计算溶液所需的质量、体积或浓度。
活性类型 | 活性值-log(M) | 作用机制 | 期刊 | 参考文献(PubMed IDs) |
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货号 (SKU) | 包装规格 | 是否现货 | 价格 | 数量 |
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T105704-25g |
25g |
现货 ![]() |
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T105704-100g |
100g |
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T105704-250g |
250g |
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T105704-500g |
500g |
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别名 | D-(+)-色氨酸,D-2-氨基-3-吲哚基-1 丙酸,(R)-2-氨基-3-(3-吲哚基)丙酸, D-α-氨基-3-吲哚丙酸 |
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英文别名 | Q27077125 | CAS-153-94-6 | MFCD00005647 | BDBM50043799 | D(+)-Tryptophan | D-TRYPTOPHANE | H-delta-TRP-oh | NSC 97942 | DTR | J-300262 | BCP16808 | SMR000059103 | AFA369F6-7A19-42E1-B9E9-0156A2BCE50B | HY-W012479 | Q27115085 | s6253 | HDTrpOH | H-D-Trp-OH |
规格或纯度 | Moligand™, ≥98% |
英文名称 | D-Tryptophan |
生化机理 | 低水平的 D-色氨酸能够阻止大肠杆菌中需要 L-色氨酸的突变体的生长。 |
运输条件 | 常规运输 |
作用类型 | 激动剂 |
作用机制 | HCA 3 受体激动剂 |
产品介绍 |
色氨酸是人体必需的标准氨基酸之一。它被细胞用来制造蛋白质。
Product Description Product Application |
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作用机制 | Action Type | target ID | Target Name | Target Type | Target Organism | Binding Site Name | 参考文献 |
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PubChem SID | 488180930 |
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EC号 | 205-819-9 |
分子类型 | 小分子 |
IUPAC Name | (2R)-2-amino-3-(1H-indol-3-yl)propanoic acid |
INCHI | InChI=1S/C11H12N2O2/c12-9(11(14)15)5-7-6-13-10-4-2-1-3-8(7)10/h1-4,6,9,13H,5,12H2,(H,14,15)/t9-/m1/s1 |
InChi Key | QIVBCDIJIAJPQS-SECBINFHSA-N |
Canonical SMILES | C1=CC=C2C(=C1)C(=CN2)CC(C(=O)O)N |
Isomeric SMILES | C1=CC=C2C(=C1)C(=CN2)C[C@H](C(=O)O)N |
WGK Germany | 3 |
RTECS | YN6129000 |
PubChem CID | 9060 |
分子量 | 204.23 |
Beilstein号 | 86198 |
Reaxy-Rn | 86198 |
溶解性 | Soluble in 0.5M hydrochloric acid (50 mg/ml), water (11 mg/ml at 20°C), hot alcohol, and dimethyl sulfoxide. Insoluble in chloroform. |
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密度 | 1.362 |
比旋光度 | 31 ° (C=1, H2O) |
熔点 | 282-285°C |
分子量 | 204.220 g/mol |
XLogP3 | -1.100 |
氢键供体数Hydrogen Bond Donor Count | 3 |
氢键受体数Hydrogen Bond Acceptor Count | 3 |
可旋转键计数Rotatable Bond Count | 3 |
精确质量Exact Mass | 204.09 Da |
单同位素质量Monoisotopic Mass | 204.09 Da |
拓扑极表面积Topological Polar Surface Area | 79.100 Ų |
重原子数Heavy Atom Count | 15 |
形式电荷Formal Charge | 0 |
复杂度Complexity | 245.000 |
同位素原子数Isotope Atom Count | 0 |
定义的原子立体中心计数Defined Atom Stereocenter Count | 1 |
未定义的原子立体中心计数Undefined Atom Stereocenter Count | 0 |
定义的键立体中心计数Defined Bond Stereocenter Count | 0 |
未定义的键立体中心计数Undefined Bond Stereocenter Count | 0 |
所有立体化学键的总数The total count of all stereochemical bonds | 0 |
共价键合单元计数Covalently-Bonded Unit Count | 1 |
象形图 | GHS07 |
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信号词 | Warning |
危险声明 |
H315: 引起皮肤刺激 H319: 引起严重眼睛刺激 H335: 可能引起呼吸道刺激 |
预防措施声明 |
P261: 避免吸入灰尘/烟雾/气体/雾/蒸汽/喷雾 P305+P351+P338: 如进入眼睛:用水小心冲洗几分钟。如戴隐形眼镜并可方便地取出,取出隐形眼镜。继续冲洗。 P280: 戴防护手套/穿防护服/戴防护眼罩/戴防护面具。 P302+P352: 如皮肤沾染:用水充分清洗。 P321: 特殊处理(请参阅此标签上的...)。 P405: 密闭存放 P501: 将内容物/容器处理到。。。 P264: 处理后要彻底洗手。 P271: 仅在室外或通风良好的地方使用。 P304+P340: 如误吸入:将人转移到空气新鲜处,保持呼吸舒适体位。 P403+P233: 存放在通风良好的地方。保持容器密闭。 P362+P364: 脱掉沾污的衣服,清洗后方可重新使用。 P264+P265: 处理后彻底洗手[和…]。不要触摸眼睛。 P337+P317: 如果眼睛刺激持续:寻求医疗帮助。 P332+P317: 如果出现皮肤刺激:请寻求医疗帮助。 P319: 如果你感到不适,请寻求医疗帮助。 |
WGK Germany | 3 |
RTECS | YN6129000 |
Reaxy-Rn | 86198 |
个人防护装备 | Eyeshields,Gloves,type N95 (US),type P1 (EN143) respirator filter |
Purity(HPLC) | 98-100(%) |
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Specific Rotation [a]20/D(c=1 in H2O) | 29-33(°) |
Appearance(T105704) | White to Off-White Powder |
Solubility in 0.5 M HCl,Colorless to Dark Yellow Clear to Hazy,50mg/ml | pass |
Proton NMR spectrum | Conforms to Structure |
Nitrogen by Elemental Analysis | 13.4-14.1(%) |
Carbon by Elemental Analysis | 63-67(%) |
通过匹配包装上的批号来查找并下载产品的 COA,每批产品都进行了严格的验证,您可放心使用!
批号(Lot Number) | 证书类型 | 日期 | 货号 |
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分析证书 | 24-06-12 | T105704 |
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分析证书 | 23-08-19 | T105704 |
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分析证书 | 23-08-19 | T105704 |
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分析证书 | 23-08-19 | T105704 |
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分析证书 | 23-08-19 | T105704 |
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分析证书 | 22-02-16 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
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分析证书 | 22-01-11 | T105704 |
¥129.90
1. Qing Wang,Yao Long,Lin Yao,Mao Ye,Li Xu. (2017-02-16) C18-COOH Silica: Preparation, Characterisation and Its Application in Purification of Quaternary Ammonium Alkaloids from Coptis chinensis.. Phytochemical analysis : PCA, 28 ((4)): (332-343). [PMID:28198057] |
2. Fangjie Zheng,Wei Ke,Yuan Zhao,Chuanlai Xu. (2019-04-27) Pt NPs catalyzed chemiluminescence method for Hg2+ detection based on a flow injection system.. Electrophoresis, 40 ((16-17)): (2218-2226). [PMID:31025709] |
3. Jingzhi Yang, Yami Ran, Shaopeng Liu, Chenhao Ren, Yuntian Lou, Pengfei Ju, Guoliang Li, Xiaogang Li, Dawei Zhang. (2023) Synergistic D-Amino Acids Based Antimicrobial Cocktails Formulated via High-Throughput Screening and Machine Learning. Advanced Science, 11 (9): (2307173). [PMID:38126652] [10.1002/advs.202307173] |
4. Zhiyang Xu, Yinzhou Yan, Xingyuan Wang, Xiaolei Wang, Zhixiang Zhou, Xi Yang, Tianrui Zhai. (2023) Determination of Enantiomeric Excess by Optofluidic Microlaser near Exceptional Point. Advanced Science, (2308362). [PMID:38072636] [10.1002/advs.202308362] |
5. Jianrong Wang, Sha Han, Hongfang Zhao, Hongxia Li, Xiaohui Niu, Yi Wang, Kunjie Wang. (2023) Electrochemical enantioselective recognition by defined chiral linkers in polysaccharides modified with carbon quantum dots. ELECTROANALYSIS, (6): (e202300301). [PMID:9169421] [10.1002/elan.202300301] |
6. Yijie Wang, Linbo Yu, Tingjie Lv, Jing Wang, Shengju Zhou, Xiaofeng Sun. (2023) Chiral carbonized polymer dots simultaneously achieving solid state luminescence and circularly polarized luminescence. DYES AND PIGMENTS, 220 (15): (111685). [PMID:10514485] [10.1016/j.dyepig.2023.111685] |
7. Zhengzhong Zhou, Lingli Zhou, Yi Liu, Qian Wang, Xiaoshan Meng, Qigang Wu, Taoli Huhe. (2023) Layered double hydroxide nanosheets embedded β-cyclodextrin composite membranes with enhanced chiral separation performance. JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 128 (569). [10.1016/j.jiec.2023.08.023] |
8. Miao Pandeng, Li Yuchen, Du Yingxiang. (2023) Dual-ligand 3D lammelar chiral metal–organic framework for capillary electrochromatographic enantioseparations. MICROCHIMICA ACTA, 190 (8): (1-11). [PMID:37464133] [10.1007/s00604-023-05890-0] |
9. Li Yuchen, Xu Guangfu, Chen Jiaquan, Yu Tao, Miao Pandeng, Du Yingxiang. (2023) One-step synthesis of chiral molecularly imprinted polymer TiO2 nanoparticles for enantioseparation of phenylalanine in coated capillary electrochromatography. MICROCHIMICA ACTA, 190 (7): (1-11). [PMID:37391671] [10.1007/s00604-023-05854-4] |
