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1.
Molecules ; 29(9)2024 Apr 26.
Article En | MEDLINE | ID: mdl-38731483

Rhamnolipids (RLs) are widely used biosurfactants produced mainly by Pseudomonas aeruginosa and Burkholderia spp. in the form of mixtures of diverse congeners. The global transcriptional regulator gene irrE from radiation-tolerant extremophiles has been widely used as a stress-resistant element to construct robust producer strains and improve their production performance. A PrhlA-irrE cassette was constructed to express irrE genes in the Pseudomonas aeruginosa YM4 of the rhamnolipids producer strain. We found that the expression of irrE of Deinococcus radiodurans in the YM4 strain not only enhanced rhamnolipid production and the strain's tolerance to environmental stresses, but also changed the composition of the rhamnolipid products. The synthesized rhamnolipids reached a maximum titer of 26 g/L, about 17.9% higher than the original, at 48 h. The rhamnolipid production of the recombinant strain was determined to be mono-rhamnolipids congener Rha-C10-C12, accounting for 94.1% of total products. The critical micelle concentration (CMC) value of the Rha-C10-C12 products was 62.5 mg/L and the air-water surface tension decreased to 25.5 mN/m. The Rha-C10-C12 products showed better emulsifying activity on diesel oil than the original products. This is the first report on the efficient production of the rare mono-rhamnolipids congener Rha-C10-C12 and the first report that the global regulator irrE can change the components of rhamnolipid products in Pseudomonas aeruginosa.


Glycolipids , Pseudomonas aeruginosa , Pseudomonas aeruginosa/genetics , Pseudomonas aeruginosa/metabolism , Glycolipids/biosynthesis , Glycolipids/metabolism , Glycolipids/chemistry , Bacterial Proteins/genetics , Bacterial Proteins/metabolism , Gene Expression Regulation, Bacterial , Deinococcus/genetics , Deinococcus/metabolism , Surface-Active Agents/metabolism , Surface-Active Agents/chemistry , Transcription Factors/genetics , Transcription Factors/metabolism
2.
Eur J Med Chem ; 271: 116449, 2024 May 05.
Article En | MEDLINE | ID: mdl-38691893

Methicillin-resistant Staphylococcus aureus (MRSA) is a widespread pathogen causing clinical infections and is multi-resistant to many antibiotics, making it urgent need to develop novel antibacterials to combat MRSA. Herein, we designed and prepared a series of novel osthole amphiphiles 6a-6ad by mimicking the structures and function of antimicrobial peptides (AMPs). Antibacterial assays showed that osthole amphiphile 6aa strongly inhibited S. aureus and 10 clinical MRSA isolates with MIC values of 1-2 µg/mL, comparable to that of the commercial antibiotic vancomycin. Additionally, 6aa had the advantages of rapid bacteria killing without readily developing drug resistance, low toxicity, good membrane selectivity, and good plasma stability. Mechanistic studies indicated that 6aa possesses good membrane-targeting ability to bind to phosphatidylglycerol (PG) on the bacterial cell membranes, thereby disrupting the cell membranes and causing an increase in intracellular ROS as well as leakage of proteins and DNA, and accelerating bacterial death. Notably, in vivo activity results revealed that 6aa exhibits strong anti-MRSA efficacy than vancomycin as well as a substantial reduction in MRSA-induced proinflammatory cytokines, including TNF-α and IL-6. Given the impressive in vitro and in vivo anti-MRSA efficacy of 6aa, which makes it a potential candidate against MRSA infections.


Anti-Bacterial Agents , Coumarins , Methicillin-Resistant Staphylococcus aureus , Microbial Sensitivity Tests , Methicillin-Resistant Staphylococcus aureus/drug effects , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/chemical synthesis , Coumarins/chemistry , Coumarins/pharmacology , Coumarins/chemical synthesis , Animals , Cell Membrane/drug effects , Cell Membrane/metabolism , Molecular Structure , Structure-Activity Relationship , Humans , Dose-Response Relationship, Drug , Mice , Surface-Active Agents/pharmacology , Surface-Active Agents/chemistry , Surface-Active Agents/chemical synthesis
3.
Food Res Int ; 187: 114421, 2024 Jul.
Article En | MEDLINE | ID: mdl-38763671

