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1

Figgis, B. N. Ligand field theory and its applications. New York: Wiley-VCH, 2000.

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2

1941-, Navratil James D., and Walton Harold F. 1912-, eds. Ligand exchange chromatography. Boca Raton, Fla: CRC Press, 1988.

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3

Nugent, William A. Metal-ligandmultiple bonds: The chemistry of transition metal complexes containing oxo, nitrido, imido, alkylidene, or alkylidyne ligands. New York: Wiley, 1988.

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4

Nugent, William A. Metal-ligand multiple bonds: The chemistry of transition metal complexes containing oxo, nitrido, imido, alkylidene, or alkylidyne ligands. New York: Wiley, 1988.

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5

N, Khan Masood, and Findlay John W. A, eds. Ligand-binding assays: Development, validation, and implementation in the drug development arena. Hoboken, N.J: Wiley, 2010.

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6

M, Rami Reddy, and Erion Mark D, eds. Free energy calculations in rational drug design. New York: Kluwer Academic/Plenum Publishers, 2001.

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7

Dʹi͡achkov, P. N. (Pavel Nikolaevich) and Kaplan, I. G. (Ilʹi͡a Grigorʹevich), eds. Ėlektronnoe stroenie, struktura i prevrashchenii͡a geteroligandnykh molekul. Moskva: "Nauka", 1990.

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8

S, Braterman Paul, ed. Reactions of coordinated ligands. New York: Plenum Press, 1986.

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9

Aldrich-Wright, Janice. Metallointercalators: Synthesis and Techniques to Probe Their Interactions with Biomolecules. Vienna: Springer-Verlag/Wien, 2011.

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10

Gerloch, M., and R. C. Slade. Ligand-Field Parameters. Cambridge University Press, 2009.

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11

Gerloch, M. Magnetism and Ligand-Field Analysis. Cambridge University Press, 2009.

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12

Introduction to ligand fields. Malabar, Fla: R.E. Krieger Pub. Co., 1986.

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13

Ligand-binder assays: Labels and analytical strategies. New York: M. Dekker, 1985.

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14

Finet. Ligand Coupling Reactions with Heteroatomic Compounds. Elsevier Science & Technology Books, 1998.

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15

Finet. Ligand Coupling Reactions with Heteroatomic Compounds. Elsevier Science & Technology Books, 1998.

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16

Leslie, Frances. Receptor Localization: Ligand Autoradiography (Receptor Biochemistry and Methodology). Wiley-Liss, 1988.

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17

Ligand Exchange Chromatography. Taylor & Francis Group, 2017.

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18

Davankov, Vadim A. Ligand Exchange Chromatography. Taylor & Francis Group, 2018.

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19

Davankov, Vadim A. Ligand Exchange Chromatography. Taylor & Francis Group, 2018.

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20

Davankov, Vadim A. Ligand Exchange Chromatography. Taylor & Francis Group, 2018.

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21

Davankov, Vadim A. Ligand Exchange Chromatography. Taylor & Francis Group, 2018.

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22

Ozilgen, Mustafa, and Esra Sorguven Oner. Biothermodynamics: Principles and Applications. Taylor & Francis Group, 2016.

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23

Supplement to Theoretical method of ligand field theory: The V-coupling coefficients from SO(3) to the point group. Beijing, China: Science Press, 1990.

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24

(Editor), Sunchia-Chung, Li Xue Kui (Editor), and Zhao Jing Yu (Editor), eds. Supplement to Theoretical Method of Ligand Field Theory the V-Coupling Coefficients from So(3)to the Points Group. Science Pr, 1999.

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25

Khan, Masood N., and John W. Findlay. Ligand-Binding Assays: Development, Validation, and Implementation in the Drug Development Arena. Wiley & Sons, Incorporated, John, 2009.

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26

Gntlich, Philipp. Spin Crossover in Transition Metal Compounds II. Springer, 2004.