10. Haibo Chen, Chengqi Zhao, Yu Li, Junyao Li, Wenrong Cai, Yong Kong, Zheng-Zhi Yin. (2023) A chiral sensing platform with reversible chirality based on Au nanoparticles-d-methionine/chitosan. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 942 (117562). [10.1016/j.jelechem.2023.117562] |
11. Niu Xiaohui, Zhao Rui, Yan Simeng, Li Hongxia, Yang Jing, Cao Kunjie, Liu Xiaoyu, Wang Kunjie. (2023) Chiral MOFs encapsulated by polymers with poly-metallic coordination as chiral biosensors. MICROCHIMICA ACTA, 190 (6): (1-12). [PMID:37208529] [10.1007/s00604-023-05807-x] |
12. Pengjing Jing, Tai Wen, Junyao Li, Wenrong Cai, Baozhu Yang, Yong Kong. (2023) Highly Reliable Chiral Discrimination of Tryptophan Enantiomers through Two Different Modes: Electrochemistry and Temperature. ANALYTICAL CHEMISTRY, 95 (22): (8569–8577). [PMID:37204809] [10.1021/acs.analchem.3c00669] |
13. Zhang Zengdong, Wang Jia, Pei Hebing, Guo Ruibin, Liu Nijuan, Mo Zunli. (2023) β-Cyclodextrin dinuclear copper supported on graphene/polypyrrole nanocomposites as an electrochemical sensor for enantioselectivity recognition of tryptophan enantiomers. JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 34 (11): (1-15). [10.1007/s10854-023-10442-6] |
14. Hou Huipeng, Tang Shanshan, Wang Wei, Liu Miao, Liang Axin, Xie Bingteng, Yi Yue, Luo Aiqin. (2023) Electrochemical Chiral Recognizing Tryptophan Enantiomers Based on Chiral Metal-Organic Framework D-MOF. CHEMICAL RESEARCH IN CHINESE UNIVERSITIES, 39 (6): (976-984). [10.1007/s40242-023-3004-6] |
15. Ya-Qian Wang, Li Li, Jin Yin, Xu Yu, Xiaowei Wu, Li Xu. (2023) Turn on fluorescence detection of curcumin in food matrices by the novel fluorescence sensitizer. ANALYTICA CHIMICA ACTA, 1254 (341094). [PMID:37005020] [10.1016/j.aca.2023.341094] |
16. You Quan Shi, Zhao Xu, Le Wang, Kang Wang, Li Xu, Heng Zheng. (2023) The fluorescence and colorimetric dual-readout probe for clinical rapid detection of mycophenolic acid by the poly(ethylenimine)/silica-coated CdTe quantum dots. ANALYTICAL BIOCHEMISTRY, 668 (115090). [PMID:36870552] [10.1016/j.ab.2023.115090] |
17. Yulin Wang, Libo Nie, Yongbiao Hua, Liang Gong, Xiuzhen Qiu, Huishi Guo. (2023) A simple paper-based nickel nanocluster-europium mixed ratio fluorescent probe for rapid visual sensing of tetracyclines. SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 292 (122431). [PMID:36753865] [10.1016/j.saa.2023.122431] |
18. Wenyan Yao, Sha Li, Licheng Xie, Yan Jiang. (2022) Chiral recognition of tryptophan enantiomer based on the electrode modified by polyaniline adsorption bovine serum albumin complex. CHIRALITY, 35 (2): (129-144). [PMID:36564104] [10.1002/chir.23525] |
19. Qing Hu, Chaofeng Zhu, Wen Yan, Yang Wang, Songlin Cui, Xihai Chen, Bo Liu. (2022) Coordination-Assistant Chiral Agent Anchoring on Amphiphilic Graphitic Phase Carbon Nitride Membrane for Multiple Molecular Separation. ACS Applied Materials & Interfaces, 14 (44): (50235–50245). [PMID:36315245] [10.1021/acsami.2c15795] |
20. Arabi Maryam, Ostovan Abbas, Wang Yunqing, Mei Rongchao, Fu Longwen, Li Jinhua, Wang Xiaoyan, Chen Lingxin. (2022) Chiral molecular imprinting-based SERS detection strategy for absolute enantiomeric discrimination. Nature Communications, 13 (1): (1-14). [PMID:36180485] [10.1038/s41467-022-33448-w] |
21. Ning Liu, Baozhu Yang, Zheng-Zhi Yin, Wenrong Cai, Junyao Li, Yong Kong. (2022) A chiral sensing platform based on chiral metal-organic framework for enantiodiscrimination of the isomers of tyrosine and tryptophan. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 918 (116445). [10.1016/j.jelechem.2022.116445] |
22. Datong Wu, Cong Ma, Ting Wan, Pengfen Zhu, Yong Kong. (2022) Strategies to synthesize a chiral helical polymer accompanying with two stereogenic centers for chiral electroanalysis. ANALYTICA CHIMICA ACTA, 1206 (339810). [PMID:35473883] [10.1016/j.aca.2022.339810] |
23. Shutong Yang, Liancheng Gu, Fangling Wu, Xinhua Dai, Fuxing Xu, Qiaoyu Li, Xiang Fang, Shaoning Yu, Chuan-Fan Ding. (2022) The chirality determination of amino acids by forming complexes with cyclodextrins and metal ions using ion mobility spectrometry, and a DFT calculation. TALANTA, 243 (123363). [PMID:35272154] [10.1016/j.talanta.2022.123363] |
24. Xiaohui Niu, Simeng Yan, Letong Wang, Jinliang Chen, Rui Zhao, Hongxia Li, Jian Liu, Kunjie Wang. (2022) Induction of chiral polymers from metal-organic framework for stereoselective recognition. ANALYTICA CHIMICA ACTA, 1196 (339546). [PMID:35151404] [10.1016/j.aca.2022.339546] |
25. Xiaohui Niu, Simeng Yan, Jinliang Chen, Hongxia Li, Kunjie Wang. (2022) Enantioselective recognition of L/D-amino acids in the chiral nanochannels of a metal-organic framework. ELECTROCHIMICA ACTA, 405 (139809). [10.1016/j.electacta.2021.139809] |
26. Hanyu Wang, Yukun Ouyang, Wenjing Zou, Xingchong Liu, Haimin Li, Ruonan Zhou, Xian Peng, Xiaoli Gong. (2021) Enhanced Activation Energy Released by Coordination of Bifunctional Lewis Base d-Tryptophan for Highly Efficient and Stable Perovskite Solar Cells. ACS Applied Materials & Interfaces, 13 (49): (58458–58466). [PMID:34866375] [10.1021/acsami.1c13784] |
27. Jinglei Liu, Wenbo Yuan, Caifeng Li, Mengmeng Cheng, Yan Su, Lijian Xu, Tianfei Chu, Shifeng Hou. (2021) l-Cysteine-Modified Graphene Oxide-Based Membrane for Chiral Selective Separation. ACS Applied Materials & Interfaces, 13 (41): (49215–49223). [PMID:34628847] [10.1021/acsami.1c14900] |
28. Qianqian Zhao, Wenrong Cai, Baozhu Yang, Zheng-Zhi Yin, Datong Wu, Yong Kong. (2021) Electrochemiluminescent chiral discrimination with chiral Ag2S quantum dots/few-layer carbon nitride nanosheets. ANALYST, 146 (20): (6245-6251). [PMID:34528650] [10.1039/D1AN01437D] |
29. Le Li, Xiaofei Ma, Yin Xiao, Yong Wang. (2021) Construction and Application of Graphene Oxide-Bovine Serum Albumin Modified Extended Gate Field Effect Transistor Chiral Sensor. SENSORS, 21 (11): (3921). [PMID:34200213] [10.3390/s21113921] |
30. Liu Nijuan, Liu Jingjing, Niu Xiaohui, Wang Jia, Guo Ruibin, Mo Zunli. (2021) An electrochemical chiral sensor based on the synergy of chiral ionic liquid and 3D-NGMWCNT for tryptophan enantioselective recognition. MICROCHIMICA ACTA, 188 (5): (1-13). [PMID:33839948] [10.1007/s00604-021-04818-w] |
31. Yi-Xin Sun, Dan-Dan Zhang, Yang Sheng, Defeng Xu, Rong Zhang, Mark Bradley. (2021) Supramolecular assembly induced chiral interface for electrochemical recognition of tryptophan enantiomers. Analytical Methods, 13 (17): (2011-2020). [PMID:33955988] [10.1039/D1AY00222H] |
32. Lamei Yang, Feng Luo, Weili Wei. (2021) Simultaneous determination of the concentration and enantiomeric excess of amino acids with a coumarin-derived achiral probe. Analytical Methods, 13 (16): (1905-1910). [PMID:33913945] [10.1039/D1AY00271F] |
33. Jia Wang, Zunli Mo, Nijuan Liu, Ruibin Guo, Chao Shuai, Fang Chen, Yongxin Du, Jingjing Liu, Guigui Liu, Qibing Dong, Qinqin Gao, Ying Chen, Wentong Liu. (2021) Construction of electrochemical chiral interface of C3N4/Ppy/ self-assembled polysaccharide. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 886 (115118). [10.1016/j.jelechem.2021.115118] |
34. Xiaohui Niu, Xing Yang, Hongxia Li, Qiuyun Shi, Kunjie Wang. (2021) Chiral voltammetric sensor for tryptophan enantiomers by using a self-assembled multiwalled carbon nanotubes/polyaniline/sodium alginate composite. CHIRALITY, 33 (5): (248-260). [PMID:33675271] [10.1002/chir.23305] |
