The lipopolysaccharide (LPS) produced by the Gram-negative bacterial pathogen 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 EptA homologue, PetL, and is transferred to galactose by a novel PEtn transferase that is unique to called PetG. Transcriptomic analyses indicated that 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 (Kdo), directly linked to lipid A in the glycoform A LPS. assays showed that the presence of a functional and , and therefore the presence of PEtn on lipid A and Kdo, was essential for resistance to the cationic, antimicrobial peptide cathelicidin-2. The importance of PEtn on Kdo 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 , , and We predict that many of these bacteria will require the addition of PEtn to Kdo for maximum protection against host antimicrobial peptides.
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http://dx.doi.org/10.1128/IAI.00557-17 | DOI Listing |
Molecules
January 2025
Department of Law, University of Bergamo, Via Moroni 255, 24127 Bergamo, Italy.
Background: The detection of explosives in crime scene investigations is critical for forensic science. This study explores the application of laser desorption (LD) ion mobility spectrometry (IMS) as a novel method for this purpose utilising a new IMS prototype developed by MaSaTECH.
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J Phys Chem Lett
January 2025
High Explosives Science and Technology, Los Alamos National Laboratory, Los Alamos, New Mexico 87545, United States.
The ability to predict the handling sensitivity of new organic energetic materials has been a longstanding goal. We report the synthesis and characterization of six new nitropicramide energetic materials with mixed functional groups that mimic known explosives such as nitroglycerin, erythritol tetranitrate (ETN), and pentaerythritol tetranitrate (PETN). The molecules have been studied theoretically using quantum molecular dynamics (QMD) simulations and density functional theory (DFT) calculations to identify the weakest bond in the reactants - the trigger-linkages - which control handling sensitivity, and to quantify their specific enthalpies of explosion.
View Article and Find Full Text PDFPathogens
November 2024
Smart Animal Bio Institute, Dankook University, Cheonan 31116, Republic of Korea.
The emergence of antibiotic-resistant () is a pressing threat in clinical settings. Colistin is currently a widely used treatment for multidrug-resistant , serving as the last line of defense. However, reports of colistin-resistant strains of have emerged, underscoring the urgent need to develop alternative medications to combat these serious pathogens.
View Article and Find Full Text PDFJ Asian Nat Prod Res
January 2025
State Key Laboratory of Bioactive Substance and Function of Natural Medicine, Institute of Materia Medica, Chinese Academy of Medical Sciences and Peking Union Medical College, Beijing 100050, China.
Compound FLZ has neuroprotective effects on Parkinson's disease (PD), while the precise mechanism remains unclear. In this study, we found that FLZ decreased PTEN/Akt activity in LPS-challenged BV2 cells. Neuroinflammatory responses suppressed by FLZ were abolished when PTEN or Src was inhibited.
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January 2025
York Plasma Institute, School of Physics, Engineering and Technology, University of York, York YO10 5DD, U.K.
Nanogold is an emerging material for enhancing surface-enhanced Raman scattering (SERS), which enables the detection of hazardous analytes at trace levels. This study presents a simple, single-step plasma synthesis method to control the size and yield of Au nanoparticles by using plasma-liquid redox chemistry. The pin-based argon plasma reduces the Au precursor in under 5 min, synthesizing Au spherical particles ranging from ∼20 nm at 0.
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