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1.
Mikrochim Acta ; 191(6): 362, 2024 06 01.
Article in English | MEDLINE | ID: mdl-38822867

ABSTRACT

Rapid and accurate in situ determination of dopamine is of great significance in the study of neurological diseases. In this work, poly (3,4-ethylenedioxythiophene): poly (styrenesulfonic acid) (PEDOT: PSS)/graphene oxide (GO) fibers were fabricated by an effective method based on microfluidic wet spinning technology. The composite microfibers with stratified and dense arrangement were continuously prepared by injecting PEDOT: PSS and GO dispersion solutions into a microfluidic chip. PEDOT: PSS/GO fiber microelectrodes with high electrochemical activity and enhanced electrochemical oxidation activity of dopamine were constructed by controlling the structure composition of the microfibers with varying flow rate. The fabricated fiber microelectrode had a low detection limit (4.56 nM) and wide detection range (0.01-8.0 µM) for dopamine detection with excellent stability, repeatability, and reproducibility. In addition, the PEDOT: PSS/GO fiber microelectrode prepared was successfully used for the detection of dopamine in human serum and PC12 cells. The strategy for the fabrication of multi-component fiber microelectrodes is a new and effective approach for monitoring the intercellular neurotransmitter dopamine and has high potential as an implantable neural microelectrode.


Subject(s)
Dopamine , Graphite , Microelectrodes , Polystyrenes , PC12 Cells , Dopamine/blood , Humans , Rats , Animals , Polystyrenes/chemistry , Graphite/chemistry , Limit of Detection , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Microfluidic Analytical Techniques/instrumentation , Microfluidic Analytical Techniques/methods , Bridged Bicyclo Compounds, Heterocyclic/chemistry , Thiophenes/chemistry , Lab-On-A-Chip Devices , Polymers
2.
PLoS One ; 19(6): e0304686, 2024.
Article in English | MEDLINE | ID: mdl-38837998

ABSTRACT

Microplastics, which are tiny plastic particles less than 5 mm in diameter, are widely present in the environment, have become a serious threat to aquatic life and human health, potentially causing ecosystem disorders and health problems. The present study aimed to investigate the effects of microplastics, specifically microplastics-polystyrene (MPs-PS), on the structural integrity, gene expression related to tight junctions, and gut microbiota in mice. A total of 24 Kunming mice aged 30 days were randomly assigned into four groups: control male (CM), control female (CF), PS-exposed male (PSM), and PS-exposed female (PSF)(n = 6). There were significant differences in villus height, width, intestinal surface area, and villus height to crypt depth ratio (V/C) between the PS group and the control group(C) (p <0.05). Gene expression analysis demonstrated the downregulation of Claudin-1, Claudin-2, Claudin-15, and Occludin, in both duodenum and jejunum of the PS group (p < 0.05). Analysis of microbial species using 16S rRNA sequencing indicated decreased diversity in the PSF group, as well as reduced diversity in the PSM group at various taxonomic levels. Beta diversity analysis showed a significant difference in gut microbiota distribution between the PS-exposed and C groups (R2 = 0.113, p<0.01), with this difference being more pronounced among females exposed to MPs-PS. KEGG analysis revealed enrichment of differential microbiota mainly involved in seven signaling pathways, such as nucleotide metabolism(p<0.05). The relative abundance ratio of transcriptional pathways was significantly increased for the PSF group (p<0.01), while excretory system pathways were for PSM group(p<0.05). Overall findings suggest that MPs-PS exhibit a notable sex-dependent impact on mouse gut microbiota, with a stronger effect observed among females; reduced expression of tight junction genes may be associated with dysbiosis, particularly elevated levels of Prevotellaceae.


