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XIE Jing, LI Xian-deng, LI Mi, ZHU Hong-yan, CAO Yan, ZHANG Jian, XU A-jing. Advances in surface plasmon resonance for analyzing active components in traditional Chinese medicine[J]. Journal of Pharmaceutical Analysis. doi: 10.1016/j.jpha.2024.100983
Citation: XIE Jing, LI Xian-deng, LI Mi, ZHU Hong-yan, CAO Yan, ZHANG Jian, XU A-jing. Advances in surface plasmon resonance for analyzing active components in traditional Chinese medicine[J]. Journal of Pharmaceutical Analysis. doi: 10.1016/j.jpha.2024.100983

Advances in surface plasmon resonance for analyzing active components in traditional Chinese medicine

doi: 10.1016/j.jpha.2024.100983
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This work was supported by grants from the National Natural Science Foundation of China (No.82072142),the National Key R&D Program of China (2020YFC2005502) and the Science and Technology Commission of Shanghai Municipality (No. 19401900500)

  • Received Date: Dec. 04, 2023
  • Rev Recd Date: Mar. 26, 2024
  • Available Online: Apr. 26, 2024
  • The surface plasmon resonance (SPR) biosensor technology is a novel optical analysis method for studying intermolecular interactions. Owing to in-depth research on Traditional Chinese Medicine (TCM) in recent years, comprehensive and specific identification of components and target interactions have become key yet difficult tasks. SPR has gradually been used to analyze the active components of TCM owing to its high sensitivity, strong exclusivity, large flux, and real-time monitoring capabilities. This review sought to briefly introduce the active components of TCM and the principle of SPR, and provide historical and new insights into the application of SPR in the analysis of the active components of TCM.
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  • [1]
    J. Liu, H. Xiao, Research progress on pharmacodynamic substances of Chinese Medicine based on chromatographic techniques, Acta Pharm. Sin. 54(2019) 73-81.
    [2]
    C. Liu, Z. Zuo, F. Xu, et al., Authentication of herbal medicines based on modern analytical technology combined with chemometrics approach: A review, Crit. Rev. Anal. Chem. 53(2023) 1393-1418.
    [3]
    V. Yesudasu, H.S. Pradhan, R.J. Pandya, Recent progress in surface plasmon resonance based sensors: A comprehensive review, Heliyon 7(2021), e06321.
    [4]
    C. Luo, Y. Wang, W. Huang, et al., A miRNA biosensor based on SPR technology and its application in tumor detection, Int. J. Lab. Med. 4(2015) 525-527.
    [5]
    J. Wang, Q. Wang, S. Song, Research progress of surface plasmon resonance technology in drug discovery, J. Chin. Pharm. Sci. 29(2020) 504-513.
    [6]
    B. Wang, Q. Zhou, Understanding of the active ingredients of traditional Chinese medicine and its research methods, China J. Chin. Mater. Med. 26(2001) 10-13.
    [7]
    C. Wang, X. Bai, C. Wang, Traditional Chinese medicine: A treasured natural resource of anticancer drug research and development, Am. J. Chin. Med. 42(2014) 543-559.
    [8]
    Q. Wang, W. Li, H. Hu, et al., Monomeric compounds from traditional Chinese medicine: New hopes for drug discovery in pulmonary fibrosis, Biomedecine Pharmacother. 159(2023), 114226.
    [9]
    S. Wang, J. Fu, H. Hao, et al., Metabolic reprogramming by traditional Chinese medicine and its role in effective cancer therapy, Pharmacol. Res. 170(2021), 105728.
    [10]
    Z. Hu, Analysis of the active ingredients and efficacy of traditional Chinese medicine, inf. Tradit. Chin. Med. 15(1998) 22.
    [11]
    S. Li, Y. Chang, F. Cheng, et al., Multi-template molecularly imprinted solid phase extraction and its application in the extraction and separation of multi-components from traditional Chinese medicine, Acta Pharm. Sin. 56(2021) 751-760.
    [12]
    D. Tang, W. Xiao, Z. Qian, et al., Rapid screening of potential analgesic ingredients from Draconis Resina by live cell immobilized chromatography coupled with HPLC-DAD-TOF-MS, Chin. Tradit. Herb. Drugs 50(2019) 2539-2544.
    [13]
    S. Wu, H. Yang, P. Li, Application of the affinity ultrafiltration coupled with LC-MS technology in screening active components of traditional Chinese medicines, Yao Xue Xue Bao 51(2016) 1060- 1067.
    [14]
    J. Xie, Y. Fu, J. Jin, et al., Determination of rutin in the zhenjujiangya tablet by electrochemical method, Chem. Sens. 36(2016) 58-62.
    [15]
    A. Abbas, M.J. Linman, Q. Cheng, New trends in instrumental design for surface plasmon resonance-based biosensors, Biosens. Bioelectron. 26(2011) 1815-1824.
