Topics in Current Chemistry (2020) 378:35
1 3
74. Dubertret B, Skourides P, Norris DJ, Noireaux V, Brivanlou AH, Libchaber A (2002) In vivo imaging of quantum dots encapsulated in phospholipid micelles. Science 298:1759–1762
75. Park J, Lee J, Kwag J, Baek Y, Kim B, Yoon CJ, Bok S, Cho S-H, Kim KH, Ahn GO, Kim S
(2015) Quantum dots in an amphiphilic polyethyleneimine derivative platform for cellular labeling,
targeting, gene delivery, and ratiometric oxygen sensing. ACS Nano 9:6511–6521
76. Zhou J, Yang Y, Zhang C-Y (2015) Toward biocompatible semiconductor quantum dots: from biosynthesis and bioconjugation to biomedical application. Chem Rev 115:11669–11717
77. Qu W, Zuo W, Li N, Hou Y, Song Z, Gou G, Yang J (2017) Design of multifunctional liposomequantum dot hybrid nanocarriers and their biomedical application. J Drug Target 25:661–672
78. Green NM (1963) The use of [
14
C]biotin for kinetic studies and for assay. Biochem J 89:585–591
79. Biju V (2014) Chemical modifications and bioconjugate reactions of nanomaterials for sensing,
imaging, drug delivery and therapy. Chem Soc Rev 43:737–962
80. Russ Algar W (2017) A brief introduction to traditional bioconjugate chemistry, Chap. 1. In: Algar
WR, Dawson PE, Medintz IL (eds) Chemoselective and bioorthogonal ligation reactions: concepts
and applications, vol 1. Wiley‐VCH Verlag GmbH. & Co. KGaA. In the other chapters of volume 1
the reactions mentioned in chapter 1 are dealt in detail
81. Bioconjugation technical handbook. Reagents for crosslinking, immobilization, modification, biotinylation, and fluorescent labeling of proteins and peptides. Thermo Fisher Scientific. https ://www.
therm ofish er.com/es/es/home/globa l/forms /life-scien ce/bioco njuga tion-techn ical-handb ook-downl
oad.html. Accessed 11 Mar 2020.
82. Wagner AM, Knipe JM, Orive G, Peppas NA (2019) Quantum dots in biomedical applications.
Acta Biomater 94:44–63
83. Lišková M, Voráčová I, Klepárník K, Hezinová V, Přikryl J, Foret F (2011) Conjugation reactions
in the preparations of quantum dot-based immunoluminescent probes for analysis of proteins by
capillary electrophoresis. Anal Bioanal Chem 400:369–379
84. Algar WR, Prasuhn DE, Stewart MH, Jennings TL, Blanco-Canosa JB, Dawson PE, Medintz IL
(2011) The controlled display of biomolecules on nanoparticles: a challenge suited to bioorthogonal chemistry. Bioconjugate Chem 22:825–858
85. Massey M, Algar WR (2017) Nanoparticle bioconjugates: materials that benefit from chemoselective and bioorthogonal ligation chemistries. In: Algar WR, Dawson PE, Medintz IL (eds) Chemoselective and bioorthogonal ligation reactions: concepts and applications, vol 1. Wiley-VCH Verlag GmbH & Co. KGaA, Wienheim, pp 568–586
86. Row RD, Prescher JA (2018) Constructing new bioorthogonal reagents and reactions. Acc Chem
Res 51:1073–1081
87. Wen L, Qiu L, Wu Y, Hu X, Zhang X (2017) Aptamer-modified semiconductor quantum dots for
biosensing applications. Sensors 17:1736
88. Zhang C, Ding C, Zhou G, Xue Q, Xian Y (2017) One-step synthesis of DNA functionalized
cadmium-free quantum dots and its application in FRET-based protein sensing. Anal Chim Acta
957:63–69
89. Long Y, Zhang LF, Zhang Y, Zhang CY (2012) Single quantum dot based nanosensor for renin
assay. Anal Chem 84:8846–8852
90. Sanvicens N, Pascual N, Fernández-Argüelles MT, Adrián J, Costa-Fernández JM, Sánchez-Baeza
F, Sanz-Medel A, Marco MP (2011) Quantum dot-based array for sensitive detection of Escherichia coli. Anal Bioanal Chem 399:2755–2762
91. Wang Y, Gao D, Zhang P, Gong P, Chen C, Gao G, Cai L (2014) A near infrared fluorescence
resonance energy transfer based aptamer biosensor for insulin detection in human plasma. Chem
Commun 50:811–813
92. Chen L, Tse WH, Chen Y, McDonald MW, Melling J, Zhang J (2017) Nanostructured biosensor
for detecting glucose in tear by applying fluorescence resonance energy transfer quenching mechanism. Biosens Bioelectron 91:393–399
93. Cayuela A, Soriano ML, Carrillo-Carrión C, Valcárcel M (2016) Semiconductor and carbon-based
fluorescent nanodots: the need for consistency. Chem Commun 52:1311–1326
94. Resch-Genger U, Grabolle M, Cavaliere-Jaricot S, Nitschke R, Nann T (2008) Quantum dots versus organic dyes as fluorescent labels. Nat Methods 5:763–775
95. Wu S, Liu L, Li G, Jing F, Mao H, Jin Q, Zhai W, Zhang H, Zhao J, Jia C (2016) Multiplexed detection of lung cancer biomarkers based on quantum dots and microbeads. Talanta 156–157:48–54
172