35. Ling Gong, Shan Li, Zhengzhi Yin, Kelin Li, Jiawei Gu, Datong Wu, Yong Kong. (2021) Enantioselective recognition of tryptophan isomers with molecularly imprinted overoxidized polypyrrole/poly(p-aminobenzene sulfonic acid) modified electrode. CHIRALITY, 33 (4): (176-183). [PMID:33567153] [10.1002/chir.23299] |
36. Jiapei Yang, Hui Wang, Qianqian Zhao, Datong Wu, Yonggang Peng, Linhong Deng, Yong Kong. (2021) Chiral supramolecular hydrogel with controllable phase transition behavior for stereospecific molecular recognition. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 883 (115045). [10.1016/j.jelechem.2021.115045] |
37. Zou Jiao, Lan Xi-Wen, Zhao Guo-Qing, Huang Zhao-Ning, Liu Yi-Ping, Yu Jin-Gang. (2020) Immobilization of 6-O-α-maltosyl-β-cyclodextrin on the surface of black phosphorus nanosheets for selective chiral recognition of tyrosine enantiomers. MICROCHIMICA ACTA, 187 (11): (1-11). [PMID:33141322] [10.1007/s00604-020-04606-y] |
38. Shaoping Ma, Fenfang Li, Liangliang Liu, Liping Liao, Li Chang, Zhijian Tan. (2020) Deep-eutectic solvents simultaneously used as the phase-forming components and chiral selectors for enantioselective liquid-liquid extraction of tryptophan enantiomers. JOURNAL OF MOLECULAR LIQUIDS, 319 (114106). [10.1016/j.molliq.2020.114106] |
39. Shanshan Wu, Qiumin Ye, Datong Wu, Yongxin Tao, Yong Kong. (2020) Enantioselective Recognition of Chiral Tryptophan with Achiral Glycine through the Strategy of Chirality Transfer. ANALYTICAL CHEMISTRY, 92 (17): (11927–11934). [PMID:32786461] [10.1021/acs.analchem.0c02335] |
40. Jiao Zou, Jin-Gang Yu. (2020) Nafion-stabilized black phosphorus nanosheets-maltosyl-β-cyclodextrin as a chiral sensor for tryptophan enantiomers. Materials Science & Engineering C-Materials for Biological Applications, 112 (110910). [PMID:32409064] [10.1016/j.msec.2020.110910] |
41. Tingting Wang, Yuhuan Cheng, Yulian Zhang, Jinyin Zha, Jiannong Ye, Qingcui Chu, Guifang Cheng. (2020) β-cyclodextrin modified quantum dots as pseudo-stationary phase for direct enantioseparation based on capillary electrophoresis with laser-induced fluorescence detection. TALANTA, 210 (120629). [PMID:31987180] [10.1016/j.talanta.2019.120629] |
42. Shanshan Wu, Zheng-Zhi Yin, Datong Wu, Yongxin Tao, Yong Kong. (2019) Chiral Enantioselective Assemblies Induced from Achiral Porphyrin by l- and d-Lysine. LANGMUIR, 35 (51): (16761–16769). [PMID:31769990] [10.1021/acs.langmuir.9b03255] |
43. Huali Liu, Zhen Li, Yan Yan, Jiaqi Zhao, Yu Wang. (2019) Chiroptical study of the bimetal–cysteine hybrid composite: interaction between cysteine and Au/Ag alloyed nanotubes. Nanoscale, 11 (45): (21990-21998). [PMID:31710078] [10.1039/C9NR07421J] |
44. Qiumin Ye, Lili Guo, Datong Wu, Baozhu Yang, Yongxin Tao, Linhong Deng, Yong Kong. (2019) Covalent Functionalization of Bovine Serum Albumin with Graphene Quantum Dots for Stereospecific Molecular Recognition. ANALYTICAL CHEMISTRY, 91 (18): (11864–11871). [PMID:31415149] [10.1021/acs.analchem.9b02605] |
45. Jiao Zou, Jin-Gang Yu. (2019) Chiral recognition of tyrosine enantiomers on a novel bis-aminosaccharides composite modified glassy carbon electrode. ANALYTICA CHIMICA ACTA, 1088 (35). [PMID:31623714] [10.1016/j.aca.2019.08.018] |
46. Xinbao Li, Kaihui Li, Ali Farajtabar, Yating He, Gaoquan Chen, Hongkun Zhao. (2019) Solubility of d-Tryptophan and l-Tyrosine in Several Organic Solvents: Determination and Solvent Effect. JOURNAL OF CHEMICAL AND ENGINEERING DATA, 64 (7): (3164–3169). [10.1021/acs.jced.9b00258] |
47. Zijian Chen, Kai Zhou, Wuzu Ha, Peihong Chen, Huijun Fu, Yudong Shen, Yuanming Sun, Zhenlin Xu. (2019) Development of a low-cost, simple, fast and quantitative lateral-flow immunochromatographic assay (ICA) strip for melatonin in health foods. FOOD AND AGRICULTURAL IMMUNOLOGY, 30 (1): (497-509). [10.1080/09540105.2019.1602112] |
48. Qiumin Ye, Jihong Hu, Datong Wu, Baozhu Yang, Yongxin Tao, Yong Qin, Yong Kong. (2019) Smart construction of an efficient enantioselective sensing device based on bioactive tripeptide. Analytical Methods, 11 (14): (1951-1957). [10.1039/C9AY00331B] |
49. Xiaohui Niu, Xing Yang, Zunli Mo, Ruibin Guo, Nijuan Liu, Pan Zhao, Zhenyu Liu, Meixuan Ouyang. (2019) Voltammetric enantiomeric differentiation of tryptophan by using multiwalled carbon nanotubes functionalized with ferrocene and β-cyclodextrin. ELECTROCHIMICA ACTA, 297 (650). [10.1016/j.electacta.2018.12.041] |
50. Peng Lei, Ying Zhou, Guomei Zhang, Yan Zhang, Caihong Zhang, Shasha Hong, Yajuan Yang, Chuan Dong, Shaomin Shuang. (2019) A highly efficient chiral sensing platform for tryptophan isomers based on a coordination self-assembly. TALANTA, 195 (306). [PMID:30625547] [10.1016/j.talanta.2018.11.084] |
51. Datong Wu, Wensheng Tan, Hongda Li, Zhangchen Lei, Linhong Deng, Yong Kong. (2019) A facile route to prepare functional mesoporous organosilica spheres with electroactive units for chiral recognition of amino acids. ANALYST, 144 (2): (543-549). [PMID:30411759] [10.1039/C8AN01519H] |
52. Xiao Feng, Ali Farajtabar, Hu Lin, Gaoquan Chen, Zhiying Wang, Xinbao Li, Hongkun Zhao. (2019) Experimental solubility evaluation and thermodynamic analysis of biologically active D-tryptophan in aqueous mixtures of N,N-dimethylformamide and several alcohols. JOURNAL OF CHEMICAL THERMODYNAMICS, 128 (34). [10.1016/j.jct.2018.08.018] |
53. Huang Lu, Li Yanxia, Lin Qi, Lou Benyong, Chen Yiting. (2018) Enantioselective permeations of amino acids through l-proline-modified gold nanochannel membrane: an experimental and theoretical study. AMINO ACIDS, 50 (11): (1549-1556). [PMID:30073606] [10.1007/s00726-018-2629-0] |
54. Jiapei Yang, Yin Yu, Datong Wu, Yongxin Tao, Linhong Deng, Yong Kong. (2018) Coinduction of a Chiral Microenvironment in Polypyrrole by Overoxidation and Camphorsulfonic Acid for Electrochemical Chirality Sensing. ANALYTICAL CHEMISTRY, 90 (15): (9551–9558). [PMID:29996647] [10.1021/acs.analchem.8b02269] |
55. Datong Wu, Wensheng Tan, Yin Yu, Baozhu Yang, Hongda Li, Yong Kong. (2018) A facile avenue to prepare chiral graphene sheets as electrode modification for electrochemical enantiorecognition. ANALYTICA CHIMICA ACTA, 1033 (58). [PMID:30172332] [10.1016/j.aca.2018.06.029] |
56. Mo Zunli, Niu Xiaohui, Gao Huhu, Li Zhenliang, Meng Shujuan, Guo Ruibin. (2018) Electrochemical recognition for tryptophan enantiomers based on 3, 4, 9, 10-perylenetetracarboxylic acid–chitosan composite film. JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 22 (8): (2405-2412). [10.1007/s10008-018-3960-9] |
57. Lili Guo, Baozhu Yang, Datong Wu, Yongxin Tao, Yong Kong. (2018) Chiral Sensing Platform Based on the Self-Assemblies of Diphenylalanine and Oxalic Acid. ANALYTICAL CHEMISTRY, 90 (8): (5451–5458). [PMID:29595059] [10.1021/acs.analchem.8b00762] |
58. Niu Xiaohui, Mo Zunli, Gao Huhu, Wang Ruijuan, Li Zhenliang, Meng Shujuan, Guo Ruibin. (2018) Highly selective tryptophan enantiomers electrochemical chiral sensor based on poly-lysine and functionalized multi-walled carbon nanotubes. JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 22 (4): (973-981). [10.1007/s10008-017-3832-8] |
59. Yin Yu, Yongxin Tao, Baozhu Yang, Datong Wu, Yong Qin, Yong Kong. (2017) Smart Chiral Sensing Platform with Alterable Enantioselectivity. ANALYTICAL CHEMISTRY, 89 (23): (12930–12937). [PMID:29125282] [10.1021/acs.analchem.7b03783] |
