402
Y. Dong et al.
References
1. Stoltenburg R, Reinemann C, Strehlitz B (2007) Selex–a (R)evolutionary method to generate
high-affinity nucleic acid ligands. Biomol Eng 24(4):381–403
2. Gopinath SCB (2007) Methods developed for SELEX. Anal Bioanal Chem 387:171–182
3. Darmostuk M, Rimpelova S, Gbelcova H, Ruml T (2015) Current approaches in selex: an
update to aptamer selection technology. Biotechnol Adv 33(6):1141–1161
4. Lyu Y, Chen G, Shangguan D, Zhang L, Wan S, Wu Y, Zhang H, Duan L, Liu C, You M (2016)
Generating cell targeting aptamers for nanotheranostics using Cell-SELEX. Theranostics
6(9):1440–1452
5. Fang X, Tan W (2010) Aptamers generated from Cell-SELEX for molecular medicine: a
chemical biology approach. Acc Chem Res 43(1):48–57
6. Stoltenburg R, Reinemann C, Strehlitz B (2005) FluMag-SELEX as an advantageous method
for DNA aptamer selection. Anal Bioanal Chem 383:83–91
7. Dong L, Tan Q, Ye W, Liu D, Chen H, Hu H, Wen D, Liu Y, Cao Y, Kang J (2015) Screening
and Identifying a Novel ssDNA aptamer against alpha-fetoprotein using CE-SELEX. Sci Rep
5:15552–15552
8. Xu Y, Yang X, Wang E (2010) Review: Aptamers in microfluidic chips. Anal Chim Acta
683(1):12–20
9. Zhou Q, Xia X, Luo Z, Liang H, Shakhnovich EI (2015) Searching the sequence space for
potent aptamers using SELEX in silico. J Chem Theory Comput 11(12):5939–5946
10. Nagatoishi S, Isono N, Tsumoto K, Sugimoto N (2011) Loop residues of thrombin-binding
DNA aptamer impact G-quadruplex stability and thrombin binding. Biochimie 93(8):1231–
1238
11. Mousses S (2008) Microarray (cDNA) Technology. In: Schwab M (ed) Encyclopedia of cancer.
Springer, Berlin, Heidelberg
12. Witt M, Walter JG, Frank Stahl F (2015) Aptamer microarrays—current status and future
prospects. Microarrays 4(2):115–132
13. Webber J, Stone TC, Katilius E, Smith BC, Gordon B, Mason MD, Tabi Z, Brewis IA, Clayton
A (2014) Proteomics analysis of cancer exosomes using a novel modified aptamer-based array
(SomaScan TM ) platform. Mol Cell Proteomics 13(4):1050–1064
14. Reinholt SJ, Craighead HG (2018) Microfluidic device for aptamer-based cancer cell capture
and genetic mutation detection. Anal Chem 90(4):2601–2608
15. Weng X, Neethirajan S (2017) Aptamer-based fluorometric determination of norovirus using
a paper-based microfluidic device. Microchim Acta 184(11):4545–4552
16. Sparreboom W, van den Berg A, Eijkel JCT (2009) Principles and applications of nanofluidic
transport. Nat Nanotechnol 4(11):713–720
17. Mawatari K, Kazoe Y, Shimizu H, Pihosh Y, Kitamori T (2014) Extended-Nanofluidics: fundamental technologies, unique liquid properties, and application in chemical and bio analysis
methods and devices. Anal Chem 86(9):4068–4077
18. Pihosh Y, Uemura J, Turkevych I, Mawatari K, Kazoe Y, Smirnova A, Kitamori T (2017)
From extended nanofluidics to an autonomous solar-light-driven micro fuel-cell device, Angew.
Chemie Int. Ed. 56(28):8130–8133
19. Xu Y (2018) Nanofluidics: a new arena for materials science. Adv Mater 30(3):1702419
20. Xu Y, Matsumoto N (2015) Flexible and in situ fabrication of nanochannels with high aspect
ratios and nanopillar arrays in fused silica substrates utilizing focused ion beam. RSC Adv
5(62):50638–50643
21. Xu Y, Matsumoto N, Wu Q, Shimatani Y, Kawata H (2015) Site-specific nanopatterning
of functional metallic and molecular arbitrary features in nanofluidic channels. Lab Chip
15(9):1989–1993
22. Xu Y, Wang C, Dong Y, Li L, Jang K, Mawatari K, Suga T, Kitamori T (2012) Low-temperature
direct bonding of glass nanofluidic biochips using a two-step plasma surface activation process.