Subject(s)
Gastrointestinal Microbiome , Microplastics , Polystyrenes , Tight Junctions , Animals , Gastrointestinal Microbiome/drug effects , Microplastics/toxicity , Polystyrenes/toxicity , Mice , Male , Female , Tight Junctions/drug effects , Tight Junctions/metabolism , RNA, Ribosomal, 16S/genetics , Intestinal Mucosa/drug effects , Intestinal Mucosa/metabolism , Intestinal Mucosa/microbiology , Occludin/metabolism , Occludin/genetics , Claudins/genetics , Claudins/metabolism , Claudin-1/genetics , Claudin-1/metabolism , Tight Junction Proteins/metabolism , Tight Junction Proteins/genetics
3.
Environ Geochem Health ; 46(7): 238, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38849627

ABSTRACT

Microplastics (MPs) are defined as plastic particles or fragments with a diameter of less than 5 mm. These particles have been identified as causing male reproductive toxicity, although the precise mechanism behind this association is yet to be fully understood. Recent research has found that exposure to polystyrene microplastics (PS-MPs) can disrupt spermatogenesis by impacting the integrity of the blood-testis barrier (BTB), a formidable barrier within mammalian blood tissues. The BTB safeguards germ cells from harmful substances and infiltration by immune cells. However, the disruption of the BTB leads to the entry of environmental pollutants and immune cells into the seminiferous tubules, resulting in adverse reproductive effects. Additionally, PS-MPs induce reproductive damage by generating oxidative stress, inflammation, autophagy, and alterations in the composition of intestinal flora. Despite these findings, the precise mechanism by which PS-MPs disrupt the BTB remains inconclusive, necessitating further investigation into the underlying processes. This review aims to enhance our understanding of the pernicious effects of PS-MP exposure on the BTB and explore potential mechanisms to offer novel perspectives on BTB damage caused by PS-MPs.


Subject(s)
Blood-Testis Barrier , Microplastics , Polystyrenes , Microplastics/toxicity , Polystyrenes/toxicity , Male , Humans , Blood-Testis Barrier/drug effects , Animals , Spermatogenesis/drug effects , Oxidative Stress/drug effects , Environmental Pollutants/toxicity
4.
Methods Mol Biol ; 2796: 73-86, 2024.
Article in English | MEDLINE | ID: mdl-38856895

ABSTRACT

Structural studies require the production of target proteins in large quantities and with a high degree of purity. For membrane proteins, the bottleneck in determining their structure is the extraction of the target protein from the cell membranes. A detergent that improperly mimics the hydrophobic environment of the protein of interest can also significantly alter its structure. Recently, using lipodiscs with styrene-maleic acid (SMA), copolymers became a promising strategy for the purification of membrane proteins. Here, we describe in detail the one-step affinity purification of potassium ion channels solubilized in SMA and sample preparation for future structural studies.


Subject(s)
Maleates , Polystyrenes , Potassium Channels , Maleates/chemistry , Potassium Channels/chemistry , Potassium Channels/metabolism , Polystyrenes/chemistry , Chromatography, Affinity/methods , Styrene/chemistry , Polymers/chemistry , Detergents/chemistry , Humans
5.
Environ Microbiol Rep ; 16(3): e13302, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38852938

ABSTRACT

Boreal freshwaters go through four seasons, however, studies about the decomposition of terrestrial and plastic compounds often focus only on summer. We compared microbial decomposition of 13C-polyethylene, 13C-polystyrene, and 13C-plant litter (Typha latifolia) by determining the biochemical fate of the substrate carbon and identified the microbial decomposer taxa in humic lake waters in four seasons. For the first time, the annual decomposition rate including separated seasonal variation was calculated for microplastics and plant litter in the freshwater system. Polyethylene decomposition was not detected, whereas polystyrene and plant litter were degraded in all seasons. In winter, decomposition rates of polystyrene and plant litter were fivefold and fourfold slower than in summer, respectively. Carbon from each substrate was mainly respired in all seasons. Plant litter was utilized efficiently by various microbial groups, whereas polystyrene decomposition was limited to Alpha- and Gammaproteobacteria. The decomposition was not restricted only to the growth season, highlighting that the decomposition of both labile organic matter and extremely recalcitrant microplastics continues throughout the seasons.


