Advances in Microbial Physiology, Volume 150 in this important serial, highlights new advances in the field with this new volume including content by an international board of authors. Chapters in this new release include Organization of respiratory chains in the bacterial cell, Anaerobic methane oxidizing archaea, Dawn of the DedA: the structure and function of the DedA family of integral membrane proteins associated with bacterial viability and antimicrobial resistance, Nickel, an essential virulence determinant of Helicobacter pylori: trafficking pathways and their targeting by bismuth,…mehr
Advances in Microbial Physiology, Volume 150 in this important serial, highlights new advances in the field with this new volume including content by an international board of authors. Chapters in this new release include Organization of respiratory chains in the bacterial cell, Anaerobic methane oxidizing archaea, Dawn of the DedA: the structure and function of the DedA family of integral membrane proteins associated with bacterial viability and antimicrobial resistance, Nickel, an essential virulence determinant of Helicobacter pylori: trafficking pathways and their targeting by bismuth, Dissimilatory sulfur compounds oxidation in thermophilic and chemolithoautotrophic bacteria belonging to the Aquificales order, and much more.
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Autorenporträt
Professor Robert K Poole is Emeritus Professor of Microbiology at the University of Sheffield, UK. He was previously West Riding Professor of Microbiology at Sheffield and until 1996 held a Personal Chair in Microbiology at King's College London. During his long career, he has been awarded several research Fellowships, and taken sabbatical leave at the Australian National University, Kyoto University and Cornell University. His career-long interests have been in the areas of bacterial respiratory metabolism, metal-microbe interactions and bioactive small gas molecules. In particular, he has made notable contributions to bacterial terminal oxidases and resistance to nitric oxide with implications for bacterial pathogenesis. He co-discovered the flavohaemoglobin Hmp, now recognised as the preeminent mechanism of nitric oxide resistance in bacteria. He has served as Chairman of numerous research council grant committees, held research grants for over 40 years and published extensively (h-index, 2024 = 70). He served on several Institute review panels in the UK and overseas. He is a Fellow of the Royal Society of Chemistry and the Royal Society of Biology.
Inhaltsangabe
1. Nickel, an essential virulence determinant of Helicobacter pylori: trafficking pathways and their targeting by bismuth Sumith Kumar, Daniel Vinella and Hilde De Reuse 2. Neisseria gonorrhoeae physiology and pathogenesis Luke Green, Joby Cole, Ernesto Felix Diaz Parga and Jonathan G. Shaw 3. Defences of multidrug resistant pathogens against reactive nitrogen species produced in infected hosts Sandra M. Carvalho, Jordi Zamarreño Beas, Marco AM Videira and Ligia Saraiva 4. Metabolic potential of anaerobic methane oxidizing archaea for a broad spectrum of electron acceptors Martyna Glodowska, Cornelia Welte and Julia Kurth 5. How Streptomyces thrive: advancing our understanding of classical development and uncovering new behaviours Matthew Zambri and Michelle Williams and Marie Elliot
1. Nickel, an essential virulence determinant of Helicobacter pylori: trafficking pathways and their targeting by bismuth Sumith Kumar, Daniel Vinella and Hilde De Reuse 2. Neisseria gonorrhoeae physiology and pathogenesis Luke Green, Joby Cole, Ernesto Felix Diaz Parga and Jonathan G. Shaw 3. Defences of multidrug resistant pathogens against reactive nitrogen species produced in infected hosts Sandra M. Carvalho, Jordi Zamarreño Beas, Marco AM Videira and Ligia Saraiva 4. Metabolic potential of anaerobic methane oxidizing archaea for a broad spectrum of electron acceptors Martyna Glodowska, Cornelia Welte and Julia Kurth 5. How Streptomyces thrive: advancing our understanding of classical development and uncovering new behaviours Matthew Zambri and Michelle Williams and Marie Elliot
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