20 research outputs found
Poly(diallylmethylammonium) proton conducting membranes with high ionic conductivity at intermediate temperatures
High temperature proton exchange membrane fuel cells are being lately investigated because of their high energy efficiency, their superior heat/water management, CO tolerance, and electrode reaction kinetics. To further advance this technology, the polymer membrane portfolio and performance should be improved for intermediate or high temperature operation (>100 °C). In this work we present new poly(diallylmethylammonium) proton conducting membranes with high ionic conductivity at 120 °C. First, new protic ionic liquids, hereafter called DAMAH+X−, were synthesized leading to diallylmethylammonium monomers with different counter-anions. By radical cyclopolymerization through thermal and photoinitiation mechanisms, self-standing protic polymeric membranes of poly(diallylmethylammonium X−) were obtained. Membranes showed good thermal stability (>250 °C) and mechanical properties without the need of additives such as (protic) ionic liquids, solvents or inorganic charges. Great attention was paid to understand the effect of the different counter-anions on the membrane properties. As a general trend, fluorinated anions coming from strong acids confer high ionic conductivity and allow to reduce the hygroscopic properties on the protic polymeric membranes. Proton structural and dynamical stability at different temperatures and humidification conditions were investigated by Neutron Scattering (QENS and NR). The optimized poly(diallylmethylammonium X−) shows similar ionic conductivity values than Nafion 212 under varying relative humidity conditions at 80 °C. Furthermore, it shows a high ionic conductivity value of 1.9 × 10−3 S cm−1 at 120 °C under dry conditions
In Vivo Water Dynamics in Shewanella oneidensis Bacteria at High Pressure
Abstract: Following observations of survival of microbes and other life forms in deep subsurface environments it is necessary to understand their biological functioning under high pressure conditions. Key aspects of biochemical reactions and transport processes within cells are determined by the intracellular water dynamics. We studied water diffusion and rotational relaxation in live Shewanella oneidensis bacteria at pressures up to 500 MPa using quasi-elastic neutron scattering (QENS). The intracellular diffusion exhibits a significantly greater slowdown (by −10–30%) and an increase in rotational relaxation times (+10–40%) compared with water dynamics in the aqueous solutions used to resuspend the bacterial samples. Those results indicate both a pressure-induced viscosity increase and slowdown in ionic/macromolecular transport properties within the cells affecting the rates of metabolic and other biological processes. Our new data support emerging models for intracellular organisation with nanoscale water channels threading between macromolecular regions within a dynamically organized structure rather than a homogenous gel-like cytoplasm
Disentangling water, ion and polymer dynamics in an anion exchange membrane
Semipermeable polymeric anion exchange membranes are essential for separation, filtration and energy conversion technologies including reverse electrodialysis systems that produce energy from salinity gradients, fuel cells to generate electrical power from the electrochemical reaction between hydrogen and oxygen, and water electrolyser systems that provide H2 fuel. Anion exchange membrane fuel cells and anion exchange membrane water electrolysers rely on the membrane to transport OH− ions between the cathode and anode in a process that involves cooperative interactions with H2O molecules and polymer dynamics. Understanding and controlling the interactions between the relaxation and diffusional processes pose a main scientific and critical membrane design challenge. Here quasi-elastic neutron scattering is applied over a wide range of timescales (100–103 ps) to disentangle the water, polymer relaxation and OH− diffusional dynamics in commercially available anion exchange membranes (Fumatech FAD-55) designed for selective anion transport across different technology platforms, using the concept of serial decoupling of relaxation and diffusional processes to analyse the data. Preliminary data are also reported for a laboratory-prepared anion exchange membrane especially designed for fuel cell applications
Acute Delta Hepatitis in Italy spanning three decades (1991–2019): Evidence for the effectiveness of the hepatitis B vaccination campaign
