force microscopy (SFM). Tensiometry and small-angle neutron scattering (SANS) further supported this finding. Although the emulsions offered a complete coverage by TYMV particles, they lacked long-range ordering due to rapid exchange at the interface. By altering the assembly process, highly ordered, hexagonal arrays of TYMV were obtained at planar O/W interfaces. The pH, ionic strength, and viscosity of the solution played a crucial role in enhancing the lateral ordering of TYMV assembled at the planar O/W interface. This interfacial ordering of TYMV particles was further stabilized by introduction of a positively charged debydroabietyl amine (DHAA) in the organic phase which held the assembly together by electrostatic interactions. The long-range array formation was observed using TEM and SFM. The results presented here illustrate that the interfacial assembly at the O/W interface is a versatile approach to achieve highly stable self-assembled structures.

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