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1.
Sci Rep ; 14(1): 10834, 2024 05 12.
Article in English | MEDLINE | ID: mdl-38734821

ABSTRACT

Bulk composition of kidney stones, often analyzed with infrared spectroscopy, plays an essential role in determining the course of treatment for kidney stone disease. Though bulk analysis of kidney stones can hint at the general causes of stone formation, it is necessary to understand kidney stone microstructure to further advance potential treatments that rely on in vivo dissolution of stones rather than surgery. The utility of Raman microscopy is demonstrated for the purpose of studying kidney stone microstructure with chemical maps at ≤ 1 µm scales collected for calcium oxalate, calcium phosphate, uric acid, and struvite stones. Observed microstructures are discussed with respect to kidney stone growth and dissolution with emphasis placed on < 5 µm features that would be difficult to identify using alternative techniques including micro computed tomography. These features include thin concentric rings of calcium oxalate monohydrate within uric acid stones and increased frequency of calcium oxalate crystals within regions of elongated crystal growth in a brushite stone. We relate these observations to potential concerns of clinical significance including dissolution of uric acid by raising urine pH and the higher rates of brushite stone recurrence compared to other non-infectious kidney stones.


Subject(s)
Calcium Oxalate , Calcium Phosphates , Kidney Calculi , Spectrum Analysis, Raman , Struvite , Uric Acid , Kidney Calculi/chemistry , Spectrum Analysis, Raman/methods , Calcium Oxalate/chemistry , Uric Acid/analysis , Calcium Phosphates/analysis , Calcium Phosphates/chemistry , Humans , Struvite/chemistry , Magnesium Compounds/chemistry , Phosphates/analysis
2.
Water Res ; 256: 121638, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38691899

ABSTRACT

In this study, we investigated the recovery of nitrogen (N) and phosphorus (P) from fresh source-separated urine with a novel electrochemical cell equipped with a magnesium (Mg) anode and carbon-based gas-diffusion cathode. Recovery of P, which exists primarily as phosphate (PO43-) in urine, was achieved through pH-driven precipitation. Maximizing N recovery requires simultaneous approaches to address urea and ammonia (NH3). NH3 recovery was possible through precipitation in struvite with soluble Mg supplied by the anode. Urea was stabilized with electrochemically synthesized hydrogen peroxide (H2O2) from the cathode. H2O2 concentrations and resulting urine pH were directly proportional to the applied current density. Concomitant NH3 and PO43- precipitation as struvite and urea stabilization via H2O2 electrosynthesis was possible at lower current densities, resulting in urine pH under 9.2. Higher current densities resulted in urine pH over 9.2, yielding higher H2O2 concentrations and more consistent stabilization of urea at the expense of NH3 recovery as struvite; PO43- precipitation still occurred but in the form of calcium phosphate and magnesium phosphate solids.


Subject(s)
Electrodes , Hydrogen Peroxide , Magnesium , Phosphorus , Urea , Urea/chemistry , Phosphorus/chemistry , Magnesium/chemistry , Hydrogen Peroxide/chemistry , Hydrogen-Ion Concentration , Urine/chemistry , Phosphates/chemistry , Struvite/chemistry , Ammonia/chemistry , Magnesium Compounds/chemistry , Nitrogen/chemistry , Humans
3.
Biomed Mater Eng ; 35(3): 265-278, 2024.
Article in English | MEDLINE | ID: mdl-38728179

ABSTRACT

BACKGROUND: Bone defects arising from diverse causes, such as traffic accidents, contemporary weapon usage, and bone-related disorders, present significant challenges in clinical treatment. Prolonged treatment cycles for bone defects can result in complications, impacting patients' overall quality of life. Efficient and timely repair of bone defects is thus a critical concern in clinical practice. OBJECTIVE: This study aims to assess the scientific progress and achievements of magnesium phosphate bone cement (MPC) as an artificial bone substitute material. Additionally, the research seeks to explore the future development path and clinical potential of MPC bone cement in addressing challenges associated with bone defects. METHODS: The study comprehensively reviews MPC's performance, encompassing e.g. mechanical properties, biocompatibility, porosity, adhesion and injectability. Various modifiers are also considered to broaden MPC's applications in bone tissue engineering, emphasizing drug-loading performance and antibacterial capabilities, which meet clinical diversification requirements. RESULTS: In comparison to alternatives such as autogenous bone transplantation, allograft, polymethyl methacrylate (PMMA), and calcium phosphate cement (CPC), MPC emerges as a promising solution for bone defects. It addresses limitations associated with these alternatives, such as immunological rejection and long-term harm to patients. MPC can control heat release during the curing process, exhibits superior mechanical strength, and has the capacity to stimulate new bone growth. CONCLUSION: MPC stands out as an artificial bone substitute with appropriate mechanical strength, rapid degradation, non-toxicity, and good biocompatibility, facilitating bone repair and regeneration. Modification agents can enhance its clinical versatility. Future research should delve into its mechanical properties and formulations, expanding clinical applications to create higher-performing and more medically valuable alternatives in bone defect repair.


