8 Aptamers for the Diagnosis of Infectious Diseases
235
42. Moayeri M, Leppla SH (2004) The roles of anthrax toxin in pathogenesis. Curr Opin Microbiol
7(1):19–24
43. Lahousse M, Park HC, Lee SC, Ha NR, Jung IP, Schlesinger SR, Shackelford K, Yoon MY,
Kim SK (2018) Inhibition of anthrax lethal factor by ssDNA aptamers. Arch Biochem Biophys
646:16–23
44. Choi JS, Kim SG, Lahousse M, Park HY, Park HC, Jeong B, Kim J, Kim SK, Yoon MY
(2011) Screening and Characterization of High-Affinity ssDNA Aptamers against Anthrax
Protective Antigen. J Biomol Screen 16(2):266–271
45. Bruno JG, Carrillo MP (2012) Development of aptamer beacons for rapid presumptive
detection of Bacillus spores. J Fluoresc 22(3):915–924
46. Oh BN, Lee S, Park HY, Baeg JO, Yoon MY, Kim J (2011) Sensitive fluorescence assay of
anthrax protective antigen with two new DNA aptamers and their binding properties. Analyst
136(16):3384–3388
47. Kim DJ, Park HC, Sohn IY, Jung JH, Yoon OJ, Park JS, Yoon MY, Lee NE (2013) Electrical Graphene Aptasensor for ultra-sensitive detection of anthrax toxin with amplified signal
transduction. Small 9(19):3352–3360
48. Lee SC, Gedi V, Ha NR, Cho JH, Park HC, Yoon MY (2015) Development of receptor-based
inhibitory RNA aptamers for anthrax toxin neutralization. Int J Biol Macromol 77:293–302
49. Dong Y, Zhang T, Lin X, Feng J, Luo F, Gao H, Wu Y, Deng R, He Q (2020) Graphene/aptamer
probes for small molecule detection: from in vitro test to in situ imaging. Microchim Acta
187(3):179
50. Karimi F, Dabbagh S (2019) Gel green fluorescence ssDNA aptasensor based on carbon
nanotubes for detection of anthrax protective antigen. Int J Biol Macromol 140:842–850
51. Ivanovskii AL (2012) Graphene-based and graphene-like materials. Russ Chem Rev
81(7):571–605
52. Bradley KA, Mogridge J, Mourez M, Collier RJ, Young JAJN (2001) Identification of the
cellular receptor for anthrax toxin. Nature 414(6860):225–229
53. Prasidthrathsint K, Stapleton JT (2019) Laboratory diagnosis and monitoring of viral hepatitis.
Gastroenterol Clin North Am 48(2):259–279
54. Qu F, Liu Y, Kong R, You J (2017) A versatile DNA detection scheme based on the quenching
of fluorescent silver nanoclusters by MoS2 nanosheets: application to aptamer-based
determination of hepatitis B virus and of dopamine. Microchim Acta 184(11):4417–4424
55. Zheng H, Lang Y, Yu J, Han Z, Chen B, Wang Y (2019) Affinity binding of aptamers to
agarose with DNA tetrahedron for removal of hepatitis B virus surface antigen. Colloids Surf
B 178:80–86
56. Ghanbari K, Roushani M (2018) A nanohybrid probe based on double recognition of an
aptamer MIP grafted onto a MWCNTs-Chit nanocomposite for sensing hepatitis C virus core
antigen. Sens Actuators B Chem 258:1066–1071
57. Pleshakova OT, Kaysheva LA, Shumov DI, Ziborov SV, Bayzyanova MJ, Konev AV, Uchaikin
FV, Archakov IA, Ivanov DY (2019) Detection of Hepatitis C Virus Core Protein in Serum
Using Aptamer-Functionalized AFM Chips. Micromachines 10 (2)
58. Huang R, Xi Z, Deng Y, He N (2016) Fluorescence based Aptasensors for the determination
of hepatitis B virus e antigen. Sci Rep 6(1):31103
59. Park JH, Jee MH, Kwon OS, Keum SJ, Jang SK (2013) Infectivity of hepatitis C virus
correlates with the amount of envelope protein E2: development of a new aptamer-based
assay system suitable for measuring the infectious titer of HCV. Virology 439(1):13–22
60. Ghanbari K, Roushani M, Azadbakht A (2017) Ultra-sensitive aptasensor based on a GQD
nanocomposite for detection of hepatitis C virus core antigen. Anal Biochem 534:64–69
61. Madhombiro M, Cha R, Sawyer J, Przybyla S, Burstein G, Morse GD (2019) Why do
young adults living with HIV perform poorly on combined antiretroviral therapy (CART)? a
Zimbabwean perspective. Future Virol 14(4):211–217
62. Zeng J, Li X, Yuan H, Ma M, Li D, Ma J, Liao S Screening ssDNA aptamers against HIV P24
antigen using agarose beads as carriers. In: BIO Web of Conferences, 2017. EDP Sciences, p