Updated incidence data of acute Delta virus hepatitis (HDV) are lacking worldwide. Our aim was to evaluate incidence of and risk factors for acute HDV in Italy after the introduction of the compulsory vaccination against hepatitis B virus (HBV) in 1991. Data were obtained from the National Surveillance System of acute viral hepatitis (SEIEVA). Independent predictors of HDV were assessed by logistic-regression analysis. The incidence of acute HDV per 1-million population declined from 3.2 cases in 1987 to 0.04 in 2019, parallel to that of acute HBV per 100,000 from 10.0 to 0.39 cases during the same period. The median age of cases increased from 27 years in the decade 1991-1999 to 44 years in the decade 2010-2019 (p < .001). Over the same period, the male/female ratio decreased from 3.8 to 2.1, the proportion of coinfections increased from 55% to 75% (p = .003) and that of HBsAg positive acute hepatitis tested for by IgM anti-HDV linearly decreased from 50.1% to 34.1% (p < .001). People born abroad accounted for 24.6% of cases in 2004-2010 and 32.1% in 2011-2019. In the period 2010-2019, risky sexual behaviour (O.R. 4.2; 95%CI: 1.4-12.8) was the sole independent predictor of acute HDV; conversely intravenous drug use was no longer associated (O.R. 1.25; 95%CI: 0.15-10.22) with this. In conclusion, HBV vaccination was an effective measure to control acute HDV. Intravenous drug use is no longer an efficient mode of HDV spread. Testing for IgM-anti HDV is a grey area requiring alert. Acute HDV in foreigners should be monitored in the years to come
Dihedral Angle Calculations to Elucidate the Folding of Peptides through Its Main Mechanical Forces
This
study reports a general method to calculate dihedral angles
(φ and ψ) of a given amino acid sequence, focusing on
potential energy and torque moment concepts. By defining these physical
measures in relation to the chemical interactions that occur on each
single amino acid residue within a peptide, we analyze the folding
process as the result of main mechanical forces (MMFs) exerted in
the specific amino acid chain of interest. As a proof of concept,
Leu-enkephalin was initially used as a model peptide to carry out
the theoretical study. Our data show agreement between calculated
Leu-enkephalin backbone dihedral angles and the corresponding experimentally
determined X-ray values. Hence, we used calcitonin to validate our
MMF-based method on a larger peptide, i.e., 32 amino acid residues
forming an α-helix. Through a similar approach (although simplified
with regard to electrostatic interactions), the calculations for calcitonin
also demonstrate a good agreement with experimental values. This study
offers new opportunities to analyze peptides’ amino acid sequences
and to help in the prediction of how they must fold, assisting in
the development of new computational techniques in the field
Neutron diffraction studies of the interaction between amphotericin B and lipid-sterol model membranes
Over the last 50 years or so, amphotericin has been widely employed in treating life-threatening systemic fungal infections. Its usefulness in the clinic, however, has always been circumscribed by its dose-limiting side-effects, and it is also now compromised by an increasing incidence of pathogen resistance. Combating these problems through development of new anti-fungal agents requires detailed knowledge of the drug's molecular mechanism, but unfortunately this is far from clear. Neutron diffraction studies of the drug's incorporation within lipid-sterol membranes have here been performed to shed light on this problem. The drug is shown to disturb the structures of both fungal and mammalian membranes, and co-localises with the membrane sterols in a manner consistent with trans-membrane pore formation. The differences seen in the membrane lipid ordering and in the distributions of the drug-ergosterol and drug-cholesterol complexes within the membranes are consistent with the drug's selectivity for fungal vs. human cells
Revealing the Hidden Details of Nanostructure in a Pharmaceutical Cream