60. Liqi Dong, Youshan Zhang, Xuemin Duan, Xiaofei Zhu, Hui Sun, Jingkun Xu. (2017) Chiral PEDOT-Based Enantioselective Electrode Modification Material for Chiral Electrochemical Sensing: Mechanism and Model of Chiral Recognition. ANALYTICAL CHEMISTRY, 89 (18): (9695–9702). [PMID:28809103] [10.1021/acs.analchem.7b01095] |
61. Xiao Qi, Lu Shuangyan, Huang Chusheng, Su Wei, Zhou Shuyu, Sheng Jiarong, Huang Shan. (2017) An electrochemical chiral sensor based on amino-functionalized graphene quantum dots/β-cyclodextrin modified glassy carbon electrode for enantioselective detection of tryptophan isomers. Journal of the Iranian Chemical Society, 14 (9): (1957-1970). [10.1007/s13738-017-1134-9] |
62. Lei Miao, Yang Yang, Yuanyuan Tu, Shudong Lin, Jiwen Hu, Zhuo Du, Min Zhang, Yue Li. (2017) Chiral resolution by polysulfone-based membranes prepared via mussel-inspired chemistry. REACTIVE & FUNCTIONAL POLYMERS, 115 (87). [10.1016/j.reactfunctpolym.2017.04.004] |
63. Xiaomei Lu, Jie Tang, Xinxin Dang, Xiaoli Jing, Kailin Xu, Hui Li, Bing Liang. (2017) Chiral recognition and determination of enantiomeric excess of chiral compounds by UV-visible-shortwave near infrared diffuse reflectance spectroscopy with chemometrics. RSC Advances, 7 (22): (13552-13560). [10.1039/C6RA24952C] |
64. Lian-Di Guo, Ya-Ya Song, Hai-Rong Yu, Li-Ting Pan, Chang-Jing Cheng. (2017) Novel smart chiral magnetic microspheres for enantioselective adsorption of tryptophan enantiomers. APPLIED SURFACE SCIENCE, 407 (82). [10.1016/j.apsusc.2017.02.121] |
65. Yongxin Tao, Xiaogang Gu, Baozhu Yang, Linhong Deng, Liping Bao, Yong Kong, Fuqiang Chu, Yong Qin. (2017) Electrochemical Enantioselective Recognition in a Highly Ordered Self-Assembly Framework. ANALYTICAL CHEMISTRY, 89 (3): (1900–1906). [PMID:28208293] [10.1021/acs.analchem.6b04377] |
66. Qi Xiao, Shuangyan Lu, Chusheng Huang, Wei Su, Shan Huang. (2016) Novel N-Doped Carbon Dots/β-Cyclodextrin Nanocomposites for Enantioselective Recognition of Tryptophan Enantiomers. SENSORS, 16 (11): (1874). [PMID:27834863] [10.3390/s16111874] |
67. Ma Liyun, Li Jing, Zhao Juan, Liao Han, Xu Li, Shi Zhi-guo. (2016) Penetrable silica microspheres for immobilization of bovine serum albumin and their application to the study of the interaction between imatinib mesylate and protein by frontal affinity chromatography. ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 408 (3): (805-814). [PMID:26573171] [10.1007/s00216-015-9163-7] |
68. Qing Wang, Yao Long, Lin Yao, Li Xu, Zhi-Guo Shi, Lanying Xu. (2016) Preparation, characterization and application of a reversed phase liquid chromatography/hydrophilic interaction chromatography mixed-mode C18-DTT stationary phase. TALANTA, 146 (442). [PMID:26695288] [10.1016/j.talanta.2015.09.009] |
69. Xiaogang Gu, Yongxin Tao, Yan Pan, Linhong Deng, Liping Bao, Yong Kong. (2015) DNA-Inspired Electrochemical Recognition of Tryptophan Isomers by Electrodeposited Chitosan and Sulfonated Chitosan. ANALYTICAL CHEMISTRY, 87 (18): (9481–9486). [PMID:26321420] [10.1021/acs.analchem.5b02683] |
70. Yongxin Tao, Xiaogang Gu, Linhong Deng, Yong Qin, Huaiguo Xue, Yong Kong. (2015) Chiral Recognition of d-Tryptophan by Confining High-Energy Water Molecules Inside the Cavity of Copper-Modified β-Cyclodextrin. Journal of Physical Chemistry C, 119 (15): (8183–8190). [10.1021/acs.jpcc.5b00927] |
71. Fang fei Liu, Ying Yu, Bi xia Lin, Xiao gang Hu, Yu juan Cao, Jian zhong Wu. (2014) Visualization of hormone binding proteins in vivo based on Mn-doped CdTe QDs. SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 131 (9). [PMID:24815196] [10.1016/j.saa.2014.04.066] |
1. C F Morris,D D Mueller,J M Faubion,G M Paulsen. (1988-10-01) Identification of l-Tryptophan as an Endogenous Inhibitor of Embryo Germination in White Wheat.. Plant physiology, 88 ((2)): (435-440). [PMID:16666322] |
2. Seppo Parkkila,Daniela Vullo,Luca Puccetti,Anna-Kaisa Parkkila,Andrea Scozzafava,Claudiu T Supuran. (2006-05-30) Carbonic anhydrase activators: activation of isozyme XIII with amino acids and amines.. Bioorganic & medicinal chemistry letters, 16 ((15)): (3955-3959). [PMID:16730978] |
3. Daniela Vullo,Isao Nishimori,Alessio Innocenti,Andrea Scozzafava,Claudiu T Supuran. (2006-12-19) Carbonic anhydrase activators: an activation study of the human mitochondrial isoforms VA and VB with amino acids and amines.. Bioorganic & medicinal chemistry letters, 17 ((5)): (1336-1340). [PMID:17174092] |
4. Isao Nishimori,Saburo Onishi,Daniela Vullo,Alessio Innocenti,Andrea Scozzafava,Claudiu T Supuran. (2007-05-15) Carbonic anhydrase activators: the first activation study of the human secretory isoform VI with amino acids and amines.. Bioorganic & medicinal chemistry, 15 ((15)): (5351-5357). [PMID:17499996] |
5. Daniela Vullo,Alessio Innocenti,Isao Nishimori,Andrea Scozzafava,Kai Kaila,Claudiu T Supuran. (2007-06-02) Carbonic anhydrase activators: activation of the human isoforms VII (cytosolic) and XIV (transmembrane) with amino acids and amines.. Bioorganic & medicinal chemistry letters, 17 ((15)): (4107-4112). [PMID:17540561] |
6. Silvia Pastorekova,Daniela Vullo,Isao Nishimori,Andrea Scozzafava,Jaromir Pastorek,Claudiu T Supuran. (2008-02-26) Carbonic anhydrase activators: activation of the human tumor-associated isozymes IX and XII with amino acids and amines.. Bioorganic & medicinal chemistry, 16 ((7)): (3530-3536). [PMID:18294854] |
7. Daniela Vullo,Isao Nishimori,Andrea Scozzafava,Claudiu T Supuran. (2008-07-17) Carbonic anhydrase activators: Activation of the human cytosolic isozyme III and membrane-associated isoform IV with amino acids and amines.. Bioorganic & medicinal chemistry letters, 18 ((15)): (4303-4307). [PMID:18627905] |
8. Claudia Temperini,Alessio Innocenti,Andrea Scozzafava,Claudiu T Supuran. (2008-09-09) Carbonic anhydrase activators: kinetic and X-ray crystallographic study for the interaction of D- and L-tryptophan with the mammalian isoforms I-XIV.. Bioorganic & medicinal chemistry, 16 ((18)): (8373-8378). [PMID:18774300] |
9. Alessio Innocenti,Sabrina A Zimmerman,Andrea Scozzafava,James G Ferry,Claudiu T Supuran. (2008-10-22) Carbonic anhydrase activators: activation of the archaeal beta-class (Cab) and gamma-class (Cam) carbonic anhydrases with amino acids and amines.. Bioorganic & medicinal chemistry letters, 18 ((23)): (6194-6198). [PMID:18930395] |
10. Semra Isik,Feray Kockar,Meltem Aydin,Oktay Arslan,Ozen Ozensoy Guler,Alessio Innocenti,Andrea Scozzafava,Claudiu T Supuran. (2009-02-24) Carbonic anhydrase activators: activation of the beta-carbonic anhydrase Nce103 from the yeast Saccharomyces cerevisiae with amines and amino acids.. Bioorganic & medicinal chemistry letters, 19 ((6)): (1662-1665). [PMID:19231177] |
11. Alessio Innocenti,Mika Hilvo,Seppo Parkkila,Andrea Scozzafava,Claudiu T Supuran. (2009-05-26) Carbonic anhydrase activators. Activation of the membrane-associated isoform XV with amino acids and amines.. Bioorganic & medicinal chemistry letters, 19 ((13)): (3430-3433). [PMID:19464888] |
