348
Y. Cheng and H. Jin
65. Zhu Y, Xu Z, Gao J, Ji W, Zhang J (2020) An antibody-aptamer sandwich cathodic photoelectrochemical biosensor for the detection of progesterone. Biosens Bioelectron 160:112210.
https://doi.org/10.1016/j.bios.2020.112210
66. Alfthan H, Schröder J, Fraser R, Koskimies A, Halila H, Stenman UH (1988) Choriogonadotropin and its beta subunit separated by hydrophobic-interaction chromatography and
quantified in serum during pregnancy by time-resolved immunofluorometric assays. Clin
Chem 34(9):1758–1762
67. Hay DL (1988) Placental histology and the production of human choriogonadotrophin and
its subunits in pregnancy. Br J Obstet Gynaecol 95(12):1268–1275. https://doi.org/10.1111/
j.1471-0528.1988.tb06817.x
68. Ding X, Yang KL (2013) Antibody-free detection of human chorionic gonadotropin by use
of liquid crystals. Anal Chem 85(22):10710–10716. https://doi.org/10.1021/ac400732n
69. Xia N, Wang X, Liu L (2016) A graphene oxide-based fluorescent method for the detection
of human chorionic gonadotropin. Sensors (Basel) 16(10)
70. Loh KP, Bao Q, Eda G, Chhowalla M (2010) Graphene oxide as a chemically tunable platform
for optical applications. Nat Chem 2(12):1015–1024. https://doi.org/10.1038/nchem.907
71. Plaxco KW, Soh HT (2011) Switch-based biosensors: a new approach towards real-time,
in vivo molecular detection. Trends Biotechnol 29(1):1–5
72. Breault-Turcot J, Masson JF (2015) Microdialysis SPR: diffusion-gated sensing in blood.
Chem Sci 6(7):4247–4254
73. Arroyo-Currás N, Somerson J, Vieira PA, Ploense KL, Kippin TE, Plaxco KW (2017) Realtime measurement of small molecules directly in awake, ambulatory animals. Proc Natl Acad
Sci U S A 114(4):645–650
74. Renard E (2008) Implantable continuous glucose sensors. Curr Diabet Rev 4(3):169–174.
https://doi.org/10.2174/157339908785294406
75. Ward WK, House JL, Birck J, Anderson EM, Jansen LB (2004) A wire-based dual-analyte
sensor for glucose and lactate: in vitro and in vivo evaluation. Diabet Technol Ther 6(3):389–
401. https://doi.org/10.1089/152091504774198106
76. Kraft JC, Osterhaus GL, Ortiz AN, Garris PA, Johnson MA (2009) In vivo dopamine release
and uptake impairments in rats treated with 3-nitropropionic acid. Neuroscience 161(3):940–
949. https://doi.org/10.1016/j.neuroscience.2009.03.083
77. Zhang J, Jaquins-Gerstl A, Nesbitt KM, Rutan SC, Michael AC, Weber SG (2013) In vivo
monitoring of serotonin in the striatum of freely moving rats with one minute temporal resolution by online microdialysis-capillary high-performance liquid chromatography at elevated
temperature and pressure. Anal Chem 85(20):9889–9897
78. Wassum KM, Tolosa VM, Tseng TC, Balleine BW, Monbouquette HG, Maidment NT (2012)
Transient extracellular glutamate events in the basolateral amygdala track reward-seeking
actions. J Neurosci 32(8):2734–2746
79. Porchetta A, Vallée-Bélisle A, Plaxco KW, Ricci F (2012) Using distal-site mutations and
allosteric inhibition to tune, extend, and narrow the useful dynamic range of aptamer-based
sensors. J Am Chem Soc 134(51):20601–20604
80. Schoukroun-Barnes LR, Glaser EP, White RJ (2015) Heterogeneous electrochemical aptamerbased sensor surfaces for controlled sensor response. Langmuir 31(23):6563–6569
81. Simon AJ, Vallée-Bélisle A, Ricci F, Plaxco KW (2014) Intrinsic disorder as a generalizable
strategy for the rational design of highly responsive, allosterically cooperative receptors. Proc
Natl Acad Sci U S A 111(42):15048–15053
82. Schoukroun-Barnes LR, Wagan S, White RJ (2014) Enhancing the analytical performance
of electrochemical RNA aptamer-based sensors for sensitive detection of aminoglycoside
antibiotics. Anal Chem 86(2):1131–1137. https://doi.org/10.1021/ac4029054
83. Dauphin-Ducharme P, Yang K, Arroyo-Currás N, Ploense KL, Zhang Y, Gerson J, Kurnik M,
Kippin TE, Stojanovic MN, Plaxco KW (2019) Electrochemical aptamer-based sensors for
improved therapeutic drug monitoring and high-precision, feedback-controlled drug delivery.