Subject(s)
Biodegradation, Environmental , Lakes , Microbiota , Seasons , Lakes/microbiology , Lakes/chemistry , Plastics/metabolism , Plastics/chemistry , Bacteria/metabolism , Bacteria/classification , Bacteria/genetics , Bacteria/isolation & purification , Humic Substances/analysis , Typhaceae/microbiology , Typhaceae/metabolism , Typhaceae/chemistry , Microplastics/metabolism , Polyethylene/metabolism , Polyethylene/chemistry , Carbon/metabolism , Polystyrenes/chemistry , Polystyrenes/metabolism
6.
Environ Geochem Health ; 46(6): 185, 2024 May 02.
Article in English | MEDLINE | ID: mdl-38695908

ABSTRACT

Microplastics (MPs), as emerging contaminants, usually experience aging processes in natural environments and further affect their interactions with coexisted contaminants, resulting in unpredictable ecological risks. Herein, the effect of MPs aging on their adsorption for coexisting antibiotics and their joint biotoxicity have been investigated. Results showed that the adsorption capacity of aged polystyrene (PS, 100 d and 50 d) for ciprofloxacin (CIP) was 1.10-4.09 times higher than virgin PS due to the larger BET surface area and increased oxygen-containing functional groups of aged PS. Following the increased adsorption capacity of aged PS, the joint toxicity of aged PS and CIP to Shewanella Oneidensis MR-1 (MR-1) was 1.03-1.34 times higher than virgin PS and CIP. Combined with the adsorption process, CIP posed higher toxicity to MR-1 compared to aged PS due to the rapid adsorption of aged PS for CIP in the first 12 h. After that, the adsorption process tended to be gentle and hence the joint toxicity to MR-1 was gradually dominated by aged PS. A similar transformation between the adsorption rate and the joint toxicity of PS and CIP was observed under different conditions. This study supplied a novel perception of the synergistic effects of PS aging and CIP on ecological health.


Subject(s)
Ciprofloxacin , Polystyrenes , Shewanella , Ciprofloxacin/chemistry , Ciprofloxacin/toxicity , Polystyrenes/toxicity , Polystyrenes/chemistry , Adsorption , Shewanella/drug effects , Microplastics/toxicity , Microplastics/chemistry , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/toxicity , Water Pollutants, Chemical/toxicity , Water Pollutants, Chemical/chemistry
7.
Aquat Toxicol ; 271: 106934, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38728926

ABSTRACT

Microplastics (MP) and antibiotics coexist in the environment and their combined exposure represents a source of increasing concern. MP may act as carriers of antibiotics because of their sorption capacity. Knowledge of the interactions between them may help improve understanding of their migration and transformation. In this work, the adsorption behaviour of a group of sulfonamides and their acetylated metabolites on different sizes of polyamide (PA) and polystyrene (PS) MP were investigated and compared. Sulfonamides were adsorbed on both MP (qmax up to 0.699 and 0.184 mg/g, for PA and PS, respectively) fitting to a linear isotherm model (R2 > 0.835). A low particle size and an acidic and salinity medium significantly enhances the adsorption capacity of sulfonamides (i.e. removal of sulfamethoxazole increased from 8 % onto 3 mm PA pellets to 80 % onto 50 mm of PA pellets). According to characterization results, adsorption mechanism is explained by pore filling and hydrogen bonds (for PA) and hydrophobic interactions (for PS). After adsorption, surface area was increased in both MP as result of a potential ageing of the particles and the intensity of XRD peaks was higher denoting a MP structure more amorphized. Metabolites were adsorbed more efficiently than their parent compounds on PS while the opposite effect was observed on PA explained by the acetylation of the amine group and, subsequently the reduction of hydrogen bond interactions. Although the dissolved organic matter inhibits sulfonamides adsorption, removal up to 65.2 % in effluent wastewater and up to 72.1 % in surface water were observed in experiments using real matrices denoting the role of MP as vectors of sulfonamide antibiotics in aquatic media.