Reprinted from the journal
1 3
74. Dubertret B, Skourides P, Norris DJ, Noireaux V, Brivanlou AH, Libchaber A (2002) In vivo imaging of quantum dots encapsulated in phospholipid micelles. Science 298:1759–1762
75. Park J, Lee J, Kwag J, Baek Y, Kim B, Yoon CJ, Bok S, Cho S-H, Kim KH, Ahn GO, Kim S
(2015) Quantum dots in an amphiphilic polyethyleneimine derivative platform for cellular labeling,
targeting, gene delivery, and ratiometric oxygen sensing. ACS Nano 9:6511–6521
76. Zhou J, Yang Y, Zhang C-Y (2015) Toward biocompatible semiconductor quantum dots: from biosynthesis and bioconjugation to biomedical application. Chem Rev 115:11669–11717
77. Qu W, Zuo W, Li N, Hou Y, Song Z, Gou G, Yang J (2017) Design of multifunctional liposomequantum dot hybrid nanocarriers and their biomedical application. J Drug Target 25:661–672
78. Green NM (1963) The use of [
14
C]biotin for kinetic studies and for assay. Biochem J 89:585–591
79. Biju V (2014) Chemical modifications and bioconjugate reactions of nanomaterials for sensing,
imaging, drug delivery and therapy. Chem Soc Rev 43:737–962
80. Russ Algar W (2017) A brief introduction to traditional bioconjugate chemistry, Chap. 1. In: Algar
WR, Dawson PE, Medintz IL (eds) Chemoselective and bioorthogonal ligation reactions: concepts
and applications, vol 1. Wiley‐VCH Verlag GmbH. & Co. KGaA. In the other chapters of volume 1
the reactions mentioned in chapter 1 are dealt in detail
81. Bioconjugation technical handbook. Reagents for crosslinking, immobilization, modification, biotinylation, and fluorescent labeling of proteins and peptides. Thermo Fisher Scientific. https ://www.
therm ofish er.com/es/es/home/globa l/forms /life-scien ce/bioco njuga tion-techn ical-handb ook-downl
oad.html. Accessed 11 Mar 2020.
82. Wagner AM, Knipe JM, Orive G, Peppas NA (2019) Quantum dots in biomedical applications.
Acta Biomater 94:44–63
83. Lišková M, Voráčová I, Klepárník K, Hezinová V, Přikryl J, Foret F (2011) Conjugation reactions
in the preparations of quantum dot-based immunoluminescent probes for analysis of proteins by
capillary electrophoresis. Anal Bioanal Chem 400:369–379
84. Algar WR, Prasuhn DE, Stewart MH, Jennings TL, Blanco-Canosa JB, Dawson PE, Medintz IL
(2011) The controlled display of biomolecules on nanoparticles: a challenge suited to bioorthogonal chemistry. Bioconjugate Chem 22:825–858
85. Massey M, Algar WR (2017) Nanoparticle bioconjugates: materials that benefit from chemoselective and bioorthogonal ligation chemistries. In: Algar WR, Dawson PE, Medintz IL (eds) Chemoselective and bioorthogonal ligation reactions: concepts and applications, vol 1. Wiley-VCH Verlag GmbH & Co. KGaA, Wienheim, pp 568–586
86. Row RD, Prescher JA (2018) Constructing new bioorthogonal reagents and reactions. Acc Chem
Res 51:1073–1081
87. Wen L, Qiu L, Wu Y, Hu X, Zhang X (2017) Aptamer-modified semiconductor quantum dots for
biosensing applications. Sensors 17:1736
88. Zhang C, Ding C, Zhou G, Xue Q, Xian Y (2017) One-step synthesis of DNA functionalized
cadmium-free quantum dots and its application in FRET-based protein sensing. Anal Chim Acta
957:63–69
89. Long Y, Zhang LF, Zhang Y, Zhang CY (2012) Single quantum dot based nanosensor for renin
assay. Anal Chem 84:8846–8852
90. Sanvicens N, Pascual N, Fernández-Argüelles MT, Adrián J, Costa-Fernández JM, Sánchez-Baeza
F, Sanz-Medel A, Marco MP (2011) Quantum dot-based array for sensitive detection of Escherichia coli. Anal Bioanal Chem 399:2755–2762
91. Wang Y, Gao D, Zhang P, Gong P, Chen C, Gao G, Cai L (2014) A near infrared fluorescence
resonance energy transfer based aptamer biosensor for insulin detection in human plasma. Chem
Commun 50:811–813
92. Chen L, Tse WH, Chen Y, McDonald MW, Melling J, Zhang J (2017) Nanostructured biosensor
for detecting glucose in tear by applying fluorescence resonance energy transfer quenching mechanism. Biosens Bioelectron 91:393–399
93. Cayuela A, Soriano ML, Carrillo-Carrión C, Valcárcel M (2016) Semiconductor and carbon-based
fluorescent nanodots: the need for consistency. Chem Commun 52:1311–1326
94. Resch-Genger U, Grabolle M, Cavaliere-Jaricot S, Nitschke R, Nann T (2008) Quantum dots versus organic dyes as fluorescent labels. Nat Methods 5:763–775
95. Wu S, Liu L, Li G, Jing F, Mao H, Jin Q, Zhai W, Zhang H, Zhao J, Jia C (2016) Multiplexed detection of lung cancer biomarkers based on quantum dots and microbeads. Talanta 156–157:48–54
172
Reprinted from the journal