Subject(s)
Bone Cements , Bone Substitutes , Magnesium Compounds , Phosphates , Bone Cements/chemistry , Bone Cements/therapeutic use , Humans , Phosphates/chemistry , Magnesium Compounds/chemistry , Magnesium Compounds/therapeutic use , Bone Substitutes/therapeutic use , Bone Substitutes/chemistry , Animals , Bone Regeneration/drug effects , Porosity , Materials Testing , Bone and Bones/drug effects
4.
Chemosphere ; 358: 142195, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38692368

ABSTRACT

Due to the anthropogenic increase of atmospheric CO2 emissions, humanity is facing the negative effects of rapid global climate change. Both active emission reduction and carbon dioxide removal (CDR) technologies are needed to meet the Paris Agreement and limit global warming to 1.5 °C by 2050. One promising CDR approach is coastal enhanced weathering (CEW), which involves the placement of sand composed of (ultra)mafic minerals like olivine in coastal zones. Although the large-scale placement of olivine sand could beneficially impact the planet through the consumption of atmospheric CO2 and reduction in ocean acidification, it may also have physical and geochemical impacts on benthic communities. The dissolution of olivine can release dissolved constituents such as trace metals that may affect marine organisms. Here we tested acute and chronic responses of marine invertebrates to olivine sand exposure, as well as examined metal accumulation in invertebrate tissue resulting from olivine dissolution. Two different ecotoxicological experiments were performed on a range of benthic marine invertebrates (amphipod, polychaete, bivalve). The first experiment included acute and chronic survival and growth tests (10 and 20 days, respectively) of olivine exposure while the second had longer (28 day) exposures to measure chronic survival and bioaccumulation of trace metals (e.g. Ni, Cr, Co) released during olivine sand dissolution. Across all fauna we observed no negative effects on acute survival or chronic growth resulting solely from olivine exposure. However, over 28 days of exposure, the bent-nosed clam Macoma nasuta experienced reduced burrowing and accumulated 4.2 ± 0.7 µg g ww-1 of Ni while the polychaete Alitta virens accumulated 3.5 ± 0.9 µg g ww-1 of Ni. No significant accumulation of any other metals was observed. Future work should include longer-term laboratory studies as well as CEW field studies to validate these findings under real-world scenarios.


Subject(s)
Aquatic Organisms , Iron Compounds , Magnesium Compounds , Water Pollutants, Chemical , Animals , Water Pollutants, Chemical/metabolism , Aquatic Organisms/metabolism , Aquatic Organisms/drug effects , Magnesium Compounds/chemistry , Iron Compounds/chemistry , Bioaccumulation , Metals/metabolism , Silicates , Invertebrates/drug effects , Invertebrates/metabolism , Silicon Dioxide/chemistry , Polychaeta/metabolism , Polychaeta/drug effects , Polychaeta/physiology , Bivalvia/metabolism , Bivalvia/drug effects
5.
J Hazard Mater ; 470: 134221, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38615651

ABSTRACT

Constructed wetlands (CWs) are a promising approach for treating acid mine drainage (AMD). However, the extreme acidity and high loads of heavy metals in AMD can easily lead to the collapse of CWs without proper pre-treatment. Therefore, it is considered essential to maintain efficient and stable performance for AMD treatment in CWs. In this study, pre-prepared attapulgite-soda residue (ASR) composites were used to improve the substrate of CWs. Compared with CWs filled with gravel (CWs-G), the removal efficiencies of sulfate and Fe, Mn, Cu, Zn Cd and Pb in CWs filled with ASR composites (CWs-ASR) were increased by 30% and 10-70%, respectively. These metals were mainly retained in the substrate in stable forms, such as carbonate-, Fe/Mn (oxide)hydroxide-, and sulfide-bound forms. Additionally, higher levels of photosynthetic pigments and antioxidant enzyme activities in plants, along with a richer microbial community, were observed in CWs-ASR than in CWs-G. The application of ASR composites alleviated the adverse effects of AMD stresses on wetland plants and microorganisms. In return, the increased bacteria abundance, particularly SRB genera (e.g., Thermodesulfovibrionia and Desulfobacca), promoted the formation of metal sulfides, enabling the saturated ASR adsorbed with metals to regenerate and continuously capture heavy metals. The synergistic adsorption of ASR composites and microbial sulfate reduction maintained the stable and efficient operation of CWs. This study contributes to the resource utilization of industrial alkaline by-products and promotes the breakthrough of new techniques for low-cost and passive treatment systems such as CWs.