Subject(s)
Anti-Bacterial Agents , Microplastics , Nylons , Polystyrenes , Sulfonamides , Water Pollutants, Chemical , Water Pollutants, Chemical/chemistry , Polystyrenes/chemistry , Adsorption , Anti-Bacterial Agents/chemistry , Sulfonamides/chemistry , Nylons/chemistry , Microplastics/chemistry , Particle Size
8.
J Nanobiotechnology ; 22(1): 262, 2024 May 17.
Article in English | MEDLINE | ID: mdl-38760823

ABSTRACT

BACKGROUND: Nanoplastics, are emerging pollutants, present a potential hazard to food security and human health. Titanium dioxide nanoparticles (Nano-TiO2), serving as nano-fertilizer in agriculture, may be important in alleviating polystyrene nanoplastics (PSNPs) toxicity. RESULTS: Here, we performed transcriptomic, metabolomic and physiological analyzes to identify the role of Nano-TiO2 in regulating the metabolic processes in PSNPs-stressed maize seedlings (Zea mays L.). The growth inhibition by PSNPs stress was partially relieved by Nano-TiO2. Furthermore, when considering the outcomes obtained from RNA-seq, enzyme activity, and metabolite content analyses, it becomes evident that Nano-TiO2 significantly enhance carbon and nitrogen metabolism levels in plants. In comparison to plants that were not subjected to Nano-TiO2, plants exposed to Nano-TiO2 exhibited enhanced capabilities in maintaining higher rates of photosynthesis, sucrose synthesis, nitrogen assimilation, and protein synthesis under stressful conditions. Meanwhile, Nano-TiO2 alleviated the oxidative damage by modulating the antioxidant systems. Interestingly, we also found that Nano-TiO2 significantly enhanced the endogenous melatonin levels in maize seedlings. P-chlorophenylalanine (p-CPA, a melatonin synthesis inhibitor) declined Nano-TiO2-induced PSNPs tolerance. CONCLUSIONS: Taken together, our data show that melatonin is involved in Nano-TiO2-induced growth promotion in maize through the regulation of carbon and nitrogen metabolism.


Subject(s)
Carbon , Melatonin , Nitrogen , Polystyrenes , Titanium , Zea mays , Zea mays/drug effects , Zea mays/metabolism , Zea mays/growth & development , Titanium/pharmacology , Nitrogen/metabolism , Carbon/metabolism , Melatonin/pharmacology , Polystyrenes/pharmacology , Seedlings/drug effects , Seedlings/metabolism , Seedlings/growth & development , Nanoparticles/chemistry , Signal Transduction/drug effects , Photosynthesis/drug effects , Oxidative Stress/drug effects
9.
ACS Appl Mater Interfaces ; 16(20): 25740-25756, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38722759