This study focused on the protein-stabilised triglyceride (TG)/water interfaces and oil-in-water emulsions, and explored the influence of varying molar ratios of bile salts (BSs) and phospholipids (PLs) on the intestinal lipolysis of TGs. The presence of these two major groups of biosurfactants delivered with human bile to the physiological environment of intestinal digestion was replicated in our experiments by using mixtures of individual BSs and PLs under in vitro small intestinal lipolysis conditions. Conducted initially, retrospective analysis of available scientific literature revealed that an average molar ratio of 9:4 for BSs to PLs (BS/PL) can be considered physiological in the postprandial adult human small intestine. Our experimental data showed that combining BSs and PLs synergistically enhanced interfacial activity, substantially reducing oil-water interfacial tension (IFT) during interfacial lipolysis experiments with pancreatic lipase, especially at the BS/PL-9:4 ratio. Other BS/PL molar proportions (BS/PL-6.5:6.5 and BS/PL-4:9) and an equimolar amount of BSs (BS-13) followed in IFT reduction efficiency, while using PLs alone as biosurfactants was the least efficient. In the following emulsion lipolysis experiments, BS/PL-9:4 outperformed other BS/PL mixtures in terms of enhancing the TG digestion extent. The degree of TG conversion and the desorption efficiency of interfacial material post-lipolysis correlated directly with the BS/PL ratio, decreasing as the PL proportion increased. In conclusion, this study highlights the crucial role of biliary PLs, alongside BSs, in replicating the physiological function of bile in intestinal lipolysis of emulsified TGs. Our results showed different contributions of PLs and BSs to lipolysis, strongly suggesting that any future in vitro studies aiming to simulate the human digestion conditions should take into account the impact of biliary PLs - not just BSs - to accurately mimic the physiological role of bile in intestinal lipolysis. This is particularly crucial given the fact that existing in vitro digestion protocols typically focus solely on applying specific concentrations and/or compositions of BSs to simulate the action of human bile during intestinal digestion, while overlooking the presence and concentration of biliary PLs under physiological gut conditions.


Bile Acids and Salts , Digestion , Emulsions , Lipolysis , Phospholipids , Triglycerides , Emulsions/chemistry , Triglycerides/metabolism , Triglycerides/chemistry , Bile Acids and Salts/metabolism , Humans , Phospholipids/chemistry , Phospholipids/metabolism , Digestion/physiology , Lipase/metabolism , Intestine, Small/metabolism , Surface-Active Agents/chemistry
4.
Food Res Int ; 187: 114430, 2024 Jul.
Article En | MEDLINE | ID: mdl-38763679

Oleogels have been explored as fat substitutes due to their healthier composition compared to trans and saturated fats, also presenting interesting technological perspectives. The aim of this study was to investigate the compositional perspective of multicomponent oleogels. Structuring ability of lecithin (LEC) (20 or 90 wt% of phosphatidylcholine - PC) combined with glycerol monostearate (GMS), sorbitan monostearate (SMS) or sucrose monostearate (SAC) in sunflower oil was evaluated from oleogels properties. The thermal and rheological properties, microstructure and stability of the oleogels were affected by the difference in the chemical composition of LEC and the ratio between LEC and different surfactants. Interestingly, low-phosphatidylcholine LEC (L20) performed better, although systems formed with reduced amounts of LEC tended to be softer (LEC-GMS) and present high oil holding capacity (LEC-SMS). The mixtures of LEC and monostearate-based surfactants showed different behaviors, depending on the surfactant polar head. In LEC-GMS systems, LEC hindered the self-assembly of GMS in sunflower oil, compromising mechanical properties and increasing oil release. When combined with SMS, LEC acted as a crystal habit modifier of SMS, forming a more homogeneous microstructure and producing stronger oleogels with greater oil binding capacity. However, above the threshold concentration, LEC prevented SMS self-assembly, resulting in a weaker gel. A positive interaction was found in LEC-SAC formulations in specific ratios, since SAC cannot act as a single oleogelator. Results show the impact of solubility balance played by LEC and fatty-acid derivatives surfactant when combined and used as oleogelators. This knowledge can contribute to a rational perspective in the preparation and modulation of the properties of edible oleogels.


Lecithins , Organic Chemicals , Rheology , Sunflower Oil , Surface-Active Agents , Lecithins/chemistry , Organic Chemicals/chemistry , Sunflower Oil/chemistry , Surface-Active Agents/chemistry , Hexoses/chemistry , Fat Substitutes/chemistry , Glycerides/chemistry , Sucrose/chemistry
5.
J Hazard Mater ; 471: 134437, 2024 Jun 05.
Article En | MEDLINE | ID: mdl-38691934

