4.8 Article

Cell-Directed Integration into Three-Dimensional Lipid-Silica Nanostructured Matrices

期刊

ACS NANO
卷 4, 期 10, 页码 5539-5550

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn101793u

关键词

sol-gel; mesoporous silica; biomaterials; cell encapsulation/entrapment; cell-directed integration; evaporation-induced self-assembly

资金

  1. Defense Treat Reduction Agency (DTRA) [B0844671]
  2. DoE NNSA Office for Nonproliferation Research and Development [NA-22]
  3. Air Force Office of Science and Research (AFOSR)
  4. Sandia's Lab
  5. DoE Office of Science Basic Energy Sciences Division of Materials Science and Engineering
  6. Center for Integrated Nanotechnologies, a U.S. Department of Energy Office of Basic Energy Sciences user facility at Los Alamos National Laboratory [DE-AC52-06NA25396]
  7. U.S. Department of Energy's National Nuclear Security Administration [DE-AC04-94AL85000]

向作者/读者索取更多资源

We report a unique approach in which living cells direct their integration into 3D solid-state nanostructures. Yeast cells deposited on a weakly condensed lipid/silica thin film mesophase actively reconstruct the surface to create a fully 3D bio/nano interface, composed of localized lipid bilayers enveloped by a lipid/silica mesophase, through a self-catalyzed silica condensation process. Remarkably, this integration process selects exclusively for living cells over the corresponding apoptotic cells (those undergoing programmed cell death), via the development of a pH gradient, which catalyzes silica deposition and the formation of a coherent interface between the cell and surrounding silica matrix. Added long-chain lipids or auxiliary nanocomponents are localized within the pH gradient, allowing the development of complex active and accessible bio/nano interfaces not achievable by other synthetic methods. Overall, this approach provides the first demonstration of active cell-directed integration into a nominally solid-state three-dimensional architecture. It promises a new means to integrate bio with nano into platforms useful to study and manipulate cellular behavior at the individual cell level and to interface living organisms with electronics, photonics, and fluidics.

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