Carbon dots based AuAg@AuNPs with oxidase-like activity for SERS dual-readouts detection of D-penicillamine.
AuAg@AuNPs nanozyme
D-penicillamine
Dopamine carbon dots
SERS dual-readout
Journal
Mikrochimica acta
ISSN: 1436-5073
Titre abrégé: Mikrochim Acta
Pays: Austria
ID NLM: 7808782
Informations de publication
Date de publication:
17 09 2024
17 09 2024
Historique:
received:
15
07
2024
accepted:
03
09
2024
medline:
17
9
2024
pubmed:
17
9
2024
entrez:
17
9
2024
Statut:
epublish
Résumé
An oxidase (OXD) -like AuAg@AuNPs nanozyme was prepared by Au seeds growth using dopamine carbon dots as reducing and capping agents. The AuAg@AuNPs show excellent OXD-like and surface-enhanced Raman spectroscopy (SERS) activities and can oxidize the non-Raman-active leucomalachite green (LMG) into the Raman-active malachite green (MG). The research displays that D-penicillamine (D-PA) can effectively inhibit the OXD-like activity of Au@AgNPs and enhance the SERS signals as substrate. It is attributed to the formation of S-Au bond due to thiol (-SH) in D-PA. Therefore, a highly sensitive and specific SERS dual-readout sensing platform was proposed to assay D-PA with a limit of detection of 0.1 μg/mL (direct SERS mode) and 6.64 μg/L (indirect SERS mode). This approach was successfully used to determine D-PA in actual pharmaceutical formulations.
Identifiants
pubmed: 39287838
doi: 10.1007/s00604-024-06684-8
pii: 10.1007/s00604-024-06684-8
doi:
Substances chimiques
Gold
7440-57-5
Penicillamine
GNN1DV99GX
Carbon
7440-44-0
Silver
3M4G523W1G
Oxidoreductases
EC 1.-
Types de publication
Journal Article
Research Support, Non-U.S. Gov't
Langues
eng
Sous-ensembles de citation
IM
Pagination
604Subventions
Organisme : Analysis and Testing Foundation of Kunming University of Science and Technology
ID : No.2023M20222218057
Informations de copyright
© 2024. The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature.
Références
Pawar SP, Gore AH, Walekar LS, Anbhule PV, Patil SR, Kolekar GB (2015) Turn-on fluorescence probe for selective and sensitive detection of D-penicillamine by CdS quantum dots in aqueous media: application to pharmaceutical formulation. Sens Actuators B Chem 209:911–918
Poujois A, Woimant F, Wilson’s disease: a 2017 update, Clin. Res. Hepatol. Gastroenterol. 42(2018):512–520
Wu ML, Wang N, Lin ZH, Su XG (2021) Development of carbon dot-thiochrome-based sensing system for ratiometric fluorescence detection of D-penicillamine. Anal Bioanal Chem 413:5779–5787
pubmed: 34312692
Wu Y, Lu K, Pei FB, Yan YH, Feng SS, Hao QL, Xia MZ, Lei W (2022) Construction of g-C
pubmed: 35687949
Kean WF, Howard-Lock HE, Lock JL (1991) Chirality in antirheumatic drugs. Lancet 338:1565–1568
pubmed: 1683980
Joly D, Rieu P, Méjean A, Gagnadoux MF, Daudon M, Jungers P (1999) Treatment of cystinuria. Pediatr Nephrol 13:945–950
pubmed: 10603157
Rozina T, Fastovets S, Lee O, Kuchieva A, Bulanov N, Moiseev S (2019) D- penicillamine-induced autoimmune disorders. Digest, Liver Dis 51:1741–1742
Cao LW, Wei T, Shi YH, Tan XF, Meng JX (2018) Determination of D- penicillamine and tiopronin in human urine and serum by HPLC-FLD and CE-LIF with 1,3,5,7-tetramethyl-8-bromomethyl-difluoroboradia- za-s-indacene. J Liq Chromatogr Relat Technol 41:58–65
Saracino MA, Cannistraci C, Bugamelli F, Morganti E, Neri I, Balestri R, Patrizi A, Raggi MA (2013) A novel HPLC electrochemical detection approach for the determination of D-penicillamine in skin specimens. Talanta 103:355–360
pubmed: 23200399