Crude oil is a hazardous pollutant that poses significant and lasting harm to human health and ecosystems. In this study, Moesziomyces aphidis XM01, a biosurfactant mannosylerythritol lipids (MELs)-producing yeast, was utilized for crude oil degradation. Unlike most microorganisms relying on cytochrome P450, XM01 employed two extracellular unspecific peroxygenases, MaUPO.1 and MaUPO.2, with preference for polycyclic aromatic hydrocarbons (PAHs) and n-alkanes respectively, thus facilitating efficient crude oil degradation. The MELs produced by XM01 exhibited a significant emulsification activity of 65.9% for crude oil and were consequently supplemented in an "exogenous MELs addition" strategy to boost crude oil degradation, resulting in an optimal degradation ratio of 72.3%. Furthermore, a new and simple "pre-MELs production" strategy was implemented, achieving a maximum degradation ratio of 95.9%. During this process, the synergistic up-regulation of MaUPO.1, MaUPO.1 and the key MELs synthesis genes contributed to the efficient degradation of crude oil. Additionally, the phylogenetic and geographic distribution analysis of MaUPO.1 and MaUPO.1 revealed their wide occurrence among fungi in Basidiomycota and Ascomycota, with high transcription levels across global ocean, highlighting their important role in biodegradation of crude oil. In conclusion, M. aphidis XM01 emerges as a novel yeast for efficient and eco-friendly crude oil degradation.


Biodegradation, Environmental , Glycolipids , Mixed Function Oxygenases , Petroleum , Surface-Active Agents , Petroleum/metabolism , Surface-Active Agents/metabolism , Surface-Active Agents/chemistry , Glycolipids/metabolism , Mixed Function Oxygenases/metabolism , Mixed Function Oxygenases/genetics , Polycyclic Aromatic Hydrocarbons/metabolism , Polycyclic Aromatic Hydrocarbons/chemistry , Alkanes/metabolism
6.
Sci Rep ; 14(1): 11408, 2024 05 18.
Article En | MEDLINE | ID: mdl-38762671

In the enhanced oil recovery (EOR) process, interfacial tension (IFT) has become a crucial factor because of its impact on the recovery of residual oil. The use of surfactants and biosurfactants can reduce IFT and enhance oil recovery by decreasing it. Asphaltene in crude oil has the structural ability to act as a surface-active material. In microbial-enhanced oil recovery (MEOR), biosurfactant production, even in small amounts, is a significant mechanism that reduces IFT. This study aimed to investigate fluid/fluid interaction by combining low biosurfactant values and low-salinity water using NaCl, MgCl2, and CaCl2 salts at concentrations of 0, 1000, and 5000 ppm, along with Geobacillus stearothermophilus. By evaluating the IFT, this study investigated different percentages of 0, 1, and 5 wt.% of varying asphaltene with aqueous bulk containing low-salinity water and its combination with bacteria. The results indicated G. Stearothermophilus led to the formation of biosurfactants, resulting in a reduction in IFT for both acidic and basic asphaltene. Moreover, the interaction between asphaltene and G. Stearothermophilus with higher asphaltene percentages showed a decrease in IFT under both acidic and basic conditions. Additionally, the study found that the interaction between acidic asphaltene and G. stearothermophilus, in the presence of CaCl2, NaCl, and MgCl2 salts, resulted in a higher formation of biosurfactants and intrinsic surfactants at the interface of the two phases, in contrast to the interaction involving basic asphaltene. These findings emphasize the dependence of the interactions between asphaltene and G. Stearothermophilus, salt, and bacteria on the specific type and concentration of asphaltene.


Salinity , Surface Tension , Surface-Active Agents , Surface-Active Agents/chemistry , Surface-Active Agents/pharmacology , Water/chemistry , Geobacillus stearothermophilus , Sodium Chloride/chemistry , Petroleum , Calcium Chloride/chemistry
7.
Int J Pharm Compd ; 28(3): 194-204, 2024.
Article En | MEDLINE | ID: mdl-38768501