Subject(s)
Magnesium Compounds , Metals, Heavy , Mining , Silicon Compounds , Sulfates , Water Pollutants, Chemical , Wetlands , Sulfates/chemistry , Metals, Heavy/chemistry , Adsorption , Water Pollutants, Chemical/chemistry , Water Pollutants, Chemical/metabolism , Silicon Compounds/chemistry , Magnesium Compounds/chemistry , Acids/chemistry , Oxidation-Reduction , Biodegradation, Environmental , Hydrogen-Ion Concentration
6.
J Hazard Mater ; 470: 134190, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38593659

ABSTRACT

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.


Subject(s)
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
7.
ACS Appl Mater Interfaces ; 16(17): 21672-21688, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38637290

ABSTRACT

Titanium (Ti) and its alloys are widely used as hard tissue substitutes in dentistry and orthopedics, but their low bioactivity leads to undesirable osseointegration defects in the early osteogenic phase. Surface modification is an important approach to overcome these problems. In the present study, novel magnesium phosphate (MgP) coatings with controllable structures were fabricated on the surface of Ti using the phosphate chemical conversion (PCC) method. The effects of the microstructure on the physicochemical and biological properties of the coatings on Ti were researched. The results indicated that accelerators in PCC solution were important factors affecting the microstructure and properties of the MgP coatings. In addition, the coated Ti exhibited excellent hydrophilicity, high bonding strength, and good corrosion resistance. Moreover, the biological results showed that the MgP coatings could improve the spread, proliferation, and osteogenic differentiation of mouse osteoblast cells (MC3T3-E1) and vascular differentiation of human umbilical vein endothelial cells (HUVECs), indicating that the coated Ti samples had a great effect on promoting osteogenesis and angiogenesis. Overall, this study provided a new research idea for the surface modification of conventional Ti to enhance osteogenesis and angiogenesis in different bone types for potential biomedical applications.


Subject(s)
Cell Differentiation , Cell Proliferation , Coated Materials, Biocompatible , Human Umbilical Vein Endothelial Cells , Magnesium Compounds , Neovascularization, Physiologic , Osteogenesis , Phosphates , Titanium , Titanium/chemistry , Titanium/pharmacology , Osteogenesis/drug effects , Animals , Mice , Human Umbilical Vein Endothelial Cells/drug effects , Humans , Coated Materials, Biocompatible/chemistry , Coated Materials, Biocompatible/pharmacology , Phosphates/chemistry , Phosphates/pharmacology , Magnesium Compounds/chemistry , Magnesium Compounds/pharmacology , Cell Differentiation/drug effects , Cell Proliferation/drug effects , Neovascularization, Physiologic/drug effects , Osteoblasts/drug effects , Osteoblasts/cytology , Surface Properties , Cell Line , Angiogenesis
8.
Metallomics ; 16(5)2024 May 02.
Article in English | MEDLINE | ID: mdl-38599629

ABSTRACT

Taking into account that in recent decades there has been an increase in the incidence of urinary stones, especially in highly developed countries, from a wide range of potentially harmful substances commonly available in such countries, we chose zinc for the research presented in this article, which is classified by some sources as a heavy metal. In this article, we present the results of research on the influence of Zn2+ ion on the nucleation and growth of struvite crystals-the main component of infection urinary stones. The tests were carried out in an artificial urine environment with and without the presence of Proteus mirabilis bacteria. In the latter case, the activity of bacterial urease was simulated chemically, by systematic addition of an aqueous ammonia solution. The obtained results indicate that Zn2+ ions compete with Mg2+ ions, which leads to the gradual replacement of Mg2+ ions in the struvite crystal lattice with Zn2+ ions to some extent. This means co-precipitation of Mg-struvite (MgNH4PO4·6H2O) and Znx-struvite (Mg1-xZnxNH4PO4·6H2O). Speciation analysis of chemical complexes showed that Znx-struvite precipitates at slightly lower pH values than Mg-struvite. This means that Zn2+ ions shift the nucleation point of crystalline solids towards a lower pH. Additionally, the conducted research shows that Zn2+ ions, in the range of tested concentrations, do not have a toxic effect on bacteria; on the contrary, it has a positive effect on cellular metabolism, enabling bacteria to develop better. It means that Zn2+ ions in artificial urine, in vitro, slightly increase the risk of developing infection urinary stones.