Yang XP, Yuan HY, Wang CL, Su XD, Hu L, Xiao D (2007) Determination of penicillamine in pharmaceuticals and human plasma by capillary electrophoresis with in-column fiber optics light-emitting diode induced fluorescence detection. J Pharm Biomed Anal 45:362–366
pubmed: 17606355
Hadidi M, Ahour F, Keshipour S (2022) Electrochemical determination of trace amounts of lead ions using D-penicillamine-functionalized graphene quantum dot-modified glassy carbon electrode. J Iran Chem Soc 19:1179–1189
Liu ZX, Kuang X, Sun X, Zhang Y, Wei Q (2019) Electrochemical enantioselective recognition penicillamine isomers based on chiral C-dots/ MOF hybrid arrays. J Electroanal Chem 846:113151
Alkahtani SA, Mahmoud AM, El-Wekil MM (2022) Electrochemical sensing of copper chelator D-penicillamine based on complexation with gold nanoparticles modified copper based-metal organic frameworks. J Electroanal Chem 908:116102
Shahrajabian M, Ghasemi F, Nezhad MR (2018) Nanoparticle based chemiluminescence for chiral discrimination of thiol containing amino acids. Sci Rep 8:14011
pubmed: 30228291
pmcid: 6143635
Phadungcharoen N, Patrojanasophon P, Opanasopit P, Ngawhirunpat T, Chinsriwongkul A, Rojanarata T (2019) Smartphone - based Ellman′s colourimetric methods for the analysis of D- penicillamine formulation and thiolated polymer. Int J Pharm 558:120–127
pubmed: 30639223
Nazifi M, Ramezani AM, Absalan G, Ahmadi R (2021) Colorimetric determination of D-penicillamine based on the peroxidase mimetic activity of hierarchical hollow MoS
Zhang X, Liu Q, Wang ZW. Xu H, Ping F, Huang Q, Song HB, Wang YW (2020) D‐penicillamine modified copper nanoparticles for fluorometric determination of histamine based on aggregation induced emission. Microchim. Acta 187:329
Wang Q, Li LF, Wu TX, Kong XP, Ma QG, Ma CL (2020) A graphene quantum dots-Pb
Wu ML, Wang N, Lin ZH, Su XG (2021) Development of carbon dot-thio-chrome based sensing system for ratiometric fluorescence detection of D-penicillamine. Anal Bioanal Chem 413:5779–5787
pubmed: 34312692
Wu Y, Lu KR, Pei FB, Yan YH, Feng SS, Hao QL, Xia MZ, Lei W (2022) Construction of g-C
pubmed: 35687949
Sun XC (2022) Glucose detection through surface enhanced Raman spectroscopy: a review. Anal Chim Acta 1206:339226
pubmed: 35473867
Fan M, Andrade GFS, Brolo AG (2020) A review on recent advances in the applications of surface enhanced Raman scattering in analytical chemistry. Anal Chim Acta 1097:1–29
pubmed: 31910948
Hussain N, Pu H, Sun DW (2021) Core size optimized silver coated gold nanoparticles for rapid screening of tricyclazole and thiram residues in pear extracts using SERS. Food Chem 350:129025
pubmed: 33609938
Maiti KK, Dinish US, Samanta A, Vendrell M, Soh KS, Park SJ, Olivo M, Chang YT (2012) Multiplex targeted in vivo cancer detection using sensitive near infrared SERS nanotags. Nano Today 7:85–93
Xu Y, Hassan MM, Sharma AS, Li H, Chen Q (2021) Recent advancement in nano-optical strategies for detection of pathogenic bacteria and their metabolites in food safety. Crit Rev Food Sci Nutr 63:486–504
pubmed: 34281447
Seth MM, Jensen L (2009) Understanding the molecule-surface chemical coupling in SERS. J Am Chem Soc 131:4090–4098
Langer J, Aberasturi DJ, Aizpurua J (2020) Present and future of surface-enhanced Raman scattering. ACS Nano 14:28–117
pubmed: 31478375
Guo PZ, Sikdar D, Huang XQ, Si KJ, Xiong W, Gong S, Cheng W (2015) Plasmonic core-shell nanoparticles for SERS detection of the pesticide thiram: size and shape dependent Raman enhancement. Nanoscale 7:2862–2869
pubmed: 25599516