Ticagrelor is used to inhibit acute coronary syndrome, but its poor solubility and low bioavailability limit its in-vivo efficacy. The purpose of this study was to manufacture an optimized ticagrelor-loaded self-microemulsifying drug-delivery system in the form of tablets to enhance the solubility and dissolution of that drug. A preliminary study was conducted to determine the extent of turbidity of oils for this study, and a pseudoternaryphase diagram was used to identify the region of formation of microemulsion with 3 ratios (1:1,1:2, and 1:3). The solubility of ticagrelor was determined with the selected oil and a surfactant-and-cosurfactant mixture. A simplex lattice mixture design was used to compound the microemulsion. The microemulsion was converted to granules by the use of an adsorbent (aerosol) after a precipitation study. After characterization, the resultant granules were compressed into tablets for an in-vitro release study. The optimized formulation was subjected to various characterization procedures to determine the zeta potential, particle size, and surface morphology. The solubility of the drug was found to have increased manyfold in all formulations, and the optimized formulation was found to be 221.37 mg/mL. With respect to the ticagrelor tablets, aerosol up to 30% was needed as an adsorbent in the self-microemulsifying drug-delivery system. The compression of the ticagrelor granules was satisfactory for tablet formation. In all formulations, the release of the active drug was more than 80% within 30 minutes of dissolution time. The optimized icagrelorloaded self-microemulsifying drug-delivery system formulation consisted of medium-chain triglyceride oil (47.88.0%), surfactant (28.25%), and cosurfactant (23.85%), which significantly improved the dissolution of ticagrelor. The results of analysis via scanning electron microscopy revealed that the surface and size of the drug and the zeta potential were also satisfactory and suggested that the optimized ticagrelor-loaded self-microemulsifying drug-delivery system described in this report could be successfully used as an efficient method for achieving enhanced dissolution of ticagrelor.


Drug Compounding , Emulsions , Solubility , Tablets , Ticagrelor , Ticagrelor/administration & dosage , Ticagrelor/chemistry , Particle Size , Surface-Active Agents/chemistry , Drug Liberation , Drug Delivery Systems , Chemistry, Pharmaceutical
8.
J Microencapsul ; 41(4): 296-311, 2024 Jun.
Article En | MEDLINE | ID: mdl-38709162

AIMS: To construct the microemulsion delivery system (ME) loading ATSO and NA and study their physicochemical characteristics to enhance their stability and water solubility. METHODS: By plotting ternary phase diagrams, the composition and proportions of the MEs were determined. The physicochemical characteristics and stability of MEs were evaluated by mean diameter, polydispersity index (PDI), pH, electrical conductivity, transmission electron microscopy (TEM), rheological behaviour measurement, and phase inversion temperature (PIT). RESULTS: The MEs was composed with EL-40 as a surfactant and specifically with the addition of ethanol as a cosurfactant in NA-loaded ME. The mean diameters of ATSO-loaded ME and NA-loaded ME were 39.65 ± 0.24 nm and 32.90 ± 2.65 nm, and PDI were 0.49 ± 0.01 and 0.28 ± 0.14, respectively. The TEM confirmed the spherical and smooth morphology of MEs. The rheological results indicated that MEs are dilatant fluids with the advantages of low viscosity, high fluidity, and tolerance to temperature fluctuations. The mean diameter and PDI of MEs showed no significant change after storage at 25 °C for 28 days and centrifugation. CONCLUSION: The prepared microemulsions could expand the application prospects of ATSO and NA products in cosmetics, medicine, foods and other fields.


Emulsions , Plant Oils , Rheology , Emulsions/chemistry , Plant Oils/chemistry , Acer/chemistry , Fatty Acids/chemistry , Seeds/chemistry , Surface-Active Agents/chemistry , Drug Stability , Viscosity
9.
Chemosphere ; 358: 142171, 2024 Jun.
Article En | MEDLINE | ID: mdl-38714247

Marine oil spills directly cause polycyclic aromatic hydrocarbons (PAHs) pollution and affect marine organisms due to their toxic property. Chemical and bio-based dispersants composed of surfactants and solvents are considered effective oil spill-treating agents. Dispersants enhance oil biodegradation in the marine environment by rapidly increasing their solubility in the water column. However, the effect of dispersants, especially surfactants, on PAHs degradation by enzymes produced by microorganisms has not been studied at the molecular level. The role of the cytochrome P450 (CYP) enzyme in converting contaminants into reactive metabolites during the biodegradation process has been evidenced, but the activity in the presence of surfactants is still ambiguous. Thus, this study focused on the evaluation of the impact of chemical and bio-surfactants (i.e., Tween 80 (TWE) and Surfactin (SUC)) on the biodegradation of naphthalene (NAP), chrysene (CHR), and pyrene (PYR), the representative components of PAHs, with CYP enzyme from microalgae Parachlorella kessleri using molecular docking and molecular dynamics (MD) simulation. The molecular docking analysis revealed that PAHs bound to residues at the CYP active site through hydrophobic interactions for biodegradation. The MD simulation showed that the surfactant addition changed the enzyme conformation in the CYP-PAH complexes to provide more interactions between the enzyme and PAHs. This led to an increase in the enzyme's capability to degrade PAHs. Binding free energy (ΔG||Bind) calculations confirmed that surfactant treatment could enhance PAHs degradation by the enzyme. The SUC gave a better result on NAP and PYR biodegradation based on ΔG||Bind, while TWE facilitated the biodegradation of CHR. The research outputs could greatly facilitate evaluating the behaviors of oil spill-treating agents and oil spill response operations in the marine environment.


