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西北大学 生命科学学院/西部资源生物与现代生物技术教育部重点实验室,陕西 西安 710069
寸思迪,男,博士生,从事药物发现及药物分析方法研究,sidicun0411@163.com。
赵新锋,男,博士,教授,博士生导师,从事药物分析新方法的创建及其应用研究,zhaoxf@nwu.edu.cn。
纸质出版日期:2024-10-25,
收稿日期:2024-08-10,
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寸思迪, 张子龙, 王云杉, 等. 固定化药靶蛋白中药活性成分定向筛选研究进展[J]. 西北大学学报(自然科学版), 2024,54(5):858-866.
CUN Sidi, ZHANG Zilong, WANG Yunshan, et al. Research progress on targeted screening of bioactive compounds from traditional Chinese medicine by immobilized target proteins[J]. Journal of Northwest University (Natural Science Edition), 2024,54(5):858-866.
寸思迪, 张子龙, 王云杉, 等. 固定化药靶蛋白中药活性成分定向筛选研究进展[J]. 西北大学学报(自然科学版), 2024,54(5):858-866. DOI: 10.16152/j.cnki.xdxbzr.2024-05-008.
CUN Sidi, ZHANG Zilong, WANG Yunshan, et al. Research progress on targeted screening of bioactive compounds from traditional Chinese medicine by immobilized target proteins[J]. Journal of Northwest University (Natural Science Edition), 2024,54(5):858-866. DOI: 10.16152/j.cnki.xdxbzr.2024-05-008.
中药活性成分筛选及作用评价一直是破解药物发现周期长和成功率低等瓶颈问题的核心突破口和重要技术支撑。作者团队创新亲和色谱原理,将药靶蛋白定向固定于色谱担体表面,制备了系列高活性功能化色谱固定相,并提出了固定化药靶蛋白定向筛选中药功效成分的新观点。主要综述了作者团队近五年在固定化药靶蛋白色谱固定相制备技术、中药活性成分定向筛选技术以及活性成分早期成药性评价色谱技术等方面的工作,并对固定化药靶蛋白在中药活性成分定向筛选方面的研究进行了展望。
Drug discovery has always faced the problems such as long cycles and low success rates. The screening and evaluation of the potential compounds from traditional Chinese medicine have become the core breakthrough point and important technical support to solve the above problems. The authors’ group innovated the principles of affinity chromatography. They immobilized several target proteins onto solid supports
prepared a series of highly active functional chromatographic stationary phases
and proposed the new concept of targeted screening of bioactive compounds from traditional Chinese medicine by immobilized target proteins. The paper reviews the work from the authors’ group during the last five years
which included the methods for the oriented protein immobilization
the targeted screening approaches for bioactive compounds from traditional Chinese medicine
and the chromatographic methods for the early evaluation of potential compounds. Finally
the potential application of the immobilized target proteins in the targeted screening of bioactive compounds from traditional Chinese medicine were also summarized.
药靶蛋白定向固定中药活性成分定向筛选早期成药性评价
immobilized target proteinsbioactive compounds from traditional Chinese medicinetargeted screeningearly evaluation of the potential compounds
ZENG K Z, LI Q, WANG J, et al. One-step methodology for the direct covalent capture of GPCRs from complex matrices onto solid surfaces based on the bioorthogonal reaction between haloalkane dehalogenase and chloroalkanes[J]. Chemical Science, 2018, 9(2): 446-456.
WANG J, WANG Y X, LIU J J, et al. Site-specific immobilization of β2-AR using O6-benzylguanine derivative-functionalized supporter for high-throughput receptor-targeting lead discovery[J]. Analytical Chemistry, 2019, 91(11): 7385-7393.
OU Y Y, QIAO S, LI T, et al. Affinity chromatographic method for determining drug-protein interaction with enhanced speed than typical frontal analysis[J]. Langmuir, 2023, 39(29): 10259-10269.
CHEN Y Y, JIN Y H, SHAYIRANBIEKE A, et al. Preparation and characterization of immobilized 5-HT1A receptor stationary phase for high throughput screening of the receptor-binding ligands from complex systems like Curcuma Wenyujin Y. H. Chen et C. Ling extract[J]. Journal of Pharmaceutical and Biomedical Analysis, 2022, 211: 114632.
FU X Y, LI L K, WEN X, et al. Halo-tagged protein immobilization: Effect of halide linkers on peak profile and drug-protein interaction[J]. Journal of Chromatography A, 2021, 1640: 461946.
QIAO S, ZHENG X X, OU Y Y, et al. Highly efficient GPCR immobilization with enhanced fouling resistance, salt tolerance, and chromatographic performance[J]. Colloids and Surfaces B: Biointerfaces, 2024, 236: 113818.
