Literature DB >> 28874446

Characterization of Two Novel Lipopolysaccharide Phosphoethanolamine Transferases in Pasteurella multocida and Their Role in Resistance to Cathelicidin-2.

Marina Harper1, Amy Wright2, Frank St Michael3, Jianjun Li3, Deanna Deveson Lucas2, Mark Ford4, Ben Adler2, Andrew D Cox3, John D Boyce2.   

Abstract

The lipopolysaccharide (LPS) produced by the Gram-negative bacterial pathogen Pasteurella multocida has phosphoethanolamine (PEtn) residues attached to lipid A, 3-deoxy-d-manno-octulosonic acid (Kdo), heptose, and galactose. In this report, we show that PEtn is transferred to lipid A by the P. multocida EptA homologue, PetL, and is transferred to galactose by a novel PEtn transferase that is unique to P. multocida called PetG. Transcriptomic analyses indicated that petL expression was positively regulated by the global regulator Fis and negatively regulated by an Hfq-dependent small RNA. Importantly, we have identified a novel PEtn transferase called PetK that is responsible for PEtn addition to the single Kdo molecule (Kdo1), directly linked to lipid A in the P. multocida glycoform A LPS. In vitro assays showed that the presence of a functional petL and petK, and therefore the presence of PEtn on lipid A and Kdo1, was essential for resistance to the cationic, antimicrobial peptide cathelicidin-2. The importance of PEtn on Kdo1 and the identification of the transferase responsible for this addition have not previously been shown. Phylogenetic analysis revealed that PetK is the first representative of a new family of predicted PEtn transferases. The PetK family consists of uncharacterized proteins from a range of Gram-negative bacteria that produce LPS glycoforms with only one Kdo molecule, including pathogenic species within the genera Vibrio, Bordetella, and Haemophilus We predict that many of these bacteria will require the addition of PEtn to Kdo for maximum protection against host antimicrobial peptides.
Copyright © 2017 American Society for Microbiology.

Entities:  

Keywords:  3-deoxy-d-manno-octulosonic acid; Pasteurella multocida; cathelicidin; cationic antimicrobial; lipopolysaccharide; phosphoethanolamine transferase

Mesh:

Substances:

Year:  2017        PMID: 28874446      PMCID: PMC5649011          DOI: 10.1128/IAI.00557-17

Source DB:  PubMed          Journal:  Infect Immun        ISSN: 0019-9567            Impact factor:   3.441


  51 in total

1.  Virulence of Pasteurella multocida recA mutants.

Authors:  M Cárdenas; A R Fernández de Henestrosa; S Campoy; A M Perez de Rozas; J Barbé; I Badiola; M Llagostera
Journal:  Vet Microbiol       Date:  2001-05-03       Impact factor: 3.293

2.  Development of a rapid multiplex PCR assay to genotype Pasteurella multocida strains by use of the lipopolysaccharide outer core biosynthesis locus.

Authors:  Marina Harper; Marietta John; Conny Turni; Mark Edmunds; Frank St Michael; Ben Adler; P J Blackall; Andrew D Cox; John D Boyce
Journal:  J Clin Microbiol       Date:  2014-11-26       Impact factor: 5.948

3.  Identification and molecular cloning of a unique hyaluronan synthase from Pasteurella multocida.

Authors:  P L DeAngelis; W Jing; R R Drake; A M Achyuthan
Journal:  J Biol Chem       Date:  1998-04-03       Impact factor: 5.157

4.  Unique modifications with phosphocholine and phosphoethanolamine define alternate antigenic forms of Neisseria gonorrhoeae type IV pili.

Authors:  Finn Terje Hegge; Paul G Hitchen; Finn Erik Aas; Heidi Kristiansen; Cecilia Løvold; Wolfgang Egge-Jacobsen; Maria Panico; Weng Yee Leong; Victoria Bull; Mumtaz Virji; Howard R Morris; Anne Dell; Michael Koomey
Journal:  Proc Natl Acad Sci U S A       Date:  2004-07-12       Impact factor: 11.205

5.  Molecular and structural basis of inner core lipopolysaccharide alterations in Escherichia coli: incorporation of glucuronic acid and phosphoethanolamine in the heptose region.

Authors:  Gracjana Klein; Sven Müller-Loennies; Buko Lindner; Natalia Kobylak; Helmut Brade; Satish Raina
Journal:  J Biol Chem       Date:  2013-01-31       Impact factor: 5.157

6.  The structure of the neisserial lipooligosaccharide phosphoethanolamine transferase A (LptA) required for resistance to polymyxin.

