12.01.2017 Views

DISSERTATION

resolver

resolver

SHOW MORE
SHOW LESS

Create successful ePaper yourself

Turn your PDF publications into a flip-book with our unique Google optimized e-Paper software.

39. Tinland, B., Pluen, A., Sturm, J., Weill, G.: Persistence length of single-stranded DNA.<br />

Macromolec. 1997, 30.<br />

40. Chi Q.; Wang G.; Jiang J.: The persistence length and length per base of single-stranded<br />

DNA obtained from fluorescence correlation spectroscopy measurements using mean field<br />

theory. Phys. A 2013, 392, 1072–1079.<br />

41. Netz R. R.; Andelman D.: Neutral and charged polymers at interfaces. Phys. Rep. 2003,<br />

380, 1–95.<br />

42. Kaiser W.; Rant U.: Conformations of end-tethered DNA molecules on gold surfaces:<br />

influences of applied electric potential, electrolyte screening, and temperature. J. Am.<br />

Chem. Soc. 2010, 132, 7935–7945.<br />

43. Bard A. J.; Faulkner L. R.: Electrochemical methods: Fundamentals and applications.<br />

New York: Wiley, 2001.<br />

44. Kelley S. O.; Barton J. K.; Jackson N. M.; McPherson L. D.; Potter A. B.; Spain E. M., et<br />

al.: Orienting DNA Helices on Gold Using Applied Electric Fields. Langmuir 1998, 14,<br />

6781–6784.<br />

45. Gorodetsky A. A.; Buzzeo M. C.; Barton J. K.: DNA-mediated electrochemistry.<br />

Bioconjugate Chem. 2008, 19, 2285–2296.<br />

46. Palecek E.: Past, present and future of nucleic acids electrochemistry. Talanta 2002, 56,<br />

809–819.<br />

47. Nimse S. B.; Song K.; Sonawane M. D.; Sayyed D. R.; Kim T.: Immobilization techniques<br />

for microarray: challenges and applications. Sensors 2014, 14, 22208–22229.<br />

48. Odenthal K. J.; Gooding J. J.: An introduction to electrochemical DNA biosensors.<br />

Analyst 2007, 132, 603–610.<br />

49. Liu A.; Wang K.; Weng S.; Lei Y.; Lin L.; Chen W., et al.: Development of<br />

electrochemical DNA biosensors. TrAC 2012, 37, 101–111.<br />

50. Cooper J.; Cass A. E. G. (eds): Biosensors: A practical approach. Oxford: Oxford<br />

University Press 2004.<br />

51. Miller M. B.; Tang Y.-W.: Basic concepts of microarrays and potential applications in<br />

clinical microbiology. Clin. Microbiol. Rev. 2009, 22, 611–633.<br />

52. Ronald G. Sosnowski, Eugene Tu, William F. Butler, James P. O’Connel, and Michael J.<br />

Heller: Rapid determination of single base mismatch mutations in DNA hybrids by direct<br />

electric field control. Proc. Natl. Acad. Sci. 1997, 94, 1119–1123.<br />

53. Wang J.: Electrochemical nucleic acid biosensors. Anal. Chim. Acta 2002, 469, 63–71.<br />

54. Ryan M. Fryer, Jeffrey Randall, Takumi Yoshida, Li-Li Hsiao: Global analysis of gene<br />

expression: methods, interpretation, and pitfalls. Exp. Nephrol. 2002, 10, 64–74.<br />

55. TELES F.; FONSECA L.: Trends in DNA biosensors. Talanta 2008, 77, 606–623.<br />

56. Drummond T. G.; Hill M. G.; Barton J. K.: Electrochemical DNA sensors. Nature<br />

Biotech. 2003, 21, 1192–1199.<br />

57. Zhou X. C.; Huang L. Q.; Li S. F. Y.: Microgravimetric DNA sensor based on quartz<br />

crystal microbalance. Comparison of oligonucleotide immobilization methods and the<br />

application in genetic diagnosis. Biosens. Bioelec. 2001, 16, 85–95.<br />

58. Dell'Atti D.; Zavaglia M.; Tombelli S.; Bertacca G.; Cavazzana A. O.; Bevilacqua G., et<br />

al.: Development of combined DNA-based piezoelectric biosensors for the simultaneous<br />

detection and genotyping of high risk Human Papilloma Virus strains. Clin. Chim. Acta<br />

2007, 383, 140–146.<br />

59. Palecek E.; Bartosik M.: Electrochemistry of nucleic acids. Chem. Rev. 2012, 112, 3427–<br />

3481.<br />

60. Armistead P. M.; Thorp H. H.: Modification of Indium Tin Oxide Electrodes with Nucleic<br />

Acids. Detection of Attomole Quantities of Immobilized DNA by Electrocatalysis. Anal.<br />

Chem. 2000, 72, 3764–3770.<br />

129

Hooray! Your file is uploaded and ready to be published.

Saved successfully!

Ooh no, something went wrong!