Subject(s)
Proteus mirabilis , Struvite , Urinary Calculi , Zinc , Struvite/chemistry , Zinc/metabolism , Zinc/chemistry , Urinary Calculi/chemistry , Urinary Calculi/metabolism , Urinary Calculi/microbiology , Proteus mirabilis/metabolism , Humans , Phosphates/metabolism , Phosphates/chemistry , Ions , Magnesium Compounds/metabolism , Magnesium Compounds/chemistry , Crystallization
9.
Chemosphere ; 358: 142132, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38670505

ABSTRACT

The escalation of industrial activities has escalated the production of pharmaceutical and dyeing effluents, raising significant environmental issues. In this investigation, a hybrid approach of Fenton-like reactions and adsorption was used for deep treatment of these effluents, focusing on effects of variables like hydrogen peroxide concentration, catalyst type, pH, reaction duration, temperature, and adsorbent quantity on treatment effectiveness, and the efficacy of acid-modified attapulgite (AMATP) and ferric iron (Fe(III))-loaded AMATP (Fe(III)-AMATP) was examined. Optimal operational conditions were determined, and the possibility of reusing the catalysts was explored. Employing Fe3O4 as a heterogeneous catalyst and AMATP for adsorption, CODCr was reduced by 78.38-79.14%, total nitrogen by 71.53-77.43%, and phosphorus by 97.74-98.10% in pharmaceutical effluents. Similarly, for dyeing effluents, Fe(III)-AMATP achieved 79.87-80.94% CODCr, 68.59-70.93% total nitrogen, and 79.31-83.33% phosphorus reduction. Regeneration experiments revealed that Fe3O4 maintained 59.48% efficiency over three cycles, and Fe(III)-AMATP maintained 62.47% efficiency over four cycles. This work offers an economical, hybrid approach for effective pharmaceutical and dyeing effluent treatment, with broad application potential.


Subject(s)
Ferric Compounds , Hydrogen Peroxide , Industrial Waste , Magnesium Compounds , Silicon Compounds , Waste Disposal, Fluid , Water Pollutants, Chemical , Waste Disposal, Fluid/methods , Water Pollutants, Chemical/chemistry , Ferric Compounds/chemistry , Adsorption , Silicon Compounds/chemistry , Magnesium Compounds/chemistry , Hydrogen Peroxide/chemistry , Catalysis , Iron/chemistry , Phosphorus/chemistry , Nitrogen/chemistry , Coloring Agents/chemistry , Hydrogen-Ion Concentration , Water Purification/methods
10.
ACS Sens ; 9(4): 2010-2019, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38602267

ABSTRACT

Digital nucleic acid amplification enables the absolute quantification of single molecules. However, due to the ultrasmall reaction volume in the digital system (i.e., short light path), most digital systems are limited to fluorescence signals, while label-free and naked-eye readout remain challenging. In this work, we report a digital nucleic acid plate culture method for label-free, ultrasimple, and naked-eye nucleic acid analysis. As simple as the bacteria culture, the nanoconfined digital loop-mediated isothermal amplification was performed by using polyacrylamide (PAM) hydrogel as the amplification matrix. The nanoconfinement of PAM hydrogel with an ionic polymer chain can remarkably accelerate the amplification of target nucleic acids and the growth of inorganic byproducts, namely, magnesium pyrophosphate particles (MPPs). Compared to that in aqueous solutions, MPPs trapped in the hydrogel with enhanced light scattering characteristics are clearly visible to the naked eye, forming white "colony" spots that can be simply counted in a label-free and instrument-free manner. The MPPs can also be photographed by a smartphone and automatically counted by a machine-learning algorithm to realize the absolute quantification of antibiotic-resistant pathogens in diverse real samples.


Subject(s)
Acrylic Resins , Hydrogels , Machine Learning , Nucleic Acid Amplification Techniques , Nucleic Acid Amplification Techniques/methods , Hydrogels/chemistry , Acrylic Resins/chemistry , Diphosphates/chemistry , Magnesium Compounds/chemistry , Smartphone
11.
Biomed Mater ; 19(3)2024 May 03.
Article in English | MEDLINE | ID: mdl-38636501

ABSTRACT

Palygorskite (Pal) is a naturally available one-dimensional clay mineral, featuring rod-shaped morphology, nanoporous structure, permanent negative charges as well as abundant surface hydroxyl groups, exhibiting promising potential as a natural hemostatic material. In this study, the hemostatic performance and mechanisms of Pal were systematically investigated based on the structural regulate induced by oxalic acid (OA) gradient leaching from perspectives of structure, surface attributes and ion release.In vitroandin vivohemostasis evaluation showed that Pal with OA leaching for 1 h exhibited a superior blood procoagulant effect compared with the raw Pal as well as the others leached for prolonging time. This phenomenon might be ascribed to the synergistic effect of the intact nanorod-like morphology, the increase in the surface negative charge, the release of metal ions (Fe3+and Mg2+), and the improved blood affinity, which promoted the intrinsic coagulation pathway, the fibrinogenesis and the adhesion of blood cells, thereby accelerating the formation of robust blood clots. This work is expected to provide experimental and theoretical basis for the construction of hemostatic biomaterials based on clay minerals.