Biodegradation, Environmental , Molecular Docking Simulation , Molecular Dynamics Simulation , Petroleum Pollution , Polycyclic Aromatic Hydrocarbons , Surface-Active Agents , Water Pollutants, Chemical , Polycyclic Aromatic Hydrocarbons/metabolism , Polycyclic Aromatic Hydrocarbons/chemistry , Surface-Active Agents/chemistry , Surface-Active Agents/metabolism , Water Pollutants, Chemical/metabolism , Water Pollutants, Chemical/chemistry , Cytochrome P-450 Enzyme System/metabolism , Chlorophyta/metabolism
10.
Sci Rep ; 14(1): 11335, 2024 05 17.
Article En | MEDLINE | ID: mdl-38760417

Crude oil hydrocarbons are considered major environmental pollutants and pose a significant threat to the environment and humans due to having severe carcinogenic and mutagenic effects. Bioremediation is one of the practical and promising technology that can be applied to treat the hydrocarbon-polluted environment. In this present study, rhamnolipid biosurfactant (BS) produced by Pseudomonas aeruginosa PP4 and green synthesized iron nanoparticles (G-FeNPs) from Lawsonia inermis was used to evaluate the biodegradation efficiency (BE) of crude oil. The surface analysis of G-FeNPs was carried out by using FESEM and HRTEM to confirm the size and shape. Further, the average size of the G-FeNPs was observed around 10 nm by HRTEM analysis. The XRD and Raman spectra strongly confirm the presence of iron nanoparticles with their respective peaks. The BE (%) of mixed degradation system-V (PP4+BS+G-FeNPs) was obtained about 82%. FTIR spectrum confirms the presence of major functional constituents (C=O, -CH3, C-O, and OH) in the residual oil content. Overall, this study illustrates that integrated nano-based bioremediation could be an efficient approach for hydrocarbon-polluted environments. This study is the first attempt to evaluate the G-FeNPs with rhamnolipid biosurfactant on the biodegradation of crude oil.


Biodegradation, Environmental , Hydrocarbons , Petroleum , Hydrocarbons/metabolism , Hydrocarbons/chemistry , Petroleum/metabolism , Lawsonia Plant/chemistry , Lawsonia Plant/metabolism , Pseudomonas aeruginosa/metabolism , Magnetic Iron Oxide Nanoparticles/chemistry , Surface-Active Agents/metabolism , Surface-Active Agents/chemistry , Glycolipids/chemistry , Glycolipids/metabolism , Spectroscopy, Fourier Transform Infrared , Environmental Pollutants/metabolism
11.
Sci Rep ; 14(1): 10270, 2024 05 04.
Article En | MEDLINE | ID: mdl-38704438

Biosurfactants, as microbial bioproducts, have significant potential in the field of microbial enhanced oil recovery (MEOR). Biosurfactants are microbial bioproducts with the potential to reduce the interfacial tension (IFT) between crude oil and water, thus enhancing oil recovery. This study aims to investigate the production and characterization of biosurfactants and evaluate their effectiveness in increasing oil recovery. Pseudoxanthomonas taiwanensis was cultured on SMSS medium to produce biosurfactants. Crude oil was found to be the most effective carbon source for biosurfactant production. The biosurfactants exhibited comparable activity to sodium dodecyl sulfate (SDS) at a concentration of 400 ppm in reducing IFT. It was characterized as glycolipids, showing stability in emulsions at high temperatures (up to 120 °C), pH levels ranging from 3 to 9, and NaCl concentrations up to 10% (w/v). Response surface methodology revealed the optimized conditions for the most stable biosurfactants (pH 7, temperature of 40 °C, and salinity of 2%), resulting in an EI24 value of 64.45%. Experimental evaluations included sand pack column and core flooding studies, which demonstrated additional oil recovery of 36.04% and 12.92%, respectively. These results indicate the potential application of P. taiwanensis biosurfactants as sustainable and environmentally friendly approaches to enhance oil recovery in MEOR processes.