Anal Bioanal Chem 402:1011–1018
Y. Dong et al.
References
1. Stoltenburg R, Reinemann C, Strehlitz B (2007) Selex–a (R)evolutionary method to generate
high-affinity nucleic acid ligands. Biomol Eng 24(4):381–403
2. Gopinath SCB (2007) Methods developed for SELEX. Anal Bioanal Chem 387:171–182
3. Darmostuk M, Rimpelova S, Gbelcova H, Ruml T (2015) Current approaches in selex: an
update to aptamer selection technology. Biotechnol Adv 33(6):1141–1161
4. Lyu Y, Chen G, Shangguan D, Zhang L, Wan S, Wu Y, Zhang H, Duan L, Liu C, You M (2016)
Generating cell targeting aptamers for nanotheranostics using Cell-SELEX. Theranostics
6(9):1440–1452
5. Fang X, Tan W (2010) Aptamers generated from Cell-SELEX for molecular medicine: a
chemical biology approach. Acc Chem Res 43(1):48–57
6. Stoltenburg R, Reinemann C, Strehlitz B (2005) FluMag-SELEX as an advantageous method
for DNA aptamer selection. Anal Bioanal Chem 383:83–91
7. Dong L, Tan Q, Ye W, Liu D, Chen H, Hu H, Wen D, Liu Y, Cao Y, Kang J (2015) Screening
and Identifying a Novel ssDNA aptamer against alpha-fetoprotein using CE-SELEX. Sci Rep
5:15552–15552
8. Xu Y, Yang X, Wang E (2010) Review: Aptamers in microfluidic chips. Anal Chim Acta
683(1):12–20
9. Zhou Q, Xia X, Luo Z, Liang H, Shakhnovich EI (2015) Searching the sequence space for
potent aptamers using SELEX in silico. J Chem Theory Comput 11(12):5939–5946
10. Nagatoishi S, Isono N, Tsumoto K, Sugimoto N (2011) Loop residues of thrombin-binding
DNA aptamer impact G-quadruplex stability and thrombin binding. Biochimie 93(8):1231–
1238
11. Mousses S (2008) Microarray (cDNA) Technology. In: Schwab M (ed) Encyclopedia of cancer.
Springer, Berlin, Heidelberg
12. Witt M, Walter JG, Frank Stahl F (2015) Aptamer microarrays—current status and future
prospects. Microarrays 4(2):115–132
13. Webber J, Stone TC, Katilius E, Smith BC, Gordon B, Mason MD, Tabi Z, Brewis IA, Clayton
A (2014) Proteomics analysis of cancer exosomes using a novel modified aptamer-based array
(SomaScan TM ) platform. Mol Cell Proteomics 13(4):1050–1064
14. Reinholt SJ, Craighead HG (2018) Microfluidic device for aptamer-based cancer cell capture
and genetic mutation detection. Anal Chem 90(4):2601–2608
15. Weng X, Neethirajan S (2017) Aptamer-based fluorometric determination of norovirus using
a paper-based microfluidic device. Microchim Acta 184(11):4545–4552
16. Sparreboom W, van den Berg A, Eijkel JCT (2009) Principles and applications of nanofluidic
transport. Nat Nanotechnol 4(11):713–720
17. Mawatari K, Kazoe Y, Shimizu H, Pihosh Y, Kitamori T (2014) Extended-Nanofluidics: fundamental technologies, unique liquid properties, and application in chemical and bio analysis
methods and devices. Anal Chem 86(9):4068–4077
18. Pihosh Y, Uemura J, Turkevych I, Mawatari K, Kazoe Y, Smirnova A, Kitamori T (2017)
From extended nanofluidics to an autonomous solar-light-driven micro fuel-cell device, Angew.
Chemie Int. Ed. 56(28):8130–8133
19. Xu Y (2018) Nanofluidics: a new arena for materials science. Adv Mater 30(3):1702419
20. Xu Y, Matsumoto N (2015) Flexible and in situ fabrication of nanochannels with high aspect
ratios and nanopillar arrays in fused silica substrates utilizing focused ion beam. RSC Adv
5(62):50638–50643
21. Xu Y, Matsumoto N, Wu Q, Shimatani Y, Kawata H (2015) Site-specific nanopatterning
of functional metallic and molecular arbitrary features in nanofluidic channels. Lab Chip
15(9):1989–1993
22. Xu Y, Wang C, Dong Y, Li L, Jang K, Mawatari K, Suga T, Kitamori T (2012) Low-temperature
direct bonding of glass nanofluidic biochips using a two-step plasma surface activation process.
Anal Bioanal Chem 402:1011–1018