Subject(s)
Blood Coagulation , Hemostatics , Magnesium Compounds , Oxalic Acid , Silicon Compounds , Magnesium Compounds/chemistry , Oxalic Acid/chemistry , Animals , Silicon Compounds/chemistry , Blood Coagulation/drug effects , Hemostatics/chemistry , Hemostatics/pharmacology , Biocompatible Materials/chemistry , Hemostasis/drug effects , Materials Testing , Humans , Surface Properties , Clay/chemistry , Magnesium/chemistry , Rats
12.
J Chromatogr A ; 1721: 464849, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38564930

ABSTRACT

A novel fluorinated covalent organic polymer @ attapulgite composite (F-COP@ATP) was prepared at room temperature for in-syringe membrane solid-phase extraction (SM-SPE) of domoic acid (DA) in aquatic products. Natural ore ATP has the advantages of low cost, good mechanical strength and abundant hydroxyl group on its surface, and in-situ modified F-COP layer can provide abundant adsorption sites. F-COP@ATP combining the advantages of F-COP and ATP, becomes an ideal adsorbent for DA extracting. Moreover, a high-throughput sample preparation strategy was carried out by using the F-COP@ATP membrane as syringe filter and assembling syringes with a ten-channel injection pump. In addition, the experimental factors were optimized, such as pH of extract, amount of adsorbent, velocity of extraction and desorption, type and volume of desorption solvent. The DA analytical method was established by SM-SPE-HPLC/tandem mass spectrometry. The method had a wide linear range with low limit of detection (0.344 ng/kg) and low limit of quantification (1.14 ng/kg). F-COP@ATP membrane can be reused more than five times. The method realized the analysis of DA in scallop and razor clam samples, which shows its application prospect in practical analysis. This study provided an efficient, low-energy and mild idea for preparing other reusable natural mineral ATP-based composite materials for separation and enrichment, which reduces the experimental cost and is closer to environmental protection and green chemistry to a certain extent.


Subject(s)
Fluorocarbon Polymers , Kainic Acid/analogs & derivatives , Magnesium Compounds , Silicon Compounds , Solid Phase Extraction , Temperature , Chromatography, High Pressure Liquid/methods , Solid Phase Extraction/methods , Adenosine Triphosphate
13.
Int J Biol Macromol ; 267(Pt 2): 131412, 2024 May.
Article in English | MEDLINE | ID: mdl-38593894

ABSTRACT

The synthesis of ideal bioceramics to guide the fate of cells and subsequent bone regeneration within the chemical, biological, and physical microenvironment is a challenging long-term task. This study developed amorphous calcium magnesium phosphate (ACMP) bioceramics via a simple co-precipitation method. The role of Mg2+ in the formation of ACMP is investigated using physicochemical and biological characterization at different Ca/Mg molar ratio of the initial reaction solution. Additionally, ACMP bioceramics show superior cytocompatibility and improved osteogenic differentiation of co-cultured MC3T3-E1 cells. Regulation of the microenvironment with Mg2+ can promote early-stage bone regeneration. For this, bioprinting technology is employed to prepare ACMP-modified 3D porous structures. Our hypothesis is that the incorporation of ACMP into methacrylated gelatin (GelMA) bioink can trigger the osteogenic differentiation of encapsulated preosteoblast and stimulate bone regeneration. The cell-laden ACMP composite structures display stable printability and superior cell viability and cell proliferation. Also, constructs loading the appropriate amount of ACMP bioceramic showed significant osteogenic differentiation activity compared to the pure GelMA. We demonstrate that the dissolved Mg2+ cation microenvironment in ACMP-modified composite constructs plays an effective biochemical role, and can regulate cell fate. Our results predict that GelMA/ACMP bioink has significant potential in patient-specific bone tissue regeneration.