12. Alessio Innocenti,Rebecca A Hall,Andrea Scozzafava,Fritz A Mühlschlegel,Claudiu T Supuran. (2010-01-12) Carbonic anhydrase activators: activation of the beta-carbonic anhydrases from the pathogenic fungi Candida albicans and Cryptococcus neoformans with amines and amino acids.. Bioorganic & medicinal chemistry, 18 ((3)): (1034-1037). [PMID:20061162] |
13. Alessio Innocenti,Worraanong Leewattanapasuk,Gheorghe Manole,Andrea Scozzafava,Fritz A Mühlschlegel,Claudiu T Supuran. (2010-02-05) Carbonic anhydrase activators: Activation of the beta-carbonic anhydrase from the pathogenic yeast Candida glabrata with amines and amino acids.. Bioorganic & medicinal chemistry letters, 20 ((5)): (1701-1704). [PMID:20129782] |
14. Anthony Bertucci,Didier Zoccola,Sylvie Tambutté,Daniela Vullo,Claudiu T Supuran. (2010-02-24) Carbonic anhydrase activators. The first activation study of a coral secretory isoform with amino acids and amines.. Bioorganic & medicinal chemistry, 18 ((6)): (2300-2303). [PMID:20176489] |
15. William Bacchus,Wilfried Weber,Martin Fussenegger. (2012-11-28) Increasing the dynamic control space of mammalian transcription devices by combinatorial assembly of homologous regulatory elements from different bacterial species.. Metabolic engineering, 15 (144-150). [PMID:23178502] |
16. C Zscheppank,H L Wiegand,C Lenzen,J Wingender,U Telgheder. (2014-08-26) Investigation of volatile metabolites during growth of Escherichia coli and Pseudomonas aeruginosa by needle trap-GC-MS.. Analytical and bioanalytical chemistry, 406 ((26)): (6617-6628). [PMID:25146358] |
17. Shengqiang Tong,Yoichiro Ito,Ying Ma. (2014-12-06) Enantioseparation of (DL)-tryptophan by spiral tube assembly counter-current chromatography and evaluation of mass transfer rate for enantiomers.. Journal of chromatography. A, 1374 (77-84). [PMID:25476690] |
18. Yating Liu,Ailin Tian,Xiong Wang,Jing Qi,Fengkang Wang,Ying Ma,Yoichiro Ito,Yun Wei. (2015-05-16) Fabrication of chiral amino acid ionic liquid modified magnetic multifunctional nanospheres for centrifugal chiral chromatography separation of racemates.. Journal of chromatography. A, 1400 (40-46). [PMID:25976126] |
19. Kenneth S Brandenburg,Diego F Calderon,Patricia R Kierski,Amanda L Brown,Nihar M Shah,Nicholas L Abbott,Michael J Schurr,Christopher J Murphy,Jonathan F McAnulty,Charles J Czuprynski. (2015-09-06) Inhibition of Pseudomonas aeruginosa biofilm formation on wound dressings.. Wound repair and regeneration : official publication of the Wound Healing Society [and] the European Tissue Repair Society, 23 ((6)): (842-854). [PMID:26342168] |
20. Elizabeth S Booth,Jaswir Basran,Michael Lee,Sandeep Handa,Emma L Raven. (2015-10-30) Substrate Oxidation by Indoleamine 2,3-Dioxygenase: EVIDENCE FOR A COMMON REACTION MECHANISM.. The Journal of biological chemistry, 290 ((52)): (30924-30930). [PMID:26511316] |
21. Miho Sakamoto,Kiyoko Kishimoto,Yuri Saito,Ikuo Suzuki,Takako Moriyasu. (2016-01-16) Identification of N-octylnortadalafil and its Stereoisomers in Dietary Supplements with Chiral Liquid Chromatography-Circular Dichroism.. Chirality, 28 ((3)): (204-208). [PMID:26769592] |
22. Semra Akgönüllü,Handan Yavuz,Adil Denizli. (2016-05-03) Preparation of imprinted cryogel cartridge for chiral separation of l-phenylalanine.. Artificial cells, nanomedicine, and biotechnology, 45 ((4)): (800-807). [PMID:27132947] |
23. Qing Wang,Yao Long,Lin Yao,Mao Ye,Li Xu. (2017-02-16) C18-COOH Silica: Preparation, Characterisation and Its Application in Purification of Quaternary Ammonium Alkaloids from Coptis chinensis.. Phytochemical analysis : PCA, 28 ((4)): (332-343). [PMID:28198057] |
24. David Bongiorno,Valentina Calabrese,Leopoldo Ceraulo,Serena Indelicato,Vincenzo Turco Liveri. (2017-07-22) Entrapment of amino acids in gas phase surfactant assemblies: The case of tryptophan confined in positively charged (1R,2S)-dodecyl (2-hydroxy-1-methyl-2-phenylethyl) dimethylammonium bromide aggregates.. Journal of mass spectrometry : JMS, 52 ((10)): (681-688). [PMID:28732132] |
25. Xiaoyong Luo,Zhihang Liu,Yukari Sunohara,Hiroshi Matsumoto,Pingliang Li. (2017-12-01) Involvement of H. Pesticide biochemistry and physiology, 143 (258-264). [PMID:29183601] |
26. Rachel M Gwynne,Kenny D K N Ly,Laura J Parry,Joel C Bornstein. (2017-12-20) Calcium Sensing Receptors Mediate Local Inhibitory Reflexes Evoked by L-Phenylalanine in Guinea Pig Jejunum.. Frontiers in physiology, 8 (991-991). [PMID:29255423] |
27. Pablo Zardoya-Laguardia,Astrid Blaschitz,Birgit Hirschmugl,Ingrid Lang,Sereina A Herzog,Liudmila Nikitina,Martin Gauster,Martin Häusler,Mila Cervar-Zivkovic,Eva Karpf,Ghassan J Maghzal,Chris P Stanley,Roland Stocker,Christian Wadsack,Saša Frank,Peter Sedlmayr. (2018-04-05) Endothelial indoleamine 2,3-dioxygenase-1 regulates the placental vascular tone and is deficient in intrauterine growth restriction and pre-eclampsia.. Scientific reports, 8 ((1)): (5488-5488). [PMID:29615752] |
28. Meng Zhao,Xiang-Qun Xu,Xuan-Yu Meng,Bo Liu. (2018-08-19) The Heptahelical Domain of the Sweet Taste Receptor T1R2 Is a New Allosteric Binding Site for the Sweet Taste Modulator Amiloride That Modulates Sweet Taste in a Species-Dependent Manner.. Journal of molecular neuroscience : MN, 66 ((2)): (207-213). [PMID:30120716] |
29. Masashi Harada,Sachise Karakawa,Naoyuki Yamada,Hiroshi Miyano,Kazutaka Shimbo. (2019-02-12) Biaryl axially chiral derivatizing agent for simultaneous separation and sensitive detection of proteinogenic amino acid enantiomers using liquid chromatography-tandem mass spectrometry.. Journal of chromatography. A, 1593 (91-101). [PMID:30739759] |
30. Yang Wang,Niannian Wu,Yan Wang,Huan Ma,Junxiang Zhang,Lili Xu,Mohamed K Albolkany,Bo Liu. (2019-06-09) Graphite phase carbon nitride based membrane for selective permeation.. Nature communications, 10 ((1)): (2500-2500). [PMID:31175298] |
31. Benjamin W Roose,David W Christianson. (2019-06-30) Structural Basis of Tryptophan Reverse N-Prenylation Catalyzed by CymD.. Biochemistry, 58 ((30)): (3232-3242). [PMID:31251043] |
32. Ruxandra-Maria Ilie-Mihai,Raluca-Ioana Stefan-van Staden,Lidia Magerusan,Maria Coros,Stela Pruneanu. (2019-11-21) Enantioanalysis of tryptophan in whole blood samples using stochastic sensors-A screening test for gastric cancer.. Chirality, 32 ((2)): (215-222). [PMID:31747471] |
33. Yu Sakurai,Wataru Mizumura,Kenichiro Ito,Kazuhiro Iwasaki,Takayuki Katoh,Yuki Goto,Hiroaki Suga,Hideyoshi Harashima. (2020-02-25) Improved Stability of siRNA-Loaded Lipid Nanoparticles Prepared with a PEG-Monoacyl Fatty Acid Facilitates Ligand-Mediated siRNA Delivery.. Molecular pharmaceutics, 17 ((4)): (1397-1404). [PMID:32091909] |
34. Yongchan Jeong,Hyo Won Kim,JiYeon Ku,Jungpil Seo. (2020-10-02) Breakdown of chiral recognition of amino acids in reduced dimensions.. Scientific reports, 10 ((1)): (16166-16166). [PMID:32999433] |
35. Shi Xuan Leong,Charlynn Sher Lin Koh,Howard Yi Fan Sim,Yih Hong Lee,Xuemei Han,Gia Chuong Phan-Quang,Xing Yi Ling. (2021-01-06) Enantiospecific Molecular Fingerprinting Using Potential-Modulated Surface-Enhanced Raman Scattering to Achieve Label-Free Chiral Differentiation.. ACS nano, 15 ((1)): (1817-1825). [PMID:33399441] |
36. Yukihiro Fujita,Rhonda D Wideman,Madeleine Speck,Ali Asadi,David S King,Travis D Webber,Masakazu Haneda,Timothy J Kieffer. (2008-12-25) Incretin release from gut is acutely enhanced by sugar but not by sweeteners in vivo.. American journal of physiology. Endocrinology and metabolism, 296 ((3)): (E473-E479). [PMID:19106249] |
