reportNovel Bionanostructures
7.4.5 References
1. M.S. Long, C.D. Jones, M.R. Helfrich, L.K. Mangeney-Slavin, C.D. Keating. Dynamic microcompartmentation in synthetic cells. Proc. Natl. Acad. Sci. USA 102, 5920-5925, 2005
2. M.J. Doktycz, M.L. Simpson, Nano-enabled synthetic biology. Molecular Systems Biology 3, 125, 2007
3. D.M. Rissin, D.R. Walt, Digital concentration readout of single enzyme molecules using femtoliter arrays and Poisson statistics. Nano Lett. 6, 520-523, 2006
4. P. Walde, S. Ichikawa, Enzymes inside lipid vesicles: preparation, reactivity and applications. Biomol. Eng. 18, 143-177, 2001
5. M.J. Doktycz , M.L. Simpson, Nano-enabled synthetic biology. Molecular Systems Biology 3, 125, 2007
6. W. Yu, K. Sato, M. Wakabayashi, T. Nakaishi, E.P. Ko-Mitamura, Y. Shima, I. Urabe, T. Yomo, Synthesis of functional protein in liposome. J. Biosci. Bioeng. 92, 590-593, 2001
7. C. Nardin, J. Widmer, M. Winterhalter, W. Meier, Amphiphilic block copolymer nanocontainers as bioreactors. EurPhys. J. E 4, 403-410, 2001
8. D. Ho, B. Chu, H. Lee, E.K. Brooks, K. Kuo, C.D. Montemagno, Fabrication of biomolecule-copolymer hybrid nanovesicles as energy conversion systems. Nanotechnology 16, 3120-3132, 2005
9. T. Imerito, Chemist Chris Keating has a whole new approach to cell modelling, Research Penn State, http://www.rps.psu.edu/indepth/synthetic.html
10. T.G. Mason, J.N. Wilking, K. Meleson, C.B. Chang, S.M. Graves, Nanoemulsions: formation, structure, and physical properties. J. Phys.: Condens. Matter 18, 635-666, 2006
11. T. Tadros, P. Izquierdo, J. Esquena, C. Solans, Formation and stability of nanoemulsions. Adv. Colloid Interface Sci. 109, 303-318, 2004
12. A. Aharoni, A.D. Griffiths, D.S. Tawfik, High-throughput screens and selections of enzyme-encoding genes. Curr. Opin. Chem. Biol. 9, 210-216, 2005
13. J.D. Fowlkes, B.L. Fletcher, E.D. Hullander, K.L. Klein, D.K. Hensley, A.V. Melechko, M.L. Simpson, M.J. Doktycz, Tailored transport through vertically aligned carbon nanofibre membranes; controlled synthesis, modelling, and passive diffusion experiments. Nanotechnology 16, 3101-3109, 2005
14. B.L. Fletcher, E.D. Hullander, A.V. Melechko, T.E. McKnight, K.L. Klein, D.K. Hensley, J.L. Morrell, M.L. Simpson, M.J. Doktycz, Microarrays of biomimetic cells formed by the controlled synthesis of carbon nanofiber membranes. Nano Lett. 4, 1809-1814, 2004
15. B.L. Fletcher, T.E. McKnight, J.D. Fowlkes, D.P. Allison, M.L. Simpson, M.J. Doktycz, Controlling the dimensions of carbon nanofibre structures through the electropolymerization of pyrrole. Synthetic Metals 157, 282-289, 2007
16. R.A. Dubin, G.C. Callegari, J. Kohn, A.V. Neimark, Carbon nanotube fibers are compatible with mammalian cells and neurons. NanoBioscience, IEEE Transactions on Nanobioscience 7, 1, 11 -14, 2008
17. I.F. Uchegbu, S.P. Vyas, Non-ionic surfactant based vesicles (niosomes) in drug delivery. International Journal of Pharmaceutics 172, 1-2, 33-70, 1998
18. D.N. Reddy, N. Udupa, Formulation and evaluation of oral and transdermal preparations of flurbiprofen and piroxicam incorporated with different carriers. Drug Dev. Ind. Pharm. 19, 843-852, 1993