Petroleum , Surface-Active Agents , Surface-Active Agents/metabolism , Surface-Active Agents/chemistry , Petroleum/metabolism , Xanthomonadaceae/metabolism , Hydrogen-Ion Concentration , Surface Tension , Temperature , Green Chemistry Technology/methods , Sodium Dodecyl Sulfate/chemistry , Emulsions
12.
Top Curr Chem (Cham) ; 382(2): 11, 2024 Apr 08.
Article En | MEDLINE | ID: mdl-38589726

Silicone surfactants have garnered significant research attention owing to their superior properties, such as wettability, ductility, and permeability. Small-molecular silicone surfactants with simple molecular structures outperform polymeric silicone surfactants in terms of surface activity, emulsification, wetting, foaming, and other areas. Moreover, silicone surfactants with small molecules exhibit a diverse and rich molecular structure. This review discusses various synthetic routes for the synthesis of different classes of surfactants, including single-chain, "umbrella" structure, double chain, bolaform, Gemini, and stimulus-responsive surfactants. The fundamental surface/interface properties of the synthesized surfactants are also highlighted. Additionally, these surfactants have demonstrated enormous potential in agricultural synergism, drug delivery, mineral flotation, enhanced oil recovery, separation, and extraction, and foam fire-fighting.


Silicones , Surface-Active Agents , Surface-Active Agents/chemistry , Surface Properties , Molecular Structure
13.
Soft Matter ; 20(15): 3243-3247, 2024 Apr 17.
Article En | MEDLINE | ID: mdl-38572565

In this study, by fabricating DNA doped with tetraphenylethene-containing ammonium surfactant, the resulting solvent-free DNA ionic complex could undergo a humidity-induced phase change that could be well tracked by the fluorescence signal of the surfactant. Taking advantage of the humidity-induced change in fluorescence, the reported ionic DNA complex could accurately indicate the humidity in real time.


Liquid Crystals , Liquid Crystals/chemistry , Humidity , Biocompatible Materials , DNA/chemistry , Surface-Active Agents/chemistry
14.
Spectrochim Acta A Mol Biomol Spectrosc ; 314: 124237, 2024 Jun 05.
Article En | MEDLINE | ID: mdl-38579427

In this study, we have co-loadedatorvastatin (ATR) and quercetin (QCT) in a nonionic microemulsion. After developing a derivative ratio spectrophotometric technique for simultaneous analysis of ATR and QCT, pseudoternary phase diagram was constructed utilizing1:4 d-α-tocopherol polyethylene glycol 1000 succinate (TPGS) and ethanol as surfactant and cosurfactant, respectively. Oleic acid was used as oil phase. Structural characterization of the formulation was carried out along a water dilution line created in monophasic region. Characterizations at these dilution points were performed using dynamic light scattering and polarized light microscopy. The average hydrodynamic size of the optimized formulation was found to be 18.9 nm and it did not change upon loading of ATR and QCT. In vitro release was assessed for the formulations loaded with different ratios of ATR and QCT, and the data were fitted to different mathematical models. Interestingly, we noticed differences in release kinetics during changes in dose ratios, particularly for QCT. Higuchi kinetics, observed at equal dose, shifted to Korsmeyer-Peppas model at higher QCT-ATR ratio (2:1 and 4:1). This difference is attributable to the ability of QCT molecules of overwhelming the interface at higher concentrations. Altogether, our observations highlight that the ratio of payloads should be selected carefully in order to avoid unpredictable release patterns.


Quercetin , Surface-Active Agents , Quercetin/chemistry , Atorvastatin , Solubility , Surface-Active Agents/chemistry , Emulsions/chemistry
15.
J Hazard Mater ; 470: 134190, 2024 May 15.
Article En | MEDLINE | ID: mdl-38593659

Organophosphorus compounds (OPs), such as VX, pose a significant threat due to their neurotoxic and hazardous properties. Skin decontamination is essential to avoid irreversible effects. Fuller's earth (FE), a phyllosilicate conventionally employed in powder form, has demonstrated decontamination capacity against OPs. The aim of this study was to develop a formulation that forms a film on the skin, with a significant OP removal capacity (>95 %) coupled with sequestration capabilities, favorable drying time and mechanical properties to allow for easy application and removal, particularly in emergency context. Various formulations were prepared using different concentrations of polyvinyl alcohol (PVA), FE and surfactants. Their removal and sequestration capacity was tested using paraoxon-ethyl (POX), a chemical that simulates the behavior of VX. Formulations with removal capacity levels surpassing 95 % were mechanically characterized and cell viability assays were performed on Normal Human Dermal Fibroblast (NHDF). The four most promising formulations were used to assess decontamination efficacy on pig ear skin explants. These formulations showed decontamination levels ranging from 84.4 ± 4.7 % to 96.5 ± 1.3 %, which is equivalent to current decontamination methods. These results suggest that this technology could be a novel and effective tool for skin decontamination following exposure to OPs.


