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Christopher G. Knight

University of Washington · US
Area of research
Cancer Research · Immunology and Allergy
Research interest
Research interests include Protease and Inhibitor Mechanisms, Cell Adhesion Molecules Research, Evolution and Genetic Dynamics, and Peptidase Inhibition and Analysis.
h-index
55
citations
14,019
works
206
NIH funding
primary concept
Chemistry
email

Recent publications

Multiplicity of type 6 secretion system toxins limits the evolution of resistance.
2025cited by 9position: contributordoi
Evolutionary potential of the <i>Escherichia coli</i> antimutator Δ <i>nudJ</i> is reduced via altered mutational spectrum
2025cited by 1position: contributordoi
Identifying rare spontaneous mutations through wildtype <i>E. coli</i> population sequencing
2025cited by 0position: contributordoi
Deciphering the Impact of Temperature on Pleiotropic Consequences of RNA Polymerase Mutations.
2025cited by 0position: contributordoi
Inflammation-like environments limit the loss of quorum sensing in &lt;i&gt;Pseudomonas aeruginosa&lt;/i&gt;.
2025cited by 0position: contributordoi
Antimutator and Mutational Spectrum Effects Can Combine to Reduce Evolutionary Potential in Escherichia coli ΔnudJ.
2025cited by 0position: contributordoi
Soil microbiomes show consistent and predictable responses to extreme events.
2024cited by 49position: contributordoi
Elevated mutation rates in multi-azole resistant Aspergillus fumigatus drive rapid evolution of antifungal resistance.
2024cited by 19position: contributordoi
Environmental and genetic influence on the rate and spectrum of spontaneous mutations in &lt;i&gt;Escherichia coli&lt;/i&gt;.
2024cited by 7position: contributordoi
Investigating oral microbiome dynamics in chronic kidney disease and post-transplantation in continuous culture.
2024cited by 4position: contributordoi
Collective peroxide detoxification determines microbial mutation rate plasticity in E. coli.
2024cited by 3position: contributordoi
Investigations of microbial adaptation to singular, binary, and fully formulated quaternary ammonium compounds.
2024cited by 2position: contributordoi
Multiplicity of Type 6 Secretion System toxins limits the evolution of resistance
2024cited by 2position: contributordoi
Novel Colorimetric and Light Scatter Methods to Identify and Manage Peritoneal Dialysis-Associated Peritonitis at the Point-of-Care.
2024cited by 1position: contributordoi
Adaptation at the Extremes of Life: Experimental Evolution with the Extremophile Archaeon Sulfolobus acidocaldarius.
2024cited by 0position: contributordoi
Mutators can drive the evolution of multi-resistance to antibiotics.
2023cited by 27position: contributordoi
Eco-evolutionary dynamics of experimental &lt;i&gt;Pseudomonas aeruginosa&lt;/i&gt; populations under oxidative stress.
2023cited by 3position: contributordoi
Distinct microbiome profiles in convergent wisdom tooth impactions.
2023cited by 2position: contributordoi
Transplantation impacts on the oral microbiome of kidney recipients and donors.
2023cited by 0position: contributordoi
Environmental and genetic influence on rate and spectrum of spontaneous mutations in <i>Escherichia coli</i>
2023cited by 0position: contributordoi
Working together to control mutation: how collective peroxide detoxification determines microbial mutation rate plasticity
2023cited by 0position: contributordoi
Horizontal gene transfer and ecological interactions jointly control microbiome stability.
2022cited by 46position: contributordoi
The lexicon of antimicrobial peptides: a complete set of arginine and tryptophan sequences.
2021cited by 63position: contributordoi
Cage and maternal effects on the bacterial communities of the murine gut.
2021cited by 36position: contributordoi
Harnessing rhizosphere microbiomes for drought-resilient crop production.
2020cited by 422position: contributordoi
Morphological Phylogenetics Evaluated Using Novel Evolutionary Simulations.
2020cited by 25position: contributordoi
Does the Microbiome Affect the Outcome of Renal Transplantation?
2020cited by 20position: contributordoi
Gut eosinophils and their impact on the mucus-resident microbiota.
2019cited by 33position: contributordoi
Measuring Microbial Mutation Rates with the Fluctuation Assay.
2019cited by 22position: contributordoi
Mutators drive evolution of multi-resistance to antibiotics
2019cited by 1position: contributordoi

Grants

No grants ingested yet.

Frequent collaborators

· 20 papers (2019–2025)Danna R. Gifford · University of Manchester8 papers (2019–2025)Andrew J. McBain · Institute of Immunology8 papers (2020–2025)Rowan Green · University of Oxford4 papers (2023–2025)Michael A Brockhurst · University of Liverpool4 papers (2023–2025)Rok Krašovec · University of Manchester4 papers (2023–2025)Mato Lagator · The University of Manchester3 papers (2025–2025)Simon C Lovell · University of Manchester3 papers (2025–2025)Joanne Konkel · Institute of Infection and Immunity3 papers (2020–2024)Deniz Ozbilek · The University of Manchester3 papers (2025–2025)Marek Basler · Google (United States)2 papers (2024–2025)Gurdeep Singh · University of Manchester2 papers (2019–2019)Pawel Paszek · Institute of Immunology2 papers (2023–2024)Andrew Brass · Medical Research Council2 papers (2019–2019)Ernesto Berríos-Caro · University of Manchester2 papers (2019–2023)Sheena Cruickshank · Institute of Infection and Immunity2 papers (2019–2019)Robert I. Griffiths · Bangor University2 papers (2020–2024)Thomas Willmott · University of Liverpool2 papers (2024–2024)F. T. de Vries · Leipzig University2 papers (2020–2024)Gavin J. Humphreys · Cardiff University2 papers (2024–2024)