19. W. Walker, J.M. Brewer, J. Alexander, Lipid vesicle-entrapped influenza A antigen modulates the influenza A-specific human antibody response in immune reconstituted SCID-human mice. Eur. J. Immunol. 26, 1664-1667, 1996
20. D. Paolino, R. Muzzalupo, A. Ricciardi, C. Celia, N. Picci, M. Fresta, In vitro and in vivo evaluation of Bola-surfactant containing niosomes for transdermal delivery. Biomed. Microdevices 9, 421-433, 2007
21. J. Griat, R.M. Handjani, A. Ribier, G. Vanlerberghe, A. Zabotto, Cosmetic and pharmaceutical compositions containing niosomes and a water-soluble polyamide, and a process for preparing these compositions, US Patent: 4830857, L'Oreal , US Patent number 4830857
22. R.H. Müller, M. Radtke, S.A. Wissing, Solid lipid nanoparticles (SLN) and nanostructured lipid carriers (NLC) in cosmetic and dermatological preparations. Adv. Drug Deliv. Rev. 54, Suppl., S131-S15, 2002
23. A. Dingler, S. Gohla, Production of solid lipid nanoparticles (SLN): scaling up feasibilities. J. Microencapsulation 19, 11- 6, 2002
24. R. Cavalli, O. Caputo, M.R. Gasco, Preparation and characterization of solid lipid nanospheres containing paclitaxel. Eur. J. Pharm. Sci. 10, 305-309, 2000
25. R.H. Müller, A. Dingler, Feste Lipid-Nanopartikel (Lipopearls) als neuartiger Carrier fu¨r kosmetische und, dermatologische Wirkstoffe, PZ Wiss. 49,11-15,1998
26. P.T. Spicer, M.L. Lynch, M. Visscher, S. Hoath, Bicontinuous cubic liquid crystalline phase and cubosome personal care delivery systems, in M. Rosen (Ed.), Personal Care Delivery Systems and Formulations. Noyes Publishing, 2003
27. G. Gopal, S. Shailendra, S. Swarnlata, Cubosomes: An overview. Biol. Pharm. Bull. 30, 2, 350-353, 2007
28. E. Kesselman, R. Efrat, N. Garti, D. Danino, Formation of cubosomes as vehicles of biologically active substances, available at :http://materials.technion.ac.il/ism/Docs/2007/Life-Abstracts/Poster/E_Kesselman.pdf, 2007
29. K. Matsuurai, N. Kimizuka, T. Yamashita, DNA nanocage by self-organization of DNA and process for producing the same, and DNA nanotube and molecule carrier using the same. Kyushu Tlo Company Ltd. European Patent: EP20030708505, 2004
30. N. Weibel, S. Grundera, M. Mayor, Functional molecules in electronic circuits. Biomol. Chem. 5, 2343-2353, 2007
31. R. Gillard, Molecular switches, nanoelevators, catenanes and rotaxanes created using nanotechnology. Available at: http://www.azonano.com/details.asp?ArticleID=1053; accessed 14 April 2009
32. E.R. Kay, D.A. Leigh, Beyond switches: Rotaxane- and catenane-based synthetic molecular motor. Pure Appl. Chem. 80, 1, 17-29, 2008
33. P.J. Kuekes, S.R. Williams, J.R. Heath, Molecular-wire crossbar interconnect (MWCI) for signal routing and communications. United States Patent 6314019, Hewlett-Packard Company, 2001
34. E.J. Lerner, Making Molecular Switches, The Industrial Physicist. American Institute of Physics, 1999
35. E. Lörtscher, J.W. Ciszek, J. Tour, H. Riel, Reversible and controllable switching of a single-molecule junction. Small 2, 973-977, 2006
36. N. Katsonis, T. Kudernac, M. Walko, S.J. van der Molen, B.J. Van Wees, B.L. Feringa, Reversible conductance switching of single diarylethenes on a gold surface. Adv. Mater.18, 1397-1400, 2006