Subject(s)
Bioprinting , Bone Regeneration , Calcium Phosphates , Cell Differentiation , Osteogenesis , Printing, Three-Dimensional , Tissue Scaffolds , Bone Regeneration/drug effects , Mice , Animals , Osteogenesis/drug effects , Calcium Phosphates/chemistry , Calcium Phosphates/pharmacology , Cell Differentiation/drug effects , Bioprinting/methods , Tissue Scaffolds/chemistry , Cell Proliferation/drug effects , Magnesium Compounds/chemistry , Magnesium Compounds/pharmacology , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Cell Survival/drug effects , Cell Line , Tissue Engineering/methods , Osteoblasts/drug effects , Osteoblasts/cytology , Phosphates/chemistry , Phosphates/pharmacology
14.
J Environ Manage ; 357: 120749, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38552517

ABSTRACT

The traditional solidification/stabilization (S/S) technology, Ordinary Portland Cement (OPC), has been widely criticized due to its poor resistance to chloride and significant carbon emissions. Herein, a S/S strategy based on magnesium potassium phosphate cement (MKPC) was developed for the medical waste incineration fly ash (MFA) disposal, which harmonized the chlorine stabilization rate and potential carbon emissions. The in-situ XRD results indicated that the Cl- was efficiently immobilized in the MKPC system with coexisting Ca2+ by the formation of stable Ca5(PO4)3Cl through direct precipitation or intermediate transformation (the Cl- immobilization rate was up to 77.29%). Additionally, the MFA-based MKPC also demonstrated a compressive strength of up to 39.6 MPa, along with an immobilization rate exceeding 90% for heavy metals. Notably, despite the deterioration of the aforementioned S/S performances with increasing MFA incorporation, the potential carbon emissions associated with the entire S/S process were significantly reduced. According to the Life Cycle Assessment, the potential carbon emissions decreased to 8.35 × 102 kg CO2-eq when the MFA reached the blending equilibrium point (17.68 wt.%), while the Cl- immobilization rate still remained above 65%, achieving an acceptable equilibrium. This work proposes a low-carbon preparation strategy for MKPC that realizes chlorine stabilization, which is instructive for the design of S/S materials.


Subject(s)
Magnesium Compounds , Medical Waste , Metals, Heavy , Phosphates , Potassium Compounds , Refuse Disposal , Coal Ash , Magnesium , Calcium , Potassium , Chlorine , Carbon , Chlorides , Incineration/methods , Metals, Heavy/analysis , Solid Waste , Particulate Matter , Refuse Disposal/methods
15.
J Environ Manage ; 357: 120727, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38555844

ABSTRACT

The urgent concerns of controlling water body eutrophication and the alleviating phosphorus shortage have led to an urgent need for action. The removal of phosphate from polluted waters and its reuse are essential for the prevention of eutrophication and for the sustainable utilization of phosphate resources. In this study, modified attapulgite with different Ca:Mg molar ratios was synthesized to facilitate the recovery of phosphate, with subsequent use of soil fertilizer. Ca-Mg modified attapulgite with the optimal ratio (ACM-5:3) exhibited an exceptional adsorption quality, achieving a maximum adsorption capacity of 63.2 mg/g. The pseudo-second-order model and Langmuir model could well describe the adsorption kinetics and isotherms, respectively. The adsorption mechanism analyses suggested that the interaction between ACM-5:3 and phosphate depended mainly on ion exchange and electrostatic attraction. Moreover, phosphate-laden-ACM-5:3 demonstrated a significant potential as a phosphorus-releasing fertilizer. It could promote corn growth by ensuring a continuous supply of phosphorus and minimizing phosphorus runoff losses. The above results suggested that ACM-5:3 was a potential adsorbent for efficient phosphate removal and recovery.


Subject(s)
Phosphates , Silicon Compounds , Water Pollutants, Chemical , Fertilizers , Magnesium Compounds , Phosphorus , Adsorption , Kinetics , Water Pollutants, Chemical/analysis
16.
J Anim Sci ; 1022024 Jan 03.
Article in English | MEDLINE | ID: mdl-38513071