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27

The chemistry of macrocyclic ligand complexes. Cambridge [England]: Cambridge University Press, 1989.

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28

Engineering biosensors: Kinetics and design applications. San Diego, Calif: Academic, 2002.

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29

Khan, Masood N., and John W. Findlay. Ligand-Binding Assays: Development, Validation, and Implementation in the Drug Development Arena. Wiley & Sons, Incorporated, John, 2009.

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30

Findlay, John W. A., and Masood N. Khan. Ligand-Binding Assays: Development, Validation, and Implementation in the Drug Development Arena. Wiley & Sons, Incorporated, John, 2009.

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31

Biothermodynamics: Principles and Applications. Taylor & Francis Group, 2016.

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32

Ozilgen, Mustafa, and Esra Sorguven Oner. Biothermodynamics: Principles and Applications. Taylor & Francis Group, 2016.

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33

Ozilgen, Mustafa, and Esra Sorguven Oner. Biothermodynamics: Principles and Applications. Taylor & Francis Group, 2019.

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34

Ozilgen, Mustafa, and Esra Sorguven Oner. Biothermodynamics: Principles and Applications. Taylor & Francis Group, 2016.

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35

Ozilgen, Mustafa, and Esra Sorguven Oner. Biothermodynamics: Principles and Applications. Taylor & Francis Group, 2016.

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36

Biothermodynamics: Principles and Applications. CRC Press LLC, 2016.

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37

(Editor), N. Russo, Dennis R. Salahub (Editor), and Malgorzata Witko (Editor), eds. Metal-Ligand Interactions Molecular-, Nano-, Micro-systems in Complex Environments (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2003.

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38

(Editor), N. Russo, Dennis R. Salahub (Editor), and Malgorzata Witko (Editor), eds. Metal-Ligand Interactions Molecular-, Nano-, Micro-systems in Complex Environments (NATO Science Series II: Mathematics, Physics and Chemistry). Springer, 2003.

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39

Braterman, P. S. Reactions of Coordinated Ligands: Volume 2. Springer, 2011.

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40

Levin, A. A., and P. N. D'yachkov. Heteroligand Molecular Systems: Bonding, Shapes and Isomer Stabilities. Taylor & Francis Group, 2001.

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41

Levin, A. A., and P. N. D'yachkov. Heteroligand Molecular Systems: Bonding, Shapes and Isomer Stabilities. CRC, 2001.

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42

Levin, A. A., and P. N. D'yachkov. Heteroligand Molecular Systems: Bonding, Shapes and Isomer Stabilities. Taylor & Francis Group, 2001.

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43

Aldrich-Wright, Janice. Metallointercalators: Synthesis and Techniques to Probe Their Interactions with Biomolecules. Springer, 2011.

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44

Aldrich-Wright, Janice. Metallointercalators: Synthesis and Techniques to Probe Their Interactions with Biomolecules. Springer, 2014.

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45

Ren, Ke, and Ronald Dubner. The first crystal structure of an ionotropic glutamate receptor ligand-binding core. Edited by Paul Farquhar-Smith, Pierre Beaulieu, and Sian Jagger. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780198834359.003.0032.

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The known functional ionotropic glutamate receptors (iGluRs) are composed of three major subtypes: AMPA, NMDA, and kainate. In 1998, in the landmark paper discussed in this chapter, Armstrong et al. provided the first crystal structure of an iGluR-subunit ligand-binding core, the S1S2 region of the rat GluA2 ‘flop’ isoform. They solved its structure with X-ray crystallography from selenomethonine crystals. They also identified residues involved in kainate binding, analysed allosteric sites that regulate affinity and specificity of the agonist, and mapped potential subunit–subunit interaction sites. They also proposed that binding of different agonists may result in variable degrees of domain closure. This work has profound impact on the field and it has been importantly cited. Subsequently, numerous high-resolution crystal structures of ligand-binding domains of iGluRs in complex with ligands, both agonists and antagonists, have been solved.
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