Decontamination , Paraoxon , Skin , Decontamination/methods , Animals , Skin/drug effects , Humans , Swine , Paraoxon/toxicity , Paraoxon/chemistry , Aluminum Compounds/chemistry , Cell Survival/drug effects , Silicates/chemistry , Polyvinyl Alcohol/chemistry , Magnesium Compounds/chemistry , Magnesium Compounds/pharmacology , Surface-Active Agents/chemistry , Fibroblasts/drug effects
16.
Environ Sci Pollut Res Int ; 31(21): 30497-30508, 2024 May.
Article En | MEDLINE | ID: mdl-38607492

Detergents are highly produced pollutants with environmental problems like foam generation and toxic effects in biota. Nonylphenol ethoxylates (NPEs) are efficient, economical, and versatile surfactants, used in detergents for more than 40 years due to their detergency capacity. In the environment, NPE biodegrades into the metabolite nonylphenol (NP), classified as an endocrine disruptor. The identification and quantification of 4-NP in a designed detergent and 30 commercially available detergents were performed to prove the degradation of NPE into 4-NP during storage time. This investigation introduces the first evidence of NPE degradation during storage in commercially available detergents, demonstrating a novel exposure pathway in humans that has not been explored before, representing potential human health risks. Therefore, simple, easy, low-cost, and available approaches to remove and substitute NP is paramount. Alkyl polyglucoside (APG) was assessed as a substitute, and the feasibility of this substitution was proven according to physical and chemical properties, cleaning performance, and antimicrobial properties. NPE substitution in detergents is demonstrated as a viable strategy to minimize exposure risks in humans and the environment.


Detergents , Detergents/chemistry , Ethylene Glycols/chemistry , Phenols , Surface-Active Agents/chemistry , Humans , Endocrine Disruptors/analysis
17.
Colloids Surf B Biointerfaces ; 238: 113918, 2024 Jun.
Article En | MEDLINE | ID: mdl-38669750

The supramolecular-based macrocyclic amphiphiles have fascinating attention and find extensive utilization in the pharmaceutical industry for efficient drug delivery. In this study, we designed and synthesized a new supramolecular amphiphilic macrocycle to serve as an efficient nanocarrier, achieved by treating 4-hydroxybenzaldehyde with 1-bromotetradecane. The derivatized product was subsequently treated with resorcinol to cyclize, resulting in the formation of a calix(4)-resorcinarene-based supramolecular amphiphilic macrocycle. The synthesized macrocycle and intermediate products were characterized using mass spectrometry, IR, and 1H NMR spectroscopic techniques. The amphotericin-B (Amph-B)-loaded and unloaded amphiphiles were screened for biocompatibility studies, vesicle formation, particle shape, size, surface charge, drug entrapment, in-vitro release profile, and stability through atomic force microscopy (AFM), Zetasizer, HPLC, and FT-IR. Amph-B -loaded macrocycle-based niosomal vesicles were investigated for in-vivo bioavailability in rabbits. The synthesized macrocycle exhibited no cytotoxicity against normal mouse fibroblast cells and was found to be hemocompatible and safe in mice following an acute toxicity study. The drug-loaded macrocycle-based vesicles appeared spherical, nano-sized, and homogeneous in size, with a notable negative surface charge. The vesicles remained stable after 30 days of storage. The results of Amph-B oral bioavailability and pharmacokinetics revealed that the newly tailored niosomal formulation enhanced drug solubility, protected drug degradation at gastric pH, facilitated sustained drug release at the specific target site, and delayed plasma drug clearance. Incorporating such advanced niosomal formulations in the field of drug delivery systems has the potential to revolutionize therapeutic outcomes and improve the quality of patient well-being.


Amphotericin B , Biological Availability , Calixarenes , Drug Carriers , Calixarenes/chemistry , Animals , Mice , Drug Carriers/chemistry , Drug Carriers/chemical synthesis , Rabbits , Amphotericin B/pharmacokinetics , Amphotericin B/chemistry , Amphotericin B/pharmacology , Amphotericin B/administration & dosage , Administration, Oral , Phenylalanine/chemistry , Phenylalanine/analogs & derivatives , Macrocyclic Compounds/chemistry , Macrocyclic Compounds/pharmacokinetics , Macrocyclic Compounds/pharmacology , Macrocyclic Compounds/chemical synthesis , Particle Size , Drug Liberation , Nanoparticles/chemistry , Surface-Active Agents/chemistry , Surface-Active Agents/chemical synthesis , Male
18.
Biomacromolecules ; 25(5): 2823-2837, 2024 May 13.
Article En | MEDLINE | ID: mdl-38602228