37. N. Weibel, S. Grundera, M. Mayor, Functional molecules in electronic circuits. Biomol. Chem. 5, 2343-2353, 2007
38. P. Liljeroth, J. Repp, G. Meyer, Current-induced hydrogen tautomerization and conductance switching of naphthalocyanine molecules. Science 317, 5842, 1203-1206, 2007
39. P.L. Anelli, N. Spencer, J.F. Stoddart, A molecular shuttle. J. Am. Chem. Soc. 113, 5131-5133, 1991
40. K.E. Griffiths, J.F. Stoddart, Template-directed synthesis of donor/acceptor [2]catenanes and [2]rotaxanes. Pure Appl. Chem. 80, 485-506, 2008
41. J.E. Green, J.W. Choi, A. Boukai, Y. Bunivovich, E. Johnston-Halpern, E. De-Ionno, Y. Luo, B.A. Sheriff, K. Xu, Y.S. Shin, H.-R. Tseng, J.F. Stoddart, J.R. Heath, A 160-kilobit molecular electronic memory patterned at 1011 bits per square centimetre. Nature 445, 414-417, 2007
42. T.D. Nguyen, H.-R. Tseng, P.C. Celeste, A.H. Flood, Y. Liu, J.F. Stoddart, J.I. Zink, A reversible molecular valve. Proc. Natl. Acad. Sci. USA 102, 10029-10034, 2005
43. E.R. Kay, D.A. Leigh, Beyond switches: Rotaxane- and catenane-based synthetic molecular motors. Pure Appl. Chem. 80, 1, 17-29, 2008
44. D.A. Leigh, J.K.Y. Wong, F. Dehez, F. Zerbetto, Unidirectional rotation in a mechanically interlocked molecular rotor. Nature 424, 174-179, 2003
45. J. Bath, A.J. Turberfield, DNA Nanomachines. Nature nanotechnology 2, 275-284, 2007
46. D. Liu, A. Bruckbauer, C. Abell, S. Balasubramanian, D.-J. Kang, D. Klenerman, D. Zhou, A reversible pH-driven DNA nanoswitch array. J. Am. Chem. Soc. 128, 2067-2071, 2006
47. J. Bath, A.J. Turberfield, DNA Nanomachines. Nature nanotechnology 2, 275-284, 2007
48. B. Ding, N.C. Seeman, Operation of a DNA robot arm inserted into a 2D DNA crystalline substrate. Science 314, 1583-1585, 2006
49. R.M. Dirks, N.A. Pierce, Triggered amplification by hybridization chain reaction. Proc. Natl. Acad. Sci. 101, 15275-15278, 2004
50. R. Penchovsky, R.R. Breaker, Computational design and experimental validation of oligonucleotide-sensing allosteric ribozyme. Nature Biotechnol. 23, 1424-1433, 2005
51. M.N. Win, C.D. Smolke, Higher-order cellular information processing with synthetic RNA devices. Science 1, 322, 5900, 456-460, 2008
52. D. Graham-Rowe, Computing with RNA: Devices that self-assemble from biological molecules could represent the future of drug delivery, available at: http://www.technologyreview.com/biomedicine/21573/?nlid=1435, accessed on 14 April 2009
53. Y. Tian, Y. He, Y. Peng, C.A. Mao, DNA enzyme that walks processively and autonomously along a one-dimensional track. Angew. Chem. Int. Ed. 44, 4355-4358, 2005
54. J. Bath, S.J. Green, A.J. Turberfield, A free-running DNA motor powered by a nicking enzyme. Angew. Chem. Int. Ed. 44, 4358-4361, 2005
55. A.J. Turberfield, J.C. Mitchell, B. Yurke, A.P. Mills Jr, M.I. Blakey, F.C. Simmel, DNA fuel for free-running nanomachines. Phys. Rev. Lett. 90, 118102, 2003
56. R.M. Dirks, N.A. Pierce, Triggered amplification by hybridization chain reaction. Proc. Natl. Acad. Sci. 101, 15275-15278, 2004
57. J. Bath, A.J. Turberfield, DNA Nanomachines. Nature Nanotechnology 2, 275-284, 2007
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