37. Hiroyuki Koyama,Hiroshi Iwakura,Katsuko Dote,Mika Bando,Hiroshi Hosoda,Hiroyuki Ariyasu,Toru Kusakabe,Choel Son,Kiminori Hosoda,Takashi Akamizu,Kenji Kangawa,Kazuwa Nakao. (2015-12-17) Comprehensive Profiling of GPCR Expression in Ghrelin-Producing Cells.. Endocrinology, 157 ((2)): (692-704). [PMID:26671185] |
38. Hideaki Iizuka,Takahiro Harashima,Shuhei Takahashi,Ryosuke Kuwabara,Yoko Naito,Tatsuya Sakamoto,Mayu Onozato,Hideaki Ichiba,Takeshi Fukushima. (2017-07-22) Chromatographic profiles of tryptophan and kynurenine enantiomers derivatized with (S)-4-(3-isothiocyanatopyrrolidin-1-yl)-7-(N,N-dimethylaminosulfonyl)-2,1,3-benzoxadiazole using LC-MS/MS on a triazole-bonded column.. Chirality, 29 ((10)): (603-609). [PMID:28730706] |
39. Fangjie Zheng,Wei Ke,Yuan Zhao,Chuanlai Xu. (2019-04-27) Pt NPs catalyzed chemiluminescence method for Hg2+ detection based on a flow injection system.. Electrophoresis, 40 ((16-17)): (2218-2226). [PMID:31025709] |
40. Atsushi Ishihara,Naomi Sugai,Tomohiro Bito,Naoki Ube,Kotomi Ueno,Yasuhito Okuda,Emi Fukushima-Sakuno. (2019-05-28) Isolation of 6-hydroxy-L-tryptophan from the fruiting body of Lyophyllum decastes for use as a tyrosinase inhibitor.. Bioscience, biotechnology, and biochemistry, 83 ((10)): (1800-1806). [PMID:31131717] |
41. Jingzhi Yang, Yami Ran, Shaopeng Liu, Chenhao Ren, Yuntian Lou, Pengfei Ju, Guoliang Li, Xiaogang Li, Dawei Zhang. (2023) Synergistic D-Amino Acids Based Antimicrobial Cocktails Formulated via High-Throughput Screening and Machine Learning. Advanced Science, 11 (9): (2307173). [PMID:38126652] [10.1002/advs.202307173] |
42. Zhiyang Xu, Yinzhou Yan, Xingyuan Wang, Xiaolei Wang, Zhixiang Zhou, Xi Yang, Tianrui Zhai. (2023) Determination of Enantiomeric Excess by Optofluidic Microlaser near Exceptional Point. Advanced Science, (2308362). [PMID:38072636] [10.1002/advs.202308362] |
43. Jianrong Wang, Sha Han, Hongfang Zhao, Hongxia Li, Xiaohui Niu, Yi Wang, Kunjie Wang. (2023) Electrochemical enantioselective recognition by defined chiral linkers in polysaccharides modified with carbon quantum dots. ELECTROANALYSIS, (6): (e202300301). [PMID:9169421] [10.1002/elan.202300301] |
44. Yijie Wang, Linbo Yu, Tingjie Lv, Jing Wang, Shengju Zhou, Xiaofeng Sun. (2023) Chiral carbonized polymer dots simultaneously achieving solid state luminescence and circularly polarized luminescence. DYES AND PIGMENTS, 220 (15): (111685). [PMID:10514485] [10.1016/j.dyepig.2023.111685] |
45. Zhengzhong Zhou, Lingli Zhou, Yi Liu, Qian Wang, Xiaoshan Meng, Qigang Wu, Taoli Huhe. (2023) Layered double hydroxide nanosheets embedded β-cyclodextrin composite membranes with enhanced chiral separation performance. JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 128 (569). [10.1016/j.jiec.2023.08.023] |
46. Miao Pandeng, Li Yuchen, Du Yingxiang. (2023) Dual-ligand 3D lammelar chiral metal–organic framework for capillary electrochromatographic enantioseparations. MICROCHIMICA ACTA, 190 (8): (1-11). [PMID:37464133] [10.1007/s00604-023-05890-0] |
47. Li Yuchen, Xu Guangfu, Chen Jiaquan, Yu Tao, Miao Pandeng, Du Yingxiang. (2023) One-step synthesis of chiral molecularly imprinted polymer TiO2 nanoparticles for enantioseparation of phenylalanine in coated capillary electrochromatography. MICROCHIMICA ACTA, 190 (7): (1-11). [PMID:37391671] [10.1007/s00604-023-05854-4] |
48. Haibo Chen, Chengqi Zhao, Yu Li, Junyao Li, Wenrong Cai, Yong Kong, Zheng-Zhi Yin. (2023) A chiral sensing platform with reversible chirality based on Au nanoparticles-d-methionine/chitosan. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 942 (117562). [10.1016/j.jelechem.2023.117562] |
49. Niu Xiaohui, Zhao Rui, Yan Simeng, Li Hongxia, Yang Jing, Cao Kunjie, Liu Xiaoyu, Wang Kunjie. (2023) Chiral MOFs encapsulated by polymers with poly-metallic coordination as chiral biosensors. MICROCHIMICA ACTA, 190 (6): (1-12). [PMID:37208529] [10.1007/s00604-023-05807-x] |
50. Pengjing Jing, Tai Wen, Junyao Li, Wenrong Cai, Baozhu Yang, Yong Kong. (2023) Highly Reliable Chiral Discrimination of Tryptophan Enantiomers through Two Different Modes: Electrochemistry and Temperature. ANALYTICAL CHEMISTRY, 95 (22): (8569–8577). [PMID:37204809] [10.1021/acs.analchem.3c00669] |
51. Zhang Zengdong, Wang Jia, Pei Hebing, Guo Ruibin, Liu Nijuan, Mo Zunli. (2023) β-Cyclodextrin dinuclear copper supported on graphene/polypyrrole nanocomposites as an electrochemical sensor for enantioselectivity recognition of tryptophan enantiomers. JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 34 (11): (1-15). [10.1007/s10854-023-10442-6] |
52. Hou Huipeng, Tang Shanshan, Wang Wei, Liu Miao, Liang Axin, Xie Bingteng, Yi Yue, Luo Aiqin. (2023) Electrochemical Chiral Recognizing Tryptophan Enantiomers Based on Chiral Metal-Organic Framework D-MOF. CHEMICAL RESEARCH IN CHINESE UNIVERSITIES, 39 (6): (976-984). [10.1007/s40242-023-3004-6] |
53. Ya-Qian Wang, Li Li, Jin Yin, Xu Yu, Xiaowei Wu, Li Xu. (2023) Turn on fluorescence detection of curcumin in food matrices by the novel fluorescence sensitizer. ANALYTICA CHIMICA ACTA, 1254 (341094). [PMID:37005020] [10.1016/j.aca.2023.341094] |
54. You Quan Shi, Zhao Xu, Le Wang, Kang Wang, Li Xu, Heng Zheng. (2023) The fluorescence and colorimetric dual-readout probe for clinical rapid detection of mycophenolic acid by the poly(ethylenimine)/silica-coated CdTe quantum dots. ANALYTICAL BIOCHEMISTRY, 668 (115090). [PMID:36870552] [10.1016/j.ab.2023.115090] |
55. Yulin Wang, Libo Nie, Yongbiao Hua, Liang Gong, Xiuzhen Qiu, Huishi Guo. (2023) A simple paper-based nickel nanocluster-europium mixed ratio fluorescent probe for rapid visual sensing of tetracyclines. SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 292 (122431). [PMID:36753865] [10.1016/j.saa.2023.122431] |
56. Wenyan Yao, Sha Li, Licheng Xie, Yan Jiang. (2022) Chiral recognition of tryptophan enantiomer based on the electrode modified by polyaniline adsorption bovine serum albumin complex. CHIRALITY, 35 (2): (129-144). [PMID:36564104] [10.1002/chir.23525] |
57. Qing Hu, Chaofeng Zhu, Wen Yan, Yang Wang, Songlin Cui, Xihai Chen, Bo Liu. (2022) Coordination-Assistant Chiral Agent Anchoring on Amphiphilic Graphitic Phase Carbon Nitride Membrane for Multiple Molecular Separation. ACS Applied Materials & Interfaces, 14 (44): (50235–50245). [PMID:36315245] [10.1021/acsami.2c15795] |
58. Arabi Maryam, Ostovan Abbas, Wang Yunqing, Mei Rongchao, Fu Longwen, Li Jinhua, Wang Xiaoyan, Chen Lingxin. (2022) Chiral molecular imprinting-based SERS detection strategy for absolute enantiomeric discrimination. Nature Communications, 13 (1): (1-14). [PMID:36180485] [10.1038/s41467-022-33448-w] |
59. Ning Liu, Baozhu Yang, Zheng-Zhi Yin, Wenrong Cai, Junyao Li, Yong Kong. (2022) A chiral sensing platform based on chiral metal-organic framework for enantiodiscrimination of the isomers of tyrosine and tryptophan. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 918 (116445). [10.1016/j.jelechem.2022.116445] |
60. Datong Wu, Cong Ma, Ting Wan, Pengfen Zhu, Yong Kong. (2022) Strategies to synthesize a chiral helical polymer accompanying with two stereogenic centers for chiral electroanalysis. ANALYTICA CHIMICA ACTA, 1206 (339810). [PMID:35473883] [10.1016/j.aca.2022.339810] |