Self-assembled nanostructures such as those formed by peptide amphiphiles (PAs) are of great interest in biological and pharmacological applications. Herein, a simple and widely applicable chemical modification, a urea motif, was included in the PA's molecular structure to stabilize the nanostructures by virtue of intermolecular hydrogen bonds. Since the amino acid residue nearest to the lipid tail is the most relevant for stability, we decided to include the urea modification at that position. We prepared four groups of molecules (13 PAs in all), with varying levels of intermolecular cohesion, using amino acids with distinct ß-sheet promoting potential and/or containing hydrophobic tails of distinct lengths. Each subset contained one urea-modified PA and nonmodified PAs, all with the same peptide sequence. The varied responses of these PAs to variations in pH, temperature, counterions, and biologically related proteins were examined using microscopic, X-ray, spectrometric techniques, and molecular simulations. We found that the urea group contributes to the stabilization of the morphology and internal arrangement of the assemblies against environmental stimuli for all peptide sequences. In addition, microbiological and biological studies were performed with the cationic PAs. These assays reveal that the addition of urea linkages affects the PA-cell membrane interaction, showing the potential to increase the selectivity toward bacteria. Our data indicate that the urea motif can be used to tune the stability of a wide range of PA nanostructures, allowing flexibility on the biomaterial's design and opening a myriad of options for clinical therapies.


Hydrogen Bonding , Urea , Urea/chemistry , Hydrophobic and Hydrophilic Interactions , Peptides/chemistry , Peptides/pharmacology , Nanostructures/chemistry , Surface-Active Agents/chemistry
19.
Bioresour Technol ; 401: 130738, 2024 Jun.
Article En | MEDLINE | ID: mdl-38670290

Depolymerization of carbohydrate biomass using a long-chain alcohol (transglycosylation) to produce alkyl glycoside-based bio-surfactants has been gaining industrial interest. This study introduces microwave-assisted transglycosylation in transforming wheat bran, a substantial agricultural side stream, into these valuable compounds. Compared to traditional heating, microwave-assisted processing significantly enhances the product yield by 53 % while reducing the reaction time by 72 %, achieving a yield of 29 % within 5 h. This enhancement results from the microwave's capacity to activate intermolecular hydrogen and glycosidic bonds, thereby facilitating transglycosylation. Life-cycle assessment and techno-economic analysis demonstrate the benefits of microwave heating in reducing energy consumption by 42 %, CO2 emissions by 56 %, and equipment, operational and production costs by 44 %, 35 % and 30 %, respectively. The study suggests that microwave heating is a promising approach for efficiently producing bio-surfactants from agricultural wastes, with potential cost reductions and environmental benefits that could enhance industrial biomass conversion processes.


Biomass , Dietary Fiber , Glycosides , Microwaves , Surface-Active Agents , Surface-Active Agents/chemistry , Glycosylation , Green Chemistry Technology/methods
20.
J Pharm Biomed Anal ; 245: 116145, 2024 Aug 01.
Article En | MEDLINE | ID: mdl-38631071

Non-ionic surfactants such as Polysorbate 20/ 80 (PS20/ PS80), are commonly used in protein drug formulations to increase protein stability by protecting against interfacial stress and surface absorption. Polysorbate is susceptible to degradation which can impact product stability, leading to the formation of sub-visible and/or visible particles in the drug product during its shelf-life, affecting patient safety and efficacy. Therefore, it is important to monitor polysorbate concentration in drug product formulations of biotherapeutic drugs. The common method for measuring polysorbate concentration in drug product formulations uses mixed mode ion exchange reversed phase HPLC (MAX) coupled to evaporative light scattering detection (ELSD). However, high protein concentration can adversely impact method performance due to high sample viscosity, gel formation, column clogging, interfering peaks and loss of accuracy. To overcome this, a new method was developed based on EDTA mediated ethanol protein precipitation (EDTA/EtOH). This method was successfully implemented for the analysis of polysorbate in antibody formulations with wide range of protein concentration (10-250 mg/mL).


Chemical Precipitation , Edetic Acid , Ethanol , Polysorbates , Surface-Active Agents , Polysorbates/chemistry , Polysorbates/analysis , Edetic Acid/chemistry , Ethanol/chemistry , Surface-Active Agents/chemistry , Chromatography, High Pressure Liquid/methods , Proteins/analysis , Proteins/chemistry , Chemistry, Pharmaceutical/methods , Protein Stability , Biological Products/analysis , Biological Products/chemistry
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