03009
235
42. Moayeri M, Leppla SH (2004) The roles of anthrax toxin in pathogenesis. Curr Opin Microbiol
7(1):19–24
43. Lahousse M, Park HC, Lee SC, Ha NR, Jung IP, Schlesinger SR, Shackelford K, Yoon MY,
Kim SK (2018) Inhibition of anthrax lethal factor by ssDNA aptamers. Arch Biochem Biophys
646:16–23
44. Choi JS, Kim SG, Lahousse M, Park HY, Park HC, Jeong B, Kim J, Kim SK, Yoon MY
(2011) Screening and Characterization of High-Affinity ssDNA Aptamers against Anthrax
Protective Antigen. J Biomol Screen 16(2):266–271
45. Bruno JG, Carrillo MP (2012) Development of aptamer beacons for rapid presumptive
detection of Bacillus spores. J Fluoresc 22(3):915–924
46. Oh BN, Lee S, Park HY, Baeg JO, Yoon MY, Kim J (2011) Sensitive fluorescence assay of
anthrax protective antigen with two new DNA aptamers and their binding properties. Analyst
136(16):3384–3388
47. Kim DJ, Park HC, Sohn IY, Jung JH, Yoon OJ, Park JS, Yoon MY, Lee NE (2013) Electrical Graphene Aptasensor for ultra-sensitive detection of anthrax toxin with amplified signal
transduction. Small 9(19):3352–3360
48. Lee SC, Gedi V, Ha NR, Cho JH, Park HC, Yoon MY (2015) Development of receptor-based
inhibitory RNA aptamers for anthrax toxin neutralization. Int J Biol Macromol 77:293–302
49. Dong Y, Zhang T, Lin X, Feng J, Luo F, Gao H, Wu Y, Deng R, He Q (2020) Graphene/aptamer
probes for small molecule detection: from in vitro test to in situ imaging. Microchim Acta
187(3):179
50. Karimi F, Dabbagh S (2019) Gel green fluorescence ssDNA aptasensor based on carbon
nanotubes for detection of anthrax protective antigen. Int J Biol Macromol 140:842–850
51. Ivanovskii AL (2012) Graphene-based and graphene-like materials. Russ Chem Rev
81(7):571–605
52. Bradley KA, Mogridge J, Mourez M, Collier RJ, Young JAJN (2001) Identification of the
cellular receptor for anthrax toxin. Nature 414(6860):225–229
53. Prasidthrathsint K, Stapleton JT (2019) Laboratory diagnosis and monitoring of viral hepatitis.
Gastroenterol Clin North Am 48(2):259–279
54. Qu F, Liu Y, Kong R, You J (2017) A versatile DNA detection scheme based on the quenching
of fluorescent silver nanoclusters by MoS2 nanosheets: application to aptamer-based
determination of hepatitis B virus and of dopamine. Microchim Acta 184(11):4417–4424
55. Zheng H, Lang Y, Yu J, Han Z, Chen B, Wang Y (2019) Affinity binding of aptamers to
agarose with DNA tetrahedron for removal of hepatitis B virus surface antigen. Colloids Surf
B 178:80–86
56. Ghanbari K, Roushani M (2018) A nanohybrid probe based on double recognition of an
aptamer MIP grafted onto a MWCNTs-Chit nanocomposite for sensing hepatitis C virus core
antigen. Sens Actuators B Chem 258:1066–1071
57. Pleshakova OT, Kaysheva LA, Shumov DI, Ziborov SV, Bayzyanova MJ, Konev AV, Uchaikin
FV, Archakov IA, Ivanov DY (2019) Detection of Hepatitis C Virus Core Protein in Serum
Using Aptamer-Functionalized AFM Chips. Micromachines 10 (2)
58. Huang R, Xi Z, Deng Y, He N (2016) Fluorescence based Aptasensors for the determination
of hepatitis B virus e antigen. Sci Rep 6(1):31103
59. Park JH, Jee MH, Kwon OS, Keum SJ, Jang SK (2013) Infectivity of hepatitis C virus
correlates with the amount of envelope protein E2: development of a new aptamer-based
assay system suitable for measuring the infectious titer of HCV. Virology 439(1):13–22
60. Ghanbari K, Roushani M, Azadbakht A (2017) Ultra-sensitive aptasensor based on a GQD
nanocomposite for detection of hepatitis C virus core antigen. Anal Biochem 534:64–69
61. Madhombiro M, Cha R, Sawyer J, Przybyla S, Burstein G, Morse GD (2019) Why do
young adults living with HIV perform poorly on combined antiretroviral therapy (CART)? a
Zimbabwean perspective. Future Virol 14(4):211–217
62. Zeng J, Li X, Yuan H, Ma M, Li D, Ma J, Liao S Screening ssDNA aptamers against HIV P24
antigen using agarose beads as carriers. In: BIO Web of Conferences, 2017. EDP Sciences, p
03009