Yuan WZ, Han X, Shi GC (2024) Machine learning-driven multi-level composite SERS platform for trace detection of chlorogenic acid as pharmacodynamic substance in honeysuckle. Opt Laser Technol 169:109911
Liu B, Han G, Zhang Z, Liu R, Jiang C, Wang S, Han MY (2012) Shell thickness-dependent Raman enhancement for rapid identification and detection of pesticide residues at fruit peels. Anal Chem 84:255–261
pubmed: 22122589
Liu Y, Pedireddy S, Lee YH, Hegde RS, Tjiu WW, Cui Y, Ling XY (2014) Precision synthesis: designing hot spots over hot spots via selective gold deposition on silver octahedra edges. Small 10:4940–4950
pubmed: 25048617
Li ZL, Han X, Fu L, Shi GC (2024) Machine learning-driven Ag/SiO2/Cu/rice leaf SERS platform for intelligent identification of pharmacodynamic substances. Microchem J 200:110459
Li QL, Han QQ, Yang DZ, Li KX, Wang YJ, Chen D, Yang YL, Li H (2024) Methylmercury-sensitized “turn on” SERS-active peroxidase-like activity of carbon dots/Au NPs nanozyme for selective detection of ochratoxin A in coffee. Food Chem 434:137440
pubmed: 37725842
Zhao XR, Li QL, Li H, Wang YJ, Xiao FJ, Yang DZ, Xia QH, Yang YL (2023) SERS detection of Hg
pubmed: 37245470
Cui YF, Li QL, Yang DZ, Yang YL (2024) Colorimetric-SERS dual-mode sensing of Pb(II) ions in traditional Chinese medicine samples based on carbon dots-capped gold nanoparticles as nanozyme. Spectrochim Acta A Mol Biomol Spectrosc 313:124100
pubmed: 38484642
Zhu XY, Wang AJ, Chen SS, Luo XL, Feng JJ (2018) Facil synthesis of AgPt@Ag core-shell nanoparticles as highly active surface-enhanced Raman scattering substrates. Sens Actuators B Chem 260:945–952
Peng ZM, You HJ, Yang H (2010) An electrochemical approach to Pt Ag alloy nanostructures rich in Pt at the surface. Adv Funct Mater 20:3734–3741
Greczynski G, Hultman L (2020) X-ray photoelectron spectroscopy: towards reliable binding energy referencing. Prog Mater Sci 107:100591
Yousaf AB, Imran M, Zeb A, Wen T, Xie X, Jiang YF, Yuan CZ, Xu AW (2016) Single phase Pt Ag bimetallic alloy nanoparticles highly dispersed on reduced graphene oxide for electrocatalytic application of methanol oxidation reaction. Electrochim Acta 197:117–125
Panferov GV, Wang XQ, Liu JW (2024) Characterization of nanozyme kinetics for highly sensitive detection. Analyst 149:2223–2226
pubmed: 38506234
Wang N, Wu YW, Wang MK, Li ZX, Wang GN, Su XG (2021) Design of a dual-signal sensing platform for D-penicillamine based on UiO-66-NH
pubmed: 34342310
Zhou M, Zhang XD, Huang YM, Feng P (2024) Selenium doped carbonized polypyrrole with high peroxidase-like activity for determining D-penicillamine. Sens Actuators B Chem 399:134779
Chanda C, Gurbir S, Gurpreet S, Harsh K, Tejwant SK (2016) Modulating the mixed micellization of CTAB and an ionic liquid 1-hexadecyl-3-methylimidazollium bromide via varying physical states of ionic liquid. RSC Adv 6:38238
Yu H, Chen X, Yu L (2018) Fluorescent MUA-stabilized Au nanoclusters for sensitive and selective detection of penicillamine. Anal Bioanal Chem 410:2629–2636
pubmed: 29428990
Li KX, Li H, Zhang Q, Yang DZ, Yang YL (2024) Core-shell structure DA-CDs/AuNPs for the recognition of fenamidone by surface-enhanced Raman scattering. Spectrochim Acta A Mol Biomol Spectrosc 310:123865
pubmed: 38219613
Gu Y, Li QL, Yin MJ, Yang DZ, Yang YL (2022) A super-hydrophobic perfluoropolyether coated polytetrafluoroethylene sheets substrate for detection of acetamiprid surface-enhanced Raman spectroscopy. Spectrochim Acta A Mol Biomol Spectrosc 278:121373
pubmed: 35576838
Chinese Pharmacopoeia Commission (2015) Pharmacopoeia of the People's Republic of China. China Medical Science Press. Beijing, pp 738–739