Authors:  Christopher Wanty; Anandhi Anandan; Susannah Piek; James Walshe; Jhuma Ganguly; Russell W Carlson; Keith A Stubbs; Charlene M Kahler; Alice Vrielink
Journal:  J Mol Biol       Date:  2013-06-28       Impact factor: 5.469

7.  A heptosyltransferase mutant of Pasteurella multocida produces a truncated lipopolysaccharide structure and is attenuated in virulence.

Authors:  Marina Harper; Andrew D Cox; Frank St Michael; Ian W Wilkie; John D Boyce; Ben Adler
Journal:  Infect Immun       Date:  2004-06       Impact factor: 3.441

Review 8.  Genomic-scale analysis of bacterial gene and protein expression in the host.

Authors:  John D Boyce; Paul A Cullen; Ben Adler
Journal:  Emerg Infect Dis       Date:  2004-08       Impact factor: 6.883

Review 9.  Gram-negative marine bacteria: structural features of lipopolysaccharides and their relevance for economically important diseases.

Authors:  Muhammad Ayaz Anwar; Sangdun Choi
Journal:  Mar Drugs       Date:  2014-04-30       Impact factor: 5.118

10.  Structure of the catalytic domain of the colistin resistance enzyme MCR-1.

Authors:  Vlatko Stojanoski; Banumathi Sankaran; B V Venkataram Prasad; Laurent Poirel; Patrice Nordmann; Timothy Palzkill
Journal:  BMC Biol       Date:  2016-09-21       Impact factor: 7.431

View more
  7 in total

Review 1.  Bacterial carbohydrate diversity - a Brave New World.

Authors:  Barbara Imperiali
Journal:  Curr Opin Chem Biol       Date:  2019-06-06       Impact factor: 8.822

2.  The Escherichia coli cellulose synthase subunit G (BcsG) is a Zn2+-dependent phosphoethanolamine transferase.

Authors:  Alexander C Anderson; Alysha J N Burnett; Lana Hiscock; Kenneth E Maly; Joel T Weadge
Journal:  J Biol Chem       Date:  2020-03-09       Impact factor: 5.157

3.  The lipopolysaccharide outer core transferase genes pcgD and hptE contribute differently to the virulence of Pasteurella multocida in ducks.

Authors:  Xinxin Zhao; Hui Shen; Sheng Liang; Dekang Zhu; Mingshu Wang; Renyong Jia; Shun Chen; Mafeng Liu; Qiao Yang; Ying Wu; Shaqiu Zhang; Juan Huang; Xumin Ou; Sai Mao; Qun Gao; Ling Zhang; Yunya Liu; Yanling Yu; Leichang Pan; Anchun Cheng
Journal:  Vet Res       Date:  2021-03-04       Impact factor: 3.683

4.  PamulDB: a comprehensive genomic resource for the study of human- and animal-pathogenic Pasteurella multocida.

Authors:  Tian Li; Xiao-Fei Xu; Hui-Hui Du; Li Li; Neng-Zhang Li; Ze-Yang Zhou; Yuan-Yi Peng
Journal:  Database (Oxford)       Date:  2019-01-01       Impact factor: 3.451

5.  Remodeling of Lipid A in Pseudomonas syringae pv. phaseolicola In Vitro.

Authors:  Tim Gerster; Michelle Wröbel; Casey E Hofstaedter; Dominik Schwudke; Robert K Ernst; Stefanie Ranf; Nicolas Gisch
Journal:  Int J Mol Sci       Date:  2022-02-11       Impact factor: 5.923

6.  Using genomics to understand inter- and intra- outbreak diversity of Pasteurella multocida isolates associated with fowl cholera in meat chickens.

Authors:  Lida Omaleki; Patrick J Blackall; Thom Cuddihy; Scott A Beatson; Brian M Forde; Conny Turni
Journal:  Microb Genom       Date:  2020-03

7.  Differential recognition of Haemophilus influenzae whole bacterial cells and isolated lipooligosaccharides by galactose-specific lectins.

Authors:  Ioanna Kalograiaki; Begoña Euba; María Del Carmen Fernández-Alonso; Davide Proverbio; Joseph W St Geme; Teodor Aastrup; Junkal Garmendia; F Javier Cañada; Dolores Solís
Journal:  Sci Rep       Date:  2018-11-02       Impact factor: 4.379

  7 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.