ZUO H Y, LI T, ZHANG D D, et al. Enhancing chromatographic performance of immobilized angiotensin II type 1 receptor by strain-promoted alkyne azide cycloaddition through genetically encoded unnatural amino acid[J]. Analytical Chemistry, 2022, 94(45): 15711-15719.
SABBAH D A, HAJJO R, SWEIDAN K. Review on epidermal growth factor receptor (EGFR) structure, signaling pathways, interactions, and recent updates of EGFR inhibitors[J]. Current Topics in Medicinal Chemistry, 2020, 20(10): 815-834.
GAO W, WANG M, WANG L, et al. Selective antitumor activity of ibrutinib in EGFR-mutant non-small cell lung cancer cells[J]. Journal of the National Cancer Institute, 2014, 106(9): dju204
ZHAO X F, JIN Y H, YUAN X Y, et al. Covalent inhibitor-based one-step method for endothelin receptor A immobilization: From ligand recognition to lead identification[J]. Analytical Chemistry, 2020, 92(20): 13750-13758.
JIN Y H, CHEN Y Y, JIAO M Z, et al. Identifying potential ligands specifically binding to beta1-adrenoceptor from Radix Aconiti Lateralis Praeparata extract by affinity chromatographic method[J]. Journal of Pharmaceutical and Biomedical Analysis, 2022, 220: 115022.
CHEN Y Y, XUE Y, YIN J T, et al. N-methyl-D-aspartic acid receptor 2A functionalized stationary phase: A reliable method for pursuing potential ligands against Alzheimer’s disease from natural products[J]. CNS Neuroscience & Therapeutics, 2023, 29(5): 1290-1299.
WEN X, CHEN M Y, LI Z M, et al. Site-specific immobilization of Cysteinyl leukotriene receptor 1 through enzymatic DNA-protein conjugation strategy for lead screening[J]. Journal of Chromatography A, 2024, 1727: 464948.
BERNARDINELLI G, HÖGBERG B. Entirely enzymatic nanofabrication of DNA-protein conjugates[J]. Nucleic Acids Research, 2017, 45(18): e160.
ZAKERI B, HOWARTH M. Spontaneous intermolecular amide bond formation between side chains for irreversible peptide targeting[J]. Journal of the American Chemical Society, 2010, 132(13): 4526-4527.
XUE Y, ZHANG Z L, WANG G, et al. Protein superglue inspired in-situ one-step site-specific immobilization of beta2-adrenoceptor and its application in bioactive compound screening from Cortex Magnoliae Officinalis[J]. Journal of Chromatography A, 2023, 1690: 463780.
LI Q, YIN G W, WANG J, et al. An emerging paradigm to develop analytical methods based on immobilized transmembrane proteins and its applications in drug discovery[J]. TrAC Trends in Analytical Chemistry, 2022, 157: 116728-116735.
LIU J J, LI T, WANG G, et al. Aptamer-assisted two-point immobilized agonist-bound angiotensin II type 1 receptor for a second-site modulator discovery[J]. iScience, 2022, 25(11): 105361.
GAO J, YUAN X Y, ZHENG X X, et al. Two-point immobilization of a conformation-specific beta2-adrenoceptor for recognizing the receptor agonists or antagonists inspired by binding-induced DNA assembly[J]. Biomaterials Science, 2021, 9(23): 7934-7943.
TIAN R, YIN J T, YAO Q Q, et al. Development of an allostery responsive chromatographic method for screening potential allosteric modulator of beta2-adrenoceptor from a natural product-derived DNA-encoded chemical library[J]. Analytical Chemistry, 2022, 94(25): 9048-9057.
ZHAO X, XIANG M J, ZHANG Z L, et al. A label-free strategy for immobilization of GPCRs using site-specific encoded non-natural amino acids to develop a selectively chromatographic approach for pursuing potential ligands binding to 5-hydroxytryptamine 1A receptor[J]. Journal of Chromatography A, 2024, 1718: 464715-464725.
LIU T, HOU Y N, LIU J J, et al. Screening bioactive compounds with multi-targets from Rhodiola crenulata by a single column containing co-immobilized beta2-adrenergic receptor and voltage dependent anion channel isoform 1[J]. Journal of Chromatography B, 2018, 1100/1101: 76-82.
陈圆圆. 阿尔茨海默病双靶点受体色谱模型的建立及其在益气聪明汤活性成分筛选中的应用[D]. 西安: 西北大学, 2024: 16-47.
