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Bacterial Chemosensing

Overview of attention for book
Cover of 'Bacterial Chemosensing'

Table of Contents

  1. Altmetric Badge
    Book Overview
  2. Altmetric Badge
    Chapter 1 The Diversity of Bacterial Chemosensing
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    Chapter 2 Transmembrane Signal Transduction in Bacterial Chemosensing
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    Chapter 3 Two Spatial Chemotaxis Assays: The Nutrient-Depleted Chemotaxis Assay and the Agarose-Plug-Bridge Assay
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    Chapter 4 Quantification of Bacterial Chemotaxis Responses at the Mouths of Hydrogel Capillaries
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    Chapter 5 A Static Microfluidic Device for Investigating the Chemotaxis Response to Stable, Non-linear Gradients
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    Chapter 6 Visualizing Chemoattraction of Planktonic Cells to a Biofilm
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    Chapter 7 Labeling Bacterial Flagella with Fluorescent Dyes
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    Chapter 8 All-Codon Mutagenesis for Structure-Function Studies of Chemotaxis Signaling Proteins
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    Chapter 9 Mutational Analysis of Binding Protein–Chemoreceptor Interactions
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    Chapter 10 In Vitro Assay for Measuring Receptor-Kinase Activity in the Bacillus subtilis Chemotaxis Pathway
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    Chapter 11 FRET Analysis of the Chemotaxis Pathway Response
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    Chapter 12 Monitoring Two-Component Sensor Kinases with a Chemotaxis Signal Readout
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    Chapter 13 Analyzing Protein Domain Interactions in Chemoreceptors by In Vivo PEGylation
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    Chapter 14 Tuning Chemoreceptor Signaling by Positioning Aromatic Residues at the Lipid–Aqueous Interface
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    Chapter 15 Analyzing Chemoreceptor Interactions In Vivo with the Trifunctional Cross-Linker TMEA
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    Chapter 16 Use of Cryo-EM to Study the Structure of Chemoreceptor Arrays In Vivo
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    Chapter 17 Visualizing Chemoreceptor Arrays in Bacterial Minicells by Cryo-Electron Tomography and Subtomogram Analysis
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    Chapter 18 Bacterial Chemoreceptor Imaging at High Spatiotemporal Resolution Using Photoconvertible Fluorescent Proteins
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    Chapter 19 Imaging of Single Dye-Labeled Chemotaxis Proteins in Live Bacteria Using Electroporation
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    Chapter 20 Fluorescence Anisotropy to Detect In Vivo Stimulus-Induced Changes in Chemoreceptor Packing
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    Chapter 21 Chemotaxis to Atypical Chemoattractants by Soil Bacteria
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    Chapter 22 Screening Chemoreceptor–Ligand Interactions by High-Throughput Thermal-Shift Assays
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    Chapter 23 High-Throughput Screening to Identify Chemoreceptor Ligands
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    Chapter 24 Identification of Specific Ligands for Sensory Receptors by Small-Molecule Ligand Arrays and Surface Plasmon Resonance
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    Chapter 25 Fluorescence Measurement of Kinetics of CheY Autophosphorylation with Small Molecule Phosphodonors
  27. Altmetric Badge
    Chapter 26 Synthesis of a Stable Analog of the Phosphorylated Form of CheY: Phosphono-CheY
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    Chapter 27 Quantitative Modeling of Flagellar Motor-Mediated Adaptation
  29. Altmetric Badge
    Chapter 28 Molecular Modeling of Chemoreceptor:Ligand Interactions
  30. Altmetric Badge
    Chapter 29 Phylogenetic and Protein Sequence Analysis of Bacterial Chemoreceptors
Attention for Chapter 6: Visualizing Chemoattraction of Planktonic Cells to a Biofilm
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Chapter title
Visualizing Chemoattraction of Planktonic Cells to a Biofilm
Chapter number 6
Book title
Bacterial Chemosensing
Published in
Methods in molecular biology, January 2018
DOI 10.1007/978-1-4939-7577-8_6
Pubmed ID
Book ISBNs
978-1-4939-7576-1, 978-1-4939-7577-8
Authors

Sneha Jani

Abstract

Bacterial chemotaxis in response to continuous chemical gradients has been extensively studied at the individual cell and population levels using a variety of well-established in vitro methods (Englert et al., Microfluidic techniques for the analysis of bacterial chemotaxis. Methods Mol Biol 571:1-23, 2009). In nature, bacteria are surrounded by heterogeneous chemical gradients; hence, it is essential to understand chemotaxis behavior under such conditions. Here, we describe a setup that allows visualization of the chemotaxis response of motile cells to the complex microenvironment of a biofilm maintained under static conditions. The biofilm is separated from the motile cells by a semi-permeable membrane. Cells swimming toward the biofilm are captured on the membrane and imaged using confocal laser scanning microscopy (CLSM). Chemotaxis toward specific molecules produced by the biofilm, such as autoinducer-2 (AI-2), can be studied using this setup. This system can be adapted to study chemotaxis toward poly-species biofilms, or even mammalian cells.

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The data shown below were collected from the profiles of 2 X users who shared this research output. Click here to find out more about how the information was compiled.
Mendeley readers

Mendeley readers

The data shown below were compiled from readership statistics for 2 Mendeley readers of this research output. Click here to see the associated Mendeley record.

Geographical breakdown

Country Count As %
Unknown 2 100%

Demographic breakdown

Readers by professional status Count As %
Unspecified 1 50%
Student > Ph. D. Student 1 50%
Readers by discipline Count As %
Chemical Engineering 1 50%
Unspecified 1 50%
Attention Score in Context

Attention Score in Context

This research output has an Altmetric Attention Score of 1. This is our high-level measure of the quality and quantity of online attention that it has received. This Attention Score, as well as the ranking and number of research outputs shown below, was calculated when the research output was last mentioned on 13 February 2018.
All research outputs
#18,657,908
of 23,942,830 outputs
Outputs from Methods in molecular biology
#7,606
of 13,498 outputs
Outputs of similar age
#318,521
of 447,969 outputs
Outputs of similar age from Methods in molecular biology
#859
of 1,478 outputs
Altmetric has tracked 23,942,830 research outputs across all sources so far. This one is in the 19th percentile – i.e., 19% of other outputs scored the same or lower than it.
So far Altmetric has tracked 13,498 research outputs from this source. They receive a mean Attention Score of 3.5. This one is in the 38th percentile – i.e., 38% of its peers scored the same or lower than it.
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We're also able to compare this research output to 1,478 others from the same source and published within six weeks on either side of this one. This one is in the 36th percentile – i.e., 36% of its contemporaries scored the same or lower than it.