ACS Sens 4(10):2832–2837
Y. Cheng and H. Jin
65. Zhu Y, Xu Z, Gao J, Ji W, Zhang J (2020) An antibody-aptamer sandwich cathodic photoelectrochemical biosensor for the detection of progesterone. Biosens Bioelectron 160:112210.
https://doi.org/10.1016/j.bios.2020.112210
66. Alfthan H, Schröder J, Fraser R, Koskimies A, Halila H, Stenman UH (1988) Choriogonadotropin and its beta subunit separated by hydrophobic-interaction chromatography and
quantified in serum during pregnancy by time-resolved immunofluorometric assays. Clin
Chem 34(9):1758–1762
67. Hay DL (1988) Placental histology and the production of human choriogonadotrophin and
its subunits in pregnancy. Br J Obstet Gynaecol 95(12):1268–1275. https://doi.org/10.1111/
j.1471-0528.1988.tb06817.x
68. Ding X, Yang KL (2013) Antibody-free detection of human chorionic gonadotropin by use
of liquid crystals. Anal Chem 85(22):10710–10716. https://doi.org/10.1021/ac400732n
69. Xia N, Wang X, Liu L (2016) A graphene oxide-based fluorescent method for the detection
of human chorionic gonadotropin. Sensors (Basel) 16(10)
70. Loh KP, Bao Q, Eda G, Chhowalla M (2010) Graphene oxide as a chemically tunable platform
for optical applications. Nat Chem 2(12):1015–1024. https://doi.org/10.1038/nchem.907
71. Plaxco KW, Soh HT (2011) Switch-based biosensors: a new approach towards real-time,
in vivo molecular detection. Trends Biotechnol 29(1):1–5
72. Breault-Turcot J, Masson JF (2015) Microdialysis SPR: diffusion-gated sensing in blood.
Chem Sci 6(7):4247–4254
73. Arroyo-Currás N, Somerson J, Vieira PA, Ploense KL, Kippin TE, Plaxco KW (2017) Realtime measurement of small molecules directly in awake, ambulatory animals. Proc Natl Acad
Sci U S A 114(4):645–650
74. Renard E (2008) Implantable continuous glucose sensors. Curr Diabet Rev 4(3):169–174.
https://doi.org/10.2174/157339908785294406
75. Ward WK, House JL, Birck J, Anderson EM, Jansen LB (2004) A wire-based dual-analyte
sensor for glucose and lactate: in vitro and in vivo evaluation. Diabet Technol Ther 6(3):389–
401. https://doi.org/10.1089/152091504774198106
76. Kraft JC, Osterhaus GL, Ortiz AN, Garris PA, Johnson MA (2009) In vivo dopamine release
and uptake impairments in rats treated with 3-nitropropionic acid. Neuroscience 161(3):940–
949. https://doi.org/10.1016/j.neuroscience.2009.03.083
77. Zhang J, Jaquins-Gerstl A, Nesbitt KM, Rutan SC, Michael AC, Weber SG (2013) In vivo
monitoring of serotonin in the striatum of freely moving rats with one minute temporal resolution by online microdialysis-capillary high-performance liquid chromatography at elevated
temperature and pressure. Anal Chem 85(20):9889–9897
78. Wassum KM, Tolosa VM, Tseng TC, Balleine BW, Monbouquette HG, Maidment NT (2012)
Transient extracellular glutamate events in the basolateral amygdala track reward-seeking
actions. J Neurosci 32(8):2734–2746
79. Porchetta A, Vallée-Bélisle A, Plaxco KW, Ricci F (2012) Using distal-site mutations and
allosteric inhibition to tune, extend, and narrow the useful dynamic range of aptamer-based
sensors. J Am Chem Soc 134(51):20601–20604
80. Schoukroun-Barnes LR, Glaser EP, White RJ (2015) Heterogeneous electrochemical aptamerbased sensor surfaces for controlled sensor response. Langmuir 31(23):6563–6569
81. Simon AJ, Vallée-Bélisle A, Ricci F, Plaxco KW (2014) Intrinsic disorder as a generalizable
strategy for the rational design of highly responsive, allosterically cooperative receptors. Proc
Natl Acad Sci U S A 111(42):15048–15053
82. Schoukroun-Barnes LR, Wagan S, White RJ (2014) Enhancing the analytical performance
of electrochemical RNA aptamer-based sensors for sensitive detection of aminoglycoside
antibiotics. Anal Chem 86(2):1131–1137. https://doi.org/10.1021/ac4029054
83. Dauphin-Ducharme P, Yang K, Arroyo-Currás N, Ploense KL, Zhang Y, Gerson J, Kurnik M,
Kippin TE, Stojanovic MN, Plaxco KW (2019) Electrochemical aptamer-based sensors for
improved therapeutic drug monitoring and high-precision, feedback-controlled drug delivery.
ACS Sens 4(10):2832–2837