QU L J, LI T, SUN S D, et al. A chromatographic method for determining the interaction between a drug and two target proteins by fabricating a dual-heterogeneous surface[J]. Journal of Chromatography A, 2024, 1715: 464606.
WANG J, ZHAO X, YUAN X Y, et al. Rapid screening of bioactive compound in Sanzi Yangqin Decoction and investigating of binding mechanism by immobilized β2-adrenogic receptor chromatography coupled with molecular docking[J]. Journal of Pharmaceutical and Biomedical Analysis, 2021, 197: 113957.
JIN Y H, WANG W W, ZHANG Z L, et al. Stepwise frontal analysis coupled with affinity chromatography: A fast and reliable method for potential ligand isolation and evaluation from Mahuang-Fuzi-Xixin Decoction[J]. Chemistry & Biodiversity, 2023, 20(3): e202201057.
WANG J, GAO Q Y, YIN J T, et al. Covalent immobilization of beta2 adrenergic receptor through trans-methylation reaction by SNAP-tag and its application in anti-asthmatic compound screening from Raphani Semen[J]. Journal of Pharmaceutical and Biomedical Analysis, 2022, 219: 114952.
SHAYIRANBIEKE A, LIANG Q, WANG T T, et al. Development of immobilized beta1-adrenoceptor chromatography for rapid discovery of ligands specifically binding to the receptor from herbal extract[J]. Journal of Chromatography A, 2022, 1677: 463298.
ZHAO X, FU X Y, WANG T T, et al. Screening of bioactive flavour compounds targeting muscarinic-3 acetylcholine receptor from Siraitia grosvenorii and evaluation of their synergistic anti-asthmatic activity[J]. Food Chemistry, 2022, 395: 133593.
ZHAO X, FU X Y, YUAN X Y, et al. Development and characterization of a selective chromatographic approach to the rapid discovery of ligands binding to muscarinic-3 acetylcholine receptor[J]. Journal of Chromatography A, 2021, 1653: 462443.
JIA X N, LIU J J, SHI B M, et al. Screening bioactive compounds of siraitia grosvenorii by immobilized β2-adrenergic receptor chromatography and druggability evaluation[J]. Frontiers in Pharmacology, 2019, 10: 915.
LIANG Q, ZUO H Y, YANG T, et al. Discovery of dual-target ligands binding to beta2-adrenoceptor and cysteinyl-leukotriene receptor for the potential treatment of asthma from natural products derived DNA-encoded library[J]. European Journal of Medicinal Chemistry, 2022, 233: 114212.
LIANG Q, ZHAO X, FU X Y, et al. Identification of selective ligands targeting two GPCRs by receptor-affinity chromatography coupled with high-throughput sequencing techniques[J]. Bioorganic Chemistry, 2021, 112: 104986.
ZHANG D D, MA J, ZHENG X X, et al. Fabrication of a bioconjugated dual-functional SERS probe for facile compound screening and detection[J]. Biosensors and Bioelectronics, 2023, 234: 115369.
CHEN Y N, QIAN Y K, SHI Y J, et al. Accumulation of chiral pharmaceuticals (ofloxacin or levofloxacin) onto polyethylene microplastics from aqueous solutions[J]. Science of the Total Environment, 2022, 823: 153765.
LI Y, JIN X N, CHENG Y, et al. Recent advances on chiral mobile phase additives: A critical review[J]. Journal of Analysis and Testing, 2022, 6(2): 129-162.
YIN J T, GOU Y H, WANG Y H, et al. Can the heptapeptide ASSIVSF of the β2-adrenoceptor recognize ephedrine and pseudoephedrine epimers in a complex system?[J]. Journal of Chromatography A, 2024, 1722: 464857.
QIAO S, OU Y Y, LIU L, et al. Mathematical and experimental validation of an approach for simultaneously determining the binding parameters of two drugs to a receptor[J]. Journal of Chromatography A, 2022, 1685: 463593.
YUAN X Y, SHAYIRANBIEKE A, XU R, et al. Site-selective covalently immobilized alpha 1A adrenergic receptor for thermodynamic and extra-thermodynamic study of four ligands binding to the receptor by chromatographic methods[J]. Journal of Chromatography A, 2022, 1665: 462827.
LI P, SHI B W, LI L K, et al. Semi-quantitatively predicting the residence time of three natural products on endothelin receptor A by peak profiling using the receptor functionalized macroporous silica gel as stationary phase[J]. Journal of Analysis and Testing, 2023, 7(1): 40-52.
ZHENG X X, FAN H S, SONG Z, et al. Immobilized beta2-adrenergic receptor: A powerful chromatographic platform for drug discovery and evaluation of drug-like property for natural products[J]. Journal of Chromatography A, 2021, 1659: 462635.
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