ABSTRACT

This experiment was conducted to evaluate the effects of including a mixed-dimensional attapulgite clay (MDA) into a naturally moldly diet for Hu lambs. Fifty male Hu lambs with similar initial body weight (28.24 ±â€…1.80 kg) were randomly allocated into five dietary treatments: a basal diet containing naturally occurring mycotoxins with 0, 0.5, 1.0, and 2.0 kg/t MDA, and basal diet with a commercial mycotoxin adsorbent Solis with montmorillonite as the major component at 1 kg/t. Both MDA and Solis increased average daily gain (ADG) and dry matter intake (DMI; P ≤ 0.004), and there was no difference in growth performance between MDA and Solis (P ≥ 0.26). The final body weight, DMI, and ADG were linearly increased with increasing MDA supplementation (P < 0.01). Lambs treated with both MDA and Solis demonstrated greater apparent digestibility of dry matter (DM), organic matter (OM), and energy compared with the control group (P ≤ 0.03), and there were no differences in nutrient digestibilities between MDA and Solis (P ≥ 0.38). Digestibility of CP was linearly increased with the increasing MDA supplementation (P = 0.01). Neither MDA nor Solis affected rumen total volatile fatty acid (TVFA) concentration (P ≥ 0.39), but decreased the acetate-to-propionate ratio and molar proportion of n-butyrate (P ≤ 0.01), and MDA also increased the concentration of ammonia (P = 0.003). Besides, increasing MDA supplementation linearly reduced the acetate-to-propionate ratio and molar proportion of n-butyrate (P = 0.01), but linearly and quadratically increased the concentration of ammonia (P ≥ 0.003). These results showed that the incorporation of MDA into a naturally moldy diet of Hu lambs yielded comparable results to the Solis product, with higher growth performance and nutrient digestibility but lower acetate-to-propionate ratio observed. In conclusion, including ≥ 1 kg/t of MDA in high mycotoxin risk diets for growing lambs improves feed intake and rumen fermentation.


The issue of mycotoxin-contaminated animal feed has consistently presented a significant challenge in relation to animal health and production. The mixed-dimensional attapulgite clay (MDA) has been proven effective in binding polar mycotoxins such as aflatoxin, while also effectively adsorbing hydrophobic or weakly polar mycotoxins such as zearalenone (ZEN) and ochratoxin. Therefore, this study was undertaken to assess the impact of MDA inclusion in mycotoxin-contaminated diets on performance and rumen fermentation variables in lambs. The results indicated that MDA not only significantly improved the growth performance and nutrient digestibility of Hu lambs but also enhanced the molar proportion of propionate and ammonia concentration, and reduced the acetate to propionate ratio and the molar proportion of n-butyrate.


Subject(s)
Magnesium Compounds , Mycotoxins , Rumen , Silicon Compounds , Sheep , Animals , Male , Clay , Rumen/metabolism , Propionates/metabolism , Fermentation , Ammonia/metabolism , Digestion , Diet/veterinary , Sheep, Domestic , Eating , Acetates/metabolism , Butyrates/metabolism , Body Weight , Animal Feed/analysis
17.
Int J Biol Macromol ; 266(Pt 1): 131213, 2024 May.
Article in English | MEDLINE | ID: mdl-38552690

ABSTRACT

To avoid the weakness (lower adsorption rate and selectivity) of peach gum polysaccharide (PGP) and improve the adsorption performance of polyacrylamide (PAAm) hydrogel (lower adsorption capacity), in the present work, the PGP was chemically tailored to afford ammoniated PGP (APGP) and quaternized PGP (QPGP), and attapulgite (ATP) was bi-functionalized with cation groups and carbon­carbon double bond. Then, PAAm/APGP and PAAm/QPGP/ATP hydrogels were synthesized via redox polymerization. The synthesis procedure and properties of hydrogels were traced by FTIR, SEM, XPS, TGA, TEM, and BET methods, and the dye adsorption performance of the hydrogels was evaluated using the new coccine (NC) and tartrazine (TTZ) aqueous solutions as the model anionic dyes. Effects of initial dye concentration, pH, and ionic strength on the adsorption were investigated. Compared with PAAm/APGP hydrogel, PAAm/APGP/ATP hydrogel exhibits higher adsorption rate, superior adsorption capacity, stability, and selectivity towards anionic dye. The adsorption process of PAAm/QPGP/ATP hydrogel reached equilibrium in about 20 min and followed the pseudo-second-order kinetic model and Langmuir isotherm. The adsorption capacities towards NC and TTZ of PAAm/QPGP/ATP hydrogel were calculated as 873.235 and 731.432 mg/g. This hydrogel adsorbent originating from PAAm, PGP, and ATP shows great promise for application in practical water treatment.


Subject(s)
Acrylic Resins , Coloring Agents , Hydrogels , Magnesium Compounds , Plant Gums , Silicon Compounds , Water Pollutants, Chemical , Hydrogels/chemistry , Acrylic Resins/chemistry , Coloring Agents/chemistry , Coloring Agents/isolation & purification , Adsorption , Plant Gums/chemistry , Water Pollutants, Chemical/chemistry , Water Pollutants, Chemical/isolation & purification , Silicon Compounds/chemistry , Magnesium Compounds/chemistry , Hydrogen-Ion Concentration , Kinetics , Polysaccharides/chemistry , Water Purification/methods , Anions/chemistry , Solutions , Water/chemistry
18.
Int J Biol Macromol ; 266(Pt 1): 130998, 2024 May.
Article in English | MEDLINE | ID: mdl-38521332

