9 Aptamers for the Diagnosis of Malign Tumors
271
47. Martin V, Sullivan B, Walker K, Hawk H, Sullivan B, Noe L (2006) Surface plasmon resonance
investigations of human epidermal growth factor receptor 2. Appl Spectrosc 60(9):994–1003
48. Eletxigerra U, Martinez-Perdiguero J, Barderas R, Pingarrón JM, Campuzano S, Merino
S (2016) Surface plasmon resonance immunosensor for ErbB2 breast cancer biomarker
determination in human serum and raw cancer cell lysates. Anal Chim Acta 905:156–162
49. Uludag Y, Tothill IE (2012) Cancer biomarker detection in serum samples using surface
plasmon resonance and quartz crystal microbalance sensors with nanoparticle signal amplification. Anal Chem 84(14):5898–5904
50. Qian H, Huang Y, Duan X, Wei X, Fan Y, Gan D, Yue S, Cheng W, Chen T (2019) Fiber
optic surface plasmon resonance biosensor for detection of PDGF-BB in serum based on
self-assembled aptamer and antifouling peptide monolayer. Biosens Bioelectron 140:111350
51. Yuan J, Oliver R, Li J, Lee J, Aguilar M, Wu Y (2007) Sensitivity enhancement of SPR assay
of progesterone based on mixed self-assembled monolayers using nanogold particles. Biosens
Bioelectron 23(1):144–148
52. Chang C-C, Chiu N-F, Lin DS, Chu-Su Y, Liang Y-H, Lin C-W (2010) High-sensitivity
detection of carbohydrate antigen 15-3 using a gold/zinc oxide thin film surface plasmon
resonance-based biosensor. Anal Chem 82(4):1207–1212
53. Yi B, Williams PJ, Niewolna M, Wang Y, Yoneda T (2002) Tumor-derived platelet-derived
growth factor-BB plays a critical role in osteosclerotic bone metastasis in an animal model of
human breast cancer. Cancer Res 62(3):917–923
54. Yang H, Gijs MAM (2018) Micro-optics for microfluidic analytical applications. Chem Soc
Rev 47(4):1391–1458
55. Vance SA, Sandros MG (2014) Zeptomole detection of C-reactive protein in serum by a
nanoparticle amplified surface plasmon resonance imaging aptasensor. Sci Rep 4:5129
56. Ye S, Mao Y, Guo Y, Zhang S (2014) Enzyme-based signal amplification of surface-enhanced
Raman scattering in cancer-biomarker detection. TrAC Trends Anal Chem 55:43–54
57. Bhamidipati M, Cho H-Y, Lee K-B, Fabris L (2018) SERS-based quantification of biomarker
expression at the single cell level enabled by gold nanostars and truncated aptamers.
Bioconjugate Chem 29(9):2970–2981
58. Danckwardt S, Hentze MW, Kulozik AE (2013) Pathologies at the nexus of blood coagulation and inflammation: thrombin in hemostasis, cancer, and beyond. J Mol Med (Berl)
91(11):1257–1271
59. Li JJ, Fang X, Tan W (2002) Molecular aptamer beacons for real-time protein recognition.
Biochem Biophys Res Commun 292(1):31–40
60. Nutiu R, Li Y (2003) Structure-switching signaling aptamers. J Am Chem Soc 125(16):4771–
4778
61. Fredriksson L, Li H, Eriksson U (2004) The PDGF family: four gene products form five
dimeric isoforms. Cytokine Growth Factor Rev 15(4):197–204
62. Yu J, Ustach C, Kim H-RC (2003) Platelet-derived growth factor signaling and human cancer.
J Biochem Mol Biol 36(1):49–59
63. Wang X, Jiang A, Hou T, Li H, Li F (2015) Enzyme-free and label-free fluorescence
aptasensing strategy for highly sensitive detection of protein based on target-triggered
hybridization chain reaction amplification. Biosens Bioelectron 70:324–329
64. Li X, Ding X, Fan J (2015) Nicking endonuclease-assisted signal amplification of a split
molecular aptamer beacon for biomolecule detection using graphene oxide as a sensing
platform. Analyst 140(23):7918–7925
65. Zheng C, Zheng A-X, Liu B, Zhang X-L, He Y, Li J, Yang H-H, Chen G (2014) One-pot synthesized DNA-templated Ag/Pt bimetallic nanoclusters as peroxidase mimics for colorimetric
detection of thrombin. Chem Commun 50(86):13103–13106
66. Xu H, Wu D, Li C-Q, Lu Z, Liao X-Y, Huang J, Wu Z-S (2017) Label-free colorimetric detection of cancer related gene based on two-step amplification of molecular machine. Biosens
Bioelectron 90:314–320
67. Alix-Panabières C, Pantel K (2014) Challenges in circulating tumour cell research. Nat Rev
Cancer 14(9):623–631
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