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Bacterial Multidrug Exporters

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Cover of 'Bacterial Multidrug Exporters'

Table of Contents

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    Book Overview
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    Chapter 1 High-Resolution Crystallographic Analysis of AcrB Using Designed Ankyrin Repeat Proteins (DARPins)
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    Chapter 2 Crystallographic Analysis of Drug and Inhibitor-Binding Structure of RND-Type Multidrug Exporter AcrB in Physiologically Relevant Asymmetric Crystals
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    Chapter 3 Crystallographic Analysis of MATE-Type Multidrug Exporter with Its Inhibitors
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    Chapter 4 Crystallographic Analysis of the CusBA Heavy-Metal Efflux Complex of Escherichia coli
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    Chapter 5 Purification of AcrAB-TolC Multidrug Efflux Pump for Cryo-EM Analysis
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    Chapter 6 NMR Spectroscopy Approach to Study the Structure, Orientation, and Mechanism of the Multidrug Exporter EmrE
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    Chapter 7 Generation of Conformation-Specific Antibody Fragments for Crystallization of the Multidrug Resistance Transporter MdfA
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    Chapter 8 Biochemical Reconstitution and Characterization of Multicomponent Drug Efflux Transporters
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    Chapter 9 Covalently Linked Trimers of RND (Resistance-Nodulation-Division) Efflux Transporters to Study Their Mechanism of Action: Escherichia coli AcrB Multidrug Exporter as an Example
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    Chapter 10 Determining Ligand Path Through a Major Drug Transporter, AcrB, in Escherichia coli
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    Chapter 11 Molecular Modeling of Multidrug Properties of Resistance Nodulation Division (RND) Transporters
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    Chapter 12 A Transcriptomic Approach to Identify Novel Drug Efflux Pumps in Bacteria
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    Chapter 13 Regulation of the Expression of Bacterial Multidrug Exporters by Two-Component Signal Transduction Systems
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    Chapter 14 Study of the Expression of Bacterial Multidrug Efflux Pumps in Anaerobic Conditions
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    Chapter 15 Identification of a Staphylococcus aureus Efflux Pump Regulator Using a DNA–Protein Affinity Technique
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    Chapter 16 High-Throughput Flow Cytometry Screening of Multidrug Efflux Systems
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    Chapter 17 Single-Molecule Analysis of Membrane Transporter Activity by Means of a Microsystem
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    Chapter 18 Large-Scale Femtoliter Droplet Array for Single Cell Efflux Assay of Bacteria
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    Chapter 19 Reconstitution and Transport Analysis of Eukaryotic Transporters in the Post-Genomic Era
Attention for Chapter 2: Crystallographic Analysis of Drug and Inhibitor-Binding Structure of RND-Type Multidrug Exporter AcrB in Physiologically Relevant Asymmetric Crystals
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Chapter title
Crystallographic Analysis of Drug and Inhibitor-Binding Structure of RND-Type Multidrug Exporter AcrB in Physiologically Relevant Asymmetric Crystals
Chapter number 2
Book title
Bacterial Multidrug Exporters
Published in
Methods in molecular biology, January 2018
DOI 10.1007/978-1-4939-7454-2_2
Pubmed ID
Book ISBNs
978-1-4939-7452-8, 978-1-4939-7454-2
Authors

Ryosuke Nakashima, Keisuke Sakurai, Akihito Yamaguchi

Abstract

Xenobiotic extruding pumps have recently been known to be widely distributed in living organisms from mammalian to bacteria as a host-defense mechanism in cellular level. These pumps not only confer multidrug resistance of cancer cells and pathogenic bacteria but also cause hereditary diseases through the mutation. Our purposes are to elucidate the molecular structures and mechanisms of these xenobiotic exporters.We had succeeded to determine the crystal structure of bacterial major multidrug exporter AcrB at 3.5 Å resolution (Murakami et al., Nature 419:587-593, 2002) and elucidated the structural bases of substrate recognition that the pump recognize the places and thus act as a "membrane vacuum cleaner." After that we also determined the crystal structure of the drug-binding form of AcrB in space group C2 in which asymmetric unit contains structurally asymmetric homo-trimer of AcrB (Murakami et al., Nature 443:173-179, 2006; Nakashima et al., Nature 480:565-569, 2011; Nakashima et al., Nature 500:120-126, 2013). Analyses revealed the existence of a specific mechanism to recognize numerous substrates that the multisite binding is the base of multidrug recognition rather than induced-fit, and functional-rotation mechanism in which three monomers undergo a strictly coordinated sequential conformational change cycle of access, binding, and extrusion. Determination of physiological asymmetric AcrB structure was crucially important to understand these transport mechanisms.

Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 6 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 6 100%

Demographic breakdown

Readers by professional status Count As %
Researcher 2 33%
Student > Master 1 17%
Student > Bachelor 1 17%
Professor 1 17%
Unknown 1 17%
Readers by discipline Count As %
Chemistry 3 50%
Neuroscience 1 17%
Biochemistry, Genetics and Molecular Biology 1 17%
Unknown 1 17%