61. Shutong Yang, Liancheng Gu, Fangling Wu, Xinhua Dai, Fuxing Xu, Qiaoyu Li, Xiang Fang, Shaoning Yu, Chuan-Fan Ding. (2022) The chirality determination of amino acids by forming complexes with cyclodextrins and metal ions using ion mobility spectrometry, and a DFT calculation. TALANTA, 243 (123363). [PMID:35272154] [10.1016/j.talanta.2022.123363] |
62. Xiaohui Niu, Simeng Yan, Letong Wang, Jinliang Chen, Rui Zhao, Hongxia Li, Jian Liu, Kunjie Wang. (2022) Induction of chiral polymers from metal-organic framework for stereoselective recognition. ANALYTICA CHIMICA ACTA, 1196 (339546). [PMID:35151404] [10.1016/j.aca.2022.339546] |
63. Xiaohui Niu, Simeng Yan, Jinliang Chen, Hongxia Li, Kunjie Wang. (2022) Enantioselective recognition of L/D-amino acids in the chiral nanochannels of a metal-organic framework. ELECTROCHIMICA ACTA, 405 (139809). [10.1016/j.electacta.2021.139809] |
64. Hanyu Wang, Yukun Ouyang, Wenjing Zou, Xingchong Liu, Haimin Li, Ruonan Zhou, Xian Peng, Xiaoli Gong. (2021) Enhanced Activation Energy Released by Coordination of Bifunctional Lewis Base d-Tryptophan for Highly Efficient and Stable Perovskite Solar Cells. ACS Applied Materials & Interfaces, 13 (49): (58458–58466). [PMID:34866375] [10.1021/acsami.1c13784] |
65. Jinglei Liu, Wenbo Yuan, Caifeng Li, Mengmeng Cheng, Yan Su, Lijian Xu, Tianfei Chu, Shifeng Hou. (2021) l-Cysteine-Modified Graphene Oxide-Based Membrane for Chiral Selective Separation. ACS Applied Materials & Interfaces, 13 (41): (49215–49223). [PMID:34628847] [10.1021/acsami.1c14900] |
66. Qianqian Zhao, Wenrong Cai, Baozhu Yang, Zheng-Zhi Yin, Datong Wu, Yong Kong. (2021) Electrochemiluminescent chiral discrimination with chiral Ag2S quantum dots/few-layer carbon nitride nanosheets. ANALYST, 146 (20): (6245-6251). [PMID:34528650] [10.1039/D1AN01437D] |
67. Le Li, Xiaofei Ma, Yin Xiao, Yong Wang. (2021) Construction and Application of Graphene Oxide-Bovine Serum Albumin Modified Extended Gate Field Effect Transistor Chiral Sensor. SENSORS, 21 (11): (3921). [PMID:34200213] [10.3390/s21113921] |
68. Liu Nijuan, Liu Jingjing, Niu Xiaohui, Wang Jia, Guo Ruibin, Mo Zunli. (2021) An electrochemical chiral sensor based on the synergy of chiral ionic liquid and 3D-NGMWCNT for tryptophan enantioselective recognition. MICROCHIMICA ACTA, 188 (5): (1-13). [PMID:33839948] [10.1007/s00604-021-04818-w] |
69. Yi-Xin Sun, Dan-Dan Zhang, Yang Sheng, Defeng Xu, Rong Zhang, Mark Bradley. (2021) Supramolecular assembly induced chiral interface for electrochemical recognition of tryptophan enantiomers. Analytical Methods, 13 (17): (2011-2020). [PMID:33955988] [10.1039/D1AY00222H] |
70. Lamei Yang, Feng Luo, Weili Wei. (2021) Simultaneous determination of the concentration and enantiomeric excess of amino acids with a coumarin-derived achiral probe. Analytical Methods, 13 (16): (1905-1910). [PMID:33913945] [10.1039/D1AY00271F] |
71. Jia Wang, Zunli Mo, Nijuan Liu, Ruibin Guo, Chao Shuai, Fang Chen, Yongxin Du, Jingjing Liu, Guigui Liu, Qibing Dong, Qinqin Gao, Ying Chen, Wentong Liu. (2021) Construction of electrochemical chiral interface of C3N4/Ppy/ self-assembled polysaccharide. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 886 (115118). [10.1016/j.jelechem.2021.115118] |
72. Xiaohui Niu, Xing Yang, Hongxia Li, Qiuyun Shi, Kunjie Wang. (2021) Chiral voltammetric sensor for tryptophan enantiomers by using a self-assembled multiwalled carbon nanotubes/polyaniline/sodium alginate composite. CHIRALITY, 33 (5): (248-260). [PMID:33675271] [10.1002/chir.23305] |
73. Ling Gong, Shan Li, Zhengzhi Yin, Kelin Li, Jiawei Gu, Datong Wu, Yong Kong. (2021) Enantioselective recognition of tryptophan isomers with molecularly imprinted overoxidized polypyrrole/poly(p-aminobenzene sulfonic acid) modified electrode. CHIRALITY, 33 (4): (176-183). [PMID:33567153] [10.1002/chir.23299] |
74. Jiapei Yang, Hui Wang, Qianqian Zhao, Datong Wu, Yonggang Peng, Linhong Deng, Yong Kong. (2021) Chiral supramolecular hydrogel with controllable phase transition behavior for stereospecific molecular recognition. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 883 (115045). [10.1016/j.jelechem.2021.115045] |
75. Zou Jiao, Lan Xi-Wen, Zhao Guo-Qing, Huang Zhao-Ning, Liu Yi-Ping, Yu Jin-Gang. (2020) Immobilization of 6-O-α-maltosyl-β-cyclodextrin on the surface of black phosphorus nanosheets for selective chiral recognition of tyrosine enantiomers. MICROCHIMICA ACTA, 187 (11): (1-11). [PMID:33141322] [10.1007/s00604-020-04606-y] |
76. Shaoping Ma, Fenfang Li, Liangliang Liu, Liping Liao, Li Chang, Zhijian Tan. (2020) Deep-eutectic solvents simultaneously used as the phase-forming components and chiral selectors for enantioselective liquid-liquid extraction of tryptophan enantiomers. JOURNAL OF MOLECULAR LIQUIDS, 319 (114106). [10.1016/j.molliq.2020.114106] |
77. Shanshan Wu, Qiumin Ye, Datong Wu, Yongxin Tao, Yong Kong. (2020) Enantioselective Recognition of Chiral Tryptophan with Achiral Glycine through the Strategy of Chirality Transfer. ANALYTICAL CHEMISTRY, 92 (17): (11927–11934). [PMID:32786461] [10.1021/acs.analchem.0c02335] |
78. Jiao Zou, Jin-Gang Yu. (2020) Nafion-stabilized black phosphorus nanosheets-maltosyl-β-cyclodextrin as a chiral sensor for tryptophan enantiomers. Materials Science & Engineering C-Materials for Biological Applications, 112 (110910). [PMID:32409064] [10.1016/j.msec.2020.110910] |
79. Tingting Wang, Yuhuan Cheng, Yulian Zhang, Jinyin Zha, Jiannong Ye, Qingcui Chu, Guifang Cheng. (2020) β-cyclodextrin modified quantum dots as pseudo-stationary phase for direct enantioseparation based on capillary electrophoresis with laser-induced fluorescence detection. TALANTA, 210 (120629). [PMID:31987180] [10.1016/j.talanta.2019.120629] |
80. Shanshan Wu, Zheng-Zhi Yin, Datong Wu, Yongxin Tao, Yong Kong. (2019) Chiral Enantioselective Assemblies Induced from Achiral Porphyrin by l- and d-Lysine. LANGMUIR, 35 (51): (16761–16769). [PMID:31769990] [10.1021/acs.langmuir.9b03255] |
81. Huali Liu, Zhen Li, Yan Yan, Jiaqi Zhao, Yu Wang. (2019) Chiroptical study of the bimetal–cysteine hybrid composite: interaction between cysteine and Au/Ag alloyed nanotubes. Nanoscale, 11 (45): (21990-21998). [PMID:31710078] [10.1039/C9NR07421J] |
82. Qiumin Ye, Lili Guo, Datong Wu, Baozhu Yang, Yongxin Tao, Linhong Deng, Yong Kong. (2019) Covalent Functionalization of Bovine Serum Albumin with Graphene Quantum Dots for Stereospecific Molecular Recognition. ANALYTICAL CHEMISTRY, 91 (18): (11864–11871). [PMID:31415149] [10.1021/acs.analchem.9b02605] |
83. Jiao Zou, Jin-Gang Yu. (2019) Chiral recognition of tyrosine enantiomers on a novel bis-aminosaccharides composite modified glassy carbon electrode. ANALYTICA CHIMICA ACTA, 1088 (35). [PMID:31623714] [10.1016/j.aca.2019.08.018] |
84. Xinbao Li, Kaihui Li, Ali Farajtabar, Yating He, Gaoquan Chen, Hongkun Zhao. (2019) Solubility of d-Tryptophan and l-Tyrosine in Several Organic Solvents: Determination and Solvent Effect. JOURNAL OF CHEMICAL AND ENGINEERING DATA, 64 (7): (3164–3169). [10.1021/acs.jced.9b00258] |
85. Zijian Chen, Kai Zhou, Wuzu Ha, Peihong Chen, Huijun Fu, Yudong Shen, Yuanming Sun, Zhenlin Xu. (2019) Development of a low-cost, simple, fast and quantitative lateral-flow immunochromatographic assay (ICA) strip for melatonin in health foods. FOOD AND AGRICULTURAL IMMUNOLOGY, 30 (1): (497-509). [10.1080/09540105.2019.1602112] |