    [16]
    J. Cao, J. Yang, L. Zhao, et al., Graphene oxide@gold nanorods-based multiple-assisted electrochemiluminescence signal amplification strategy for sensitive detection of prostate specific antigen, Biosens. Bioelectron. 99(2018) 92-98.
    [17]
    T. Chen, J. Xin, S.J. Chang, et al., Surface plasmon resonance (SPR) combined technology: A powerful tool for investigating interface phenomena, Adv. Mater. Interfaces 10(2023), 2202202.
    [18]
    R. Singh, Z. Wang, C. Marques, et al., Alanine aminotransferase detection using TIT assisted four tapered fiber structure-based LSPR sensor: From healthcare to marine life, Biosens. Bioelectron. 236(2023), 115424.
    [19]
    B. Kaur, S. Kumar, B.K. Kaushik, 2D materials-based fiber optic SPR biosensor for cancer detection at 1550 nm, IEEE Sens. J. 21(2021) 23957-23964.
    [20]
    P.S. Pandey, S.K. Raghuwanshi, S. Kumar, Recent Advances in Two-Dimensional Materials-Based Kretschmann Configuration for SPR Sensors: A Review, IEEE Sens. J. 22(2022) 1069-1080.
    [21]
    P.S. Pandey, S.K. Raghuwanshi, A. Shadab, et al., SPR based biosensing chip for COVID-19 diagnosis-a review, IEEE Sens. J. 22(2022) 13800-13810.
    [22]
    A. Olaru, C. Bala, N. Jaffrezic-Renault, et al., Surface plasmon resonance (SPR) biosensors in pharmaceutical analysis, Crit. Rev. Anal. Chem. 45(2015) 97-105.
    [23]
    G. Safina, Application of surface plasmon resonance for the detection of carbohydrates, glycoconjugates, and measurement of the carbohydrate-specific interactions: A comparison with conventional analytical techniques. A critical review, Anal. Chim. Acta 712(2012) 9-29.
    [24]
    C.C. Chang, Recent advancements in aptamer-based surface plasmon resonance biosensing strategies, Biosensors 11(2021), 233.
    [25]
    M. Wang, X. Duan, H. Shao, et al., Application prospect of surface plasmon resonance technique in quality control of biopharmaceutical products, China Pharm. 23(2020) 2257-2260.
    [26]
    W. Wei, J. Nong, Y. Mei, et al., Single-layer graphene-coated gold chip for enhanced SPR imaging immunoassay, Sens. Actuat. B Chem. 273(2018) 1548-1555.
    [27]
    Q. Jiao, R. Wang, Y. Jiang, et al., Study on the interaction between active components from traditional Chinese medicine and plasma proteins, Chem. Cent. J. 12(2018), 48.
    [28]
    L. Chen, D. Lv, X. Chen, et al., Biosensor-based active ingredients recognition system for screening STAT3 ligands from medical herbs, Anal. Chem. 90(2018) 8936-8945.
    [29]
    L. Chen, D. Wang, D. Lv, et al., Identification of eupatilin and ginkgolide B as p38 ligands from medicinal herbs by surface plasmon resonance biosensor-based active ingredients recognition system, J. Pharm. Biomed. Anal. 171(2019) 35-42.
    [30]
    Y. Cao, Y. Cao, Y. Shi, et al., Surface plasmon resonance biosensor combined with lentiviral particle stabilization strategy for rapid and specific screening of P-Glycoprotein ligands, Anal. Bioanal. Chem. 413(2021) 2021-2031.
    [31]
    A. Du, R. Zheng, C. Disoma, et al., Epigallocatechin-3-gallate, an active ingredient of Traditional Chinese Medicines, inhibits the 3CLpro activity of SARS-CoV-2, Int. J. Biol. Macromol. 176(2021) 1-12.
    [32]
    Q. Zhang, Q. Ye, X. Huang, et al., Revealing active components, action targets and molecular mechanism of Gandi capsule for treating diabetic nephropathy based on network pharmacology strategy, BMC Complementary Med. Ther. 20(2020), 362.
    [33]
    Z. Luo, G. Yu, W. Wang, et al., Integrated systems pharmacology and surface plasmon resonance approaches to reveal the synergistic effect of multiple components of gu-Ben-ke-Chuan decoction on chronic bronchitis, J. Inflamm. Res. 14(2021) 1455-1471.
    [34]
    H. Xu, J. Li, S. Song, et al., Effective inhibition of coronavirus replication by Polygonum cuspidatum, Front. Biosci. Landmark Ed. 26(2021) 789-798.
    [35]
    D. Lv, J. Xu, M. Qi, et al., A strategy of screening and binding analysis of bioactive components from traditional Chinese medicine based on surface plasmon resonance biosensor, J. Pharm. Anal. 12(2022) 500-508.