Creams are multi-component semi-solid emulsions that find widespread utility across a wide range of pharmaceutical, cosmetic, and personal care products, and they also feature prominently in veterinary preparations and processed foodstuffs. The internal architectures of these systems, however, have to date been inferred largely through macroscopic and/or indirect experimental observations and so they are not well-characterized at the molecular level. Moreover, while their long-term stability and shelf-life, and their aesthetics and functional utility are critically dependent upon their molecular structure, there is no real understanding yet of the structural mechanisms that underlie the potential destabilizing effects of additives like drugs, anti-oxidants or preservatives, and no structure-based rationale to guide product formulation. In the research reported here we sought to address these deficiencies, making particular use of small-angle neutron scattering and exploiting the device of H/D contrast variation, with complementary studies also performed using bright-field and polarised light microscopy, small-angle and wide-angle X-ray scattering, and steady-state shear rheology measurements. Through the convolved findings from these studies we have secured a finely detailed picture of the molecular structure of creams based on Aqueous Cream BP, and our findings reveal that the structure is quite different from the generic picture of cream structure that is widely accepted and reproduced in textbooks
The Impact of Lipid Digestion on the Dynamic and Structural Properties of Micelles
Self‐assembled, lipid‐based micelles, such as those formed by the short‐chain phosphocholine, dihexanoylphosphatidylcholine (2C6PC), are degraded by the pancreatic enzyme, phospholipase A2 (PLA2). Degradation yields 1‐hexanoyl‐lysophosphocholine (C6LYSO) and hexanoic acid (C6FA) products. However, little is known about the behavior of these products during and after the degradation of 2C6PC. In this work, a combination of static and time‐resolved small angle neutron scattering, as well as all‐atom molecular dynamics simulations, is used to characterize the structure of 2C6PC micelles. In doing so a detailed understanding of the substrate and product aggregation behavior before, during and after degradation is gained. Consequently, the formation of mixed micelles containing 2C6PC, C6LYSO and C6FA is shown at every stage of the degradation process, as well as the formation of mixed C6LYSO/C6FA micelles after degradation is complete. The use of atomistic molecular dynamics has allowed us to characterize the structure of 2C6PC, 2C6PC/C6LYSO/C6FA, and C6LYSO/C6FA micelles throughout the degradation process, showing the localization of the different molecular species within the aggregates. In addition, the hydration of the 2C6PC, C6LYSO, and C6FA species both during micellization and as monomers in aqueous solution is documented to reveal the processes driving their micellization
Small angle neutron scattering and neutron reflectivity studies of the effects of formulating amphotericin B with cholesteryl sulphate on the drug’s interactions with phospholipid and phospholipid-sterol membranes.
Langmuir
surface pressure, small-angle neutron scattering (SANS),
and neutron reflectivity (NR) studies have been performed to determine
how formulation of the antifungal drug amphotericin B (AmB), with
sodium cholesteryl sulfate (SCS)as in Amphotecaffects
its interactions with ergosterol-containing (model fungal cell) and
cholesterol-containing (model mammalian cell) membranes. The effects
of mixing AmB in 1:1 molar ratio with cholesteryl sulfate (yielding
AmB-SCS micelles) are compared against those of free AmB, using monolayers
and bilayers formed from palmitoyloleoylphosphatidylcholine
(POPC) in the absence and presence of 30 mol % ergosterol or cholesterol,
in all cases employing a 1:0.05 molar ratio of lipid:AmB. Analyses
of the (bilayer) SANS and (monolayer) NR data indicate that the equilibrium
changes in membrane structure induced in sterol-free and sterol-containing
membranes are the same for free AmB and AmB-SCS. Stopped-flow SANS
experiments, however, reveal that the structural changes to vesicle
membranes occur far more rapidly following exposure to AmB-SCS vs
free drug, with the kinetics of these changes varying with membrane
composition. With POPC vesicles, the structural changes induced by
AmB-SCS become apparent only after several minutes, and equilibrium
is reached after ∼30 min. The corresponding onset of changes
in POPC-ergosterol and POPC-cholesterol vesicles, however, occurs
within ∼5 s, with equilibrium reached after 10 and 120 s, respectively.
The rate of insertion of AmB into POPC-sterol membranes is thus increased
through formulation as AmB-SCS. Moreover, the differences in monolayer
surface pressure and SANS structure-change equilibration times suggest
significant rearrangement of AmB within these membranes following
insertion. The reduced times to equilibrium for the POPC-ergosterol
vs POPC-cholesterol systems are consistent with the known differences
in affinity of AmB for these two sterols, and the reduced time to
equilibrium for AmB-SCS interaction with POPC-ergosterol membranes
vs that for free AmB is consistent with the reduced host toxicity
of Amphotec