86. Qiumin Ye, Jihong Hu, Datong Wu, Baozhu Yang, Yongxin Tao, Yong Qin, Yong Kong. (2019) Smart construction of an efficient enantioselective sensing device based on bioactive tripeptide. Analytical Methods, 11 (14): (1951-1957). [10.1039/C9AY00331B] |
87. Xiaohui Niu, Xing Yang, Zunli Mo, Ruibin Guo, Nijuan Liu, Pan Zhao, Zhenyu Liu, Meixuan Ouyang. (2019) Voltammetric enantiomeric differentiation of tryptophan by using multiwalled carbon nanotubes functionalized with ferrocene and β-cyclodextrin. ELECTROCHIMICA ACTA, 297 (650). [10.1016/j.electacta.2018.12.041] |
88. Peng Lei, Ying Zhou, Guomei Zhang, Yan Zhang, Caihong Zhang, Shasha Hong, Yajuan Yang, Chuan Dong, Shaomin Shuang. (2019) A highly efficient chiral sensing platform for tryptophan isomers based on a coordination self-assembly. TALANTA, 195 (306). [PMID:30625547] [10.1016/j.talanta.2018.11.084] |
89. Datong Wu, Wensheng Tan, Hongda Li, Zhangchen Lei, Linhong Deng, Yong Kong. (2019) A facile route to prepare functional mesoporous organosilica spheres with electroactive units for chiral recognition of amino acids. ANALYST, 144 (2): (543-549). [PMID:30411759] [10.1039/C8AN01519H] |
90. Xiao Feng, Ali Farajtabar, Hu Lin, Gaoquan Chen, Zhiying Wang, Xinbao Li, Hongkun Zhao. (2019) Experimental solubility evaluation and thermodynamic analysis of biologically active D-tryptophan in aqueous mixtures of N,N-dimethylformamide and several alcohols. JOURNAL OF CHEMICAL THERMODYNAMICS, 128 (34). [10.1016/j.jct.2018.08.018] |
91. Huang Lu, Li Yanxia, Lin Qi, Lou Benyong, Chen Yiting. (2018) Enantioselective permeations of amino acids through l-proline-modified gold nanochannel membrane: an experimental and theoretical study. AMINO ACIDS, 50 (11): (1549-1556). [PMID:30073606] [10.1007/s00726-018-2629-0] |
92. Jiapei Yang, Yin Yu, Datong Wu, Yongxin Tao, Linhong Deng, Yong Kong. (2018) Coinduction of a Chiral Microenvironment in Polypyrrole by Overoxidation and Camphorsulfonic Acid for Electrochemical Chirality Sensing. ANALYTICAL CHEMISTRY, 90 (15): (9551–9558). [PMID:29996647] [10.1021/acs.analchem.8b02269] |
93. Datong Wu, Wensheng Tan, Yin Yu, Baozhu Yang, Hongda Li, Yong Kong. (2018) A facile avenue to prepare chiral graphene sheets as electrode modification for electrochemical enantiorecognition. ANALYTICA CHIMICA ACTA, 1033 (58). [PMID:30172332] [10.1016/j.aca.2018.06.029] |
94. Mo Zunli, Niu Xiaohui, Gao Huhu, Li Zhenliang, Meng Shujuan, Guo Ruibin. (2018) Electrochemical recognition for tryptophan enantiomers based on 3, 4, 9, 10-perylenetetracarboxylic acid–chitosan composite film. JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 22 (8): (2405-2412). [10.1007/s10008-018-3960-9] |
95. Lili Guo, Baozhu Yang, Datong Wu, Yongxin Tao, Yong Kong. (2018) Chiral Sensing Platform Based on the Self-Assemblies of Diphenylalanine and Oxalic Acid. ANALYTICAL CHEMISTRY, 90 (8): (5451–5458). [PMID:29595059] [10.1021/acs.analchem.8b00762] |
96. Niu Xiaohui, Mo Zunli, Gao Huhu, Wang Ruijuan, Li Zhenliang, Meng Shujuan, Guo Ruibin. (2018) Highly selective tryptophan enantiomers electrochemical chiral sensor based on poly-lysine and functionalized multi-walled carbon nanotubes. JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 22 (4): (973-981). [10.1007/s10008-017-3832-8] |
97. Yin Yu, Yongxin Tao, Baozhu Yang, Datong Wu, Yong Qin, Yong Kong. (2017) Smart Chiral Sensing Platform with Alterable Enantioselectivity. ANALYTICAL CHEMISTRY, 89 (23): (12930–12937). [PMID:29125282] [10.1021/acs.analchem.7b03783] |
98. Liqi Dong, Youshan Zhang, Xuemin Duan, Xiaofei Zhu, Hui Sun, Jingkun Xu. (2017) Chiral PEDOT-Based Enantioselective Electrode Modification Material for Chiral Electrochemical Sensing: Mechanism and Model of Chiral Recognition. ANALYTICAL CHEMISTRY, 89 (18): (9695–9702). [PMID:28809103] [10.1021/acs.analchem.7b01095] |
99. Xiao Qi, Lu Shuangyan, Huang Chusheng, Su Wei, Zhou Shuyu, Sheng Jiarong, Huang Shan. (2017) An electrochemical chiral sensor based on amino-functionalized graphene quantum dots/β-cyclodextrin modified glassy carbon electrode for enantioselective detection of tryptophan isomers. Journal of the Iranian Chemical Society, 14 (9): (1957-1970). [10.1007/s13738-017-1134-9] |
100. Lei Miao, Yang Yang, Yuanyuan Tu, Shudong Lin, Jiwen Hu, Zhuo Du, Min Zhang, Yue Li. (2017) Chiral resolution by polysulfone-based membranes prepared via mussel-inspired chemistry. REACTIVE & FUNCTIONAL POLYMERS, 115 (87). [10.1016/j.reactfunctpolym.2017.04.004] |
101. Xiaomei Lu, Jie Tang, Xinxin Dang, Xiaoli Jing, Kailin Xu, Hui Li, Bing Liang. (2017) Chiral recognition and determination of enantiomeric excess of chiral compounds by UV-visible-shortwave near infrared diffuse reflectance spectroscopy with chemometrics. RSC Advances, 7 (22): (13552-13560). [10.1039/C6RA24952C] |
102. Lian-Di Guo, Ya-Ya Song, Hai-Rong Yu, Li-Ting Pan, Chang-Jing Cheng. (2017) Novel smart chiral magnetic microspheres for enantioselective adsorption of tryptophan enantiomers. APPLIED SURFACE SCIENCE, 407 (82). [10.1016/j.apsusc.2017.02.121] |
103. Yongxin Tao, Xiaogang Gu, Baozhu Yang, Linhong Deng, Liping Bao, Yong Kong, Fuqiang Chu, Yong Qin. (2017) Electrochemical Enantioselective Recognition in a Highly Ordered Self-Assembly Framework. ANALYTICAL CHEMISTRY, 89 (3): (1900–1906). [PMID:28208293] [10.1021/acs.analchem.6b04377] |
104. Qi Xiao, Shuangyan Lu, Chusheng Huang, Wei Su, Shan Huang. (2016) Novel N-Doped Carbon Dots/β-Cyclodextrin Nanocomposites for Enantioselective Recognition of Tryptophan Enantiomers. SENSORS, 16 (11): (1874). [PMID:27834863] [10.3390/s16111874] |
105. Ma Liyun, Li Jing, Zhao Juan, Liao Han, Xu Li, Shi Zhi-guo. (2016) Penetrable silica microspheres for immobilization of bovine serum albumin and their application to the study of the interaction between imatinib mesylate and protein by frontal affinity chromatography. ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 408 (3): (805-814). [PMID:26573171] [10.1007/s00216-015-9163-7] |
106. Qing Wang, Yao Long, Lin Yao, Li Xu, Zhi-Guo Shi, Lanying Xu. (2016) Preparation, characterization and application of a reversed phase liquid chromatography/hydrophilic interaction chromatography mixed-mode C18-DTT stationary phase. TALANTA, 146 (442). [PMID:26695288] [10.1016/j.talanta.2015.09.009] |
107. Xiaogang Gu, Yongxin Tao, Yan Pan, Linhong Deng, Liping Bao, Yong Kong. (2015) DNA-Inspired Electrochemical Recognition of Tryptophan Isomers by Electrodeposited Chitosan and Sulfonated Chitosan. ANALYTICAL CHEMISTRY, 87 (18): (9481–9486). [PMID:26321420] [10.1021/acs.analchem.5b02683] |
108. Yongxin Tao, Xiaogang Gu, Linhong Deng, Yong Qin, Huaiguo Xue, Yong Kong. (2015) Chiral Recognition of d-Tryptophan by Confining High-Energy Water Molecules Inside the Cavity of Copper-Modified β-Cyclodextrin. Journal of Physical Chemistry C, 119 (15): (8183–8190). [10.1021/acs.jpcc.5b00927] |
109. Fang fei Liu, Ying Yu, Bi xia Lin, Xiao gang Hu, Yu juan Cao, Jian zhong Wu. (2014) Visualization of hormone binding proteins in vivo based on Mn-doped CdTe QDs. SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 131 (9). [PMID:24815196] [10.1016/j.saa.2014.04.066] |