ABSTRACT

Although calcium­magnesium phosphate cements (CMPCs) have been widely applied to treating critical-size bone defects, their repair efficiency is unsatisfactory owing to their weak surface bioactivity and uncontrolled ion release. In this study, we lyophilized alginate sodium (AS) as a coating onto HAp/K-struvite (H@KSv) to develop AS/HAp/K-struvite (AH@KSv), which promotes bone regeneration. The compressive strength and hydrophilicity of AH@KSv significantly improved, leading to enhanced cell adhesion in vitro. Importantly, the SA coating enables continuous ions release of Mg2+ and Ca2+, finally leading to enhanced osteogenesis in vitro/vivo and different patterns of new bone ingrowth in vivo. Furthermore, these composites increased the expression levels of biomarkers of the TRPM7/PI3K/Akt signaling pathway via an equilibrium effect of Mg2+ to Ca2+. In conclusion, our study provides novel insights into the mechanisms of Mg-based biomaterials for bone regeneration.


Subject(s)
Alginates , Bone Cements , Bone Regeneration , Phosphates , Phosphatidylinositol 3-Kinases , Proto-Oncogene Proteins c-akt , Signal Transduction , TRPM Cation Channels , Bone Regeneration/drug effects , TRPM Cation Channels/metabolism , Alginates/chemistry , Alginates/pharmacology , Phosphatidylinositol 3-Kinases/metabolism , Proto-Oncogene Proteins c-akt/metabolism , Signal Transduction/drug effects , Animals , Phosphates/chemistry , Phosphates/pharmacology , Bone Cements/chemistry , Bone Cements/pharmacology , Osteogenesis/drug effects , Magnesium Compounds/chemistry , Magnesium Compounds/pharmacology , Calcium Phosphates/chemistry , Calcium Phosphates/pharmacology , Cell Adhesion/drug effects , Surface Properties , Mice , Rats , Compressive Strength
19.
Food Chem ; 446: 138762, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38402761

ABSTRACT

Molds and mycotoxins pose severe threats to health. Bacillomycin D (BD) can effectively inhibit mold growth. Attapulgite (ATP) can provide a good carrier for antimicrobial agents. Natural ATP was acid-modified to obtain H-ATP. It was used to load BD to obtain a novel composite material (H-ATP-BD). The results showed H-ATP had better adsorption performance than ATP. BD was adsorbed up to 93.13 % by adding 30 mg H-ATP and stirring at 40 ℃ for 120 min. Fourier transform infrared spectra (FTIR), size and zeta potential, X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS) results confirmed successful loading of BD onto H-ATP. The composite showed good inhibition of Aspergillus and adding 0.6 % H-ATP-BD composite was effective in removing 89.06 % of aflatoxin B1 (AFB1) at 50 °C. Model fitting indicated that AFB1 removal was a spontaneous exothermic reaction. This research will lay the foundation for the development of efficient and green antimicrobial and toxin-reducing materials.


Subject(s)
Antimicrobial Cationic Peptides , Magnesium Compounds , Mycotoxins , Water Pollutants, Chemical , Silicon Compounds/chemistry , Adenosine Triphosphate , Adsorption , Spectroscopy, Fourier Transform Infrared
20.
Bioresour Technol ; 395: 130410, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38307484

ABSTRACT

Dark fermentation (DF) is an eco-friendly process that simultaneously achieves organic matter degradation and obtains hydrogen (H2). Nonetheless, low H2 yield mainly caused by poor activity of key microbes, is still a problem that requires being resolved. In this work, MgFe2O4 and Ca0.5Mg0.5Fe2O4 nanoparticles (NPs) were synthetized and served as additives to boost H2 form from DF. H2 productivity gradually increased with the rise of NPs, and declined when NPs exceeded their optimal dosages. The highest H2 yield was 183.6 ± 3.2 mL/g glucose at 100 mg/L of MgFe2O4 NPs, being 35.2 % higher than that of the control yield (135.8 ± 3.1 mL/g glucose). However, the highest H2 yield of 171.9 ± 2.5 mL/g glucose occurred at 400 mg/L of Ca0.5Mg0.5Fe2O4 NPs, increasing by 26.6 % over the control. Interestingly, the two NPs favored the butyric acid pathway for H2 synthesis. This provides guidance for multi-element oxide NPs used in DF.


Subject(s)
Calcium Compounds , Calcium , Ferric Compounds , Magnesium Compounds , Nanoparticles , Calcium/metabolism , Magnesium , Fermentation , Glucose , Hydrogen/metabolism
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