    [36]
    Y. Zhang, T. Yan, D. Sun, et al., Rutaecarpine inhibits KEAP1-NRF2 interaction to activate NRF2 and ameliorate dextran sulfate sodium-induced colitis, Free. Radic. Biol. Med. 148(2020) 33-41.
    [37]
    H. Li, K. Luo, Z. Yang, et al., Berbamine suppresses the growth of gastric cancer cells by inactivating the BRD4/c-MYC signaling pathway, Drug Des. Dev. Ther. 16(2022) 129-141.
    [38]
    R.A. Copeland, Evolution of the drug-target residence time model, Expert Opin. Drug Discov. 16(2021) 1441-1451.
    [39]
    F. Pan, Y. Ji, G. Yu, et al., Study on binding kinetics profiles of tea polyphenols-α-glucosidase interaction, China J. Chin. Mater. Med. 45(2020) 4472-4481.
    [40]
    X. Li, Y. Liu, F. Liu, et al., Study on drug-target binding kinetics profiles of flavonoids in Chrysanthemum morifolium and xanthine oxidase, China J. Chin. Mater. Med. 46(2021) 1822- 1831.
    [41]
    K.C. Tsai, Y. Zhang, H.Y. Kao, et al., Pharmacophore-driven identification of human glutaminyl cyclase inhibitors from foods, plants and herbs unveils the bioactive property and potential of Azaleatin in the treatment of Alzheimer’s disease, Food Funct. 13(2022) 12632-12647.
    [42]
    M. Wang, S. Li, X. Dong, et al., Interactions between EGFR and four compounds from Arnebia euchroma based on SPR, Chin. J. Exp. Tradit. Med. Formulae 24(2018) 32-36.
    [43]
    X. Su, H. Zhang, N. Zhang, et al., Screening small molecular inhibitors of STAT3 based on surface plasmon resonance technology, J. Pharm. Pract. 39(2021) 515-519, 537.
    [44]
    T. He, W. Jia, W. Wang, et al., Screening of 14-3-3τ protein inhibitors from natural products based on fluorescence spectroscopy, surface plasmon resonance and molecular docking technique, J. Int. Pharm. Res. 46(2019) 582-590.
    [45]
    D. Wang, P. Tu, Y. Huang, et al., Identification of PD-1 small molecule inhibitors and validation in Panax ginseng, Acta Pharm. Sin. 55(2020) 2428-2434.
    [46]
    T. Brulé, G. Granger, N. Bukar, et al., A field-deployed surface plasmon resonance (SPR) sensor for RDX quantification in environmental waters, Anal. 142(2017) 2161-2168.
    [47]
    J. Yang, X. Lin, N. Xing, et al., Structure-based discovery of novel nonpeptide inhibitors targeting SARS-CoV-2 mpro, J. Chem. Inf. Model. 61(2021) 3917-3926.
    [48]
    S. Jain, K. Choudhary, S. Kumar, Photonic crystal fiber-based SPR sensor for broad range of refractive index sensing applications, Opt. Fiber Technol. 73(2022), 103030.
    [49]
    B. Li, T. Cheng, J. Chen, et al., Graphene-enhanced surface plasmon resonance liquid refractive index sensor based on photonic crystal fiber, Sensors 19(2019), 3666.
    [50]
    Q. Liu, J. Sun, Y. Sun, et al., Surface plasmon resonance sensor based on photonic crystal fiber with indium tin oxide film, Opt. Mater. 102(2020), 109800.
    [51]
    Y. Huang, L. Zhang, H. Zhang, et al., Development of a portable SPR sensor for nucleic acid detection, Micromachines 11(2020), 526.
    [52]
    G.P. Singh, N. Sardana, Smartphone-based surface plasmon resonance sensors: A review, Plasmonics 17(2022) 1869-1888.
    [53]
    S. Kumar, B.K. Kaushik, R. Singh, et al., LSPR-based cholesterol biosensor using a tapered optical fiber structure, Biomed. Opt. Express 10(2019) 2150-2160.
    [54]
    M. Puiu, C. Bala, SPR and SPR imaging: Recent trends in developing nanodevices for detection and real-time monitoring of biomolecular events, Sensors 16(2016), 870.
    [55]
    G. Ma, G.D. Syu, X. Shan, et al., Measuring ligand binding kinetics to membrane proteins using virion nano-oscillators, J. Am. Chem. Soc. 140(2018) 11495-11501.
    [56]
    S. Zhao, M. Yang, W. Zhou, et al., Kinetic and high-throughput profiling of epigenetic interactions by 3D-carbene chip-based surface plasmon resonance imaging technology, Proc. Natl. Acad. Sci. U. S. A. 114(2017) E7245-E7254.
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