ABSTRACT

Micro- and nano-plastics (NPs) are found in human milk, blood, tissues, and organs and associate with aberrant health outcomes including inflammation, genotoxicity, developmental disorders, onset of chronic diseases, and autoimmune disorders. Yet, interfacial interactions between plastics and biomolecular systems remain underexplored. Here, we have examined experimentally, in vitro, in vivo, and by computation, the impact of polystyrene (PS) NPs on a host of biomolecular systems and assemblies. Our results reveal that PS NPs essentially abolished the helix-content of the milk protein ß-lactoglobulin (BLG) in a dose-dependent manner. Helix loss is corelated with the near stoichiometric formation of ß-sheet elements in the protein. Structural alterations in BLG are also likely responsible for the nanoparticle-dependent attrition in binding affinity and weaker on-rate constant of retinol, its physiological ligand (compromising its nutritional role). PS NP-driven helix-to-sheet conversion was also observed in the amyloid-forming trajectory of hen egg-white lysozyme (accelerated fibril formation and reduced helical content in fibrils). Caenorhabditis elegans exposed to PS NPs exhibited a decrease in the fluorescence of green fluorescent protein-tagged dopaminergic neurons and locomotory deficits (akin to the neurotoxin paraquat exposure). Finally, in silico analyses revealed that the most favorable PS/BLG docking score and binding energies corresponded to a pose near the hydrophobic ligand binding pocket (calyx) of the protein where the NP fragment was found to make nonpolar contacts with side-chain residues via the hydrophobic effect and van der Waals forces, compromising side chain/retinol contacts. Binding energetics indicate that PS/BLG interactions destabilize the binding of retinol to the protein and can potentially displace retinol from the calyx region of BLG, thereby impairing its biological function. Collectively, the experimental and high-resolution in silico data provide new insights into the mechanism(s) by which PS NPs corrupt the bimolecular structure and function, induce amyloidosis and onset neuronal injury, and drive aberrant physiological and behavioral outcomes.


Subject(s)
Caenorhabditis elegans , Lactoglobulins , Muramidase , Animals , Muramidase/chemistry , Muramidase/metabolism , Lactoglobulins/chemistry , Lactoglobulins/metabolism , Caenorhabditis elegans/metabolism , Polystyrenes/chemistry , Nanoparticles/chemistry , Vitamin A/chemistry , Vitamin A/metabolism , Humans , Homeostasis/drug effects , Plastics/chemistry
10.
ACS Appl Mater Interfaces ; 16(20): 25977-25993, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38741563

ABSTRACT

Environmental pollution with plastic polymers has become a global problem, leaving no continent and habitat unaffected. Plastic waste is broken down into smaller parts by environmental factors, which generate micro- and nanoplastic particles (MNPPs), ultimately ending up in the human food chain. Before entering the human body, MNPPs make their first contact with saliva in the human mouth. However, it is unknown what proteins attach to plastic particles and whether such protein corona formation is affected by the particle's biophysical properties. To this end, we employed polystyrene MNPPs of two different sizes and three different charges and incubated them individually with saliva donated by healthy human volunteers. Particle zeta potential and size analyses were performed using dynamic light scattering complemented by nanoliquid chromatography high-resolution mass spectrometry (nLC/HRMS) to qualitatively and quantitatively reveal the protein soft and hard corona for each particle type. Notably, protein profiles and relative quantities were dictated by plastic particle size and charge, which in turn affected their hydrodynamic size, polydispersity, and zeta potential. Strikingly, we provide evidence of the latter to be dynamic processes depending on exposure times. Smaller particles seemed to be more reactive with the surrounding proteins, and cultures of the particles with five different cell lines (HeLa, HEK293, A549, HepG2, and HaCaT) indicated protein corona effects on cellular metabolic activity and genotoxicity. In summary, our data suggest nanoplastic size and surface chemistry dictate the decoration by human saliva proteins, with important implications for MNPP uptake in humans.


Subject(s)
Particle Size , Polystyrenes , Saliva , Salivary Proteins and Peptides , Surface Properties , Humans , Saliva/chemistry , Saliva/metabolism , Salivary Proteins and Peptides/chemistry , Salivary Proteins and Peptides/metabolism , Polystyrenes/chemistry , Protein Corona/chemistry , Protein Corona/metabolism , Nanoparticles/chemistry , Microplastics/chemistry
11.
Chemosphere ; 358: 142215, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38701865

ABSTRACT

The existence of microplastics (MPs) in water is a significant global concern since they have the potential to pose a threat to human health. Therefore, there is a need to develop a sustainable treatment technology for MPs removal, as the conventional methods are inadequate to address this problem. Coagulation is a typical process in treatment plants that can capture MPs before releasing them into the environment. In this work, the removal behaviors of polyamide (PA), polystyrene (PS), and polyethylene (PE) MPs were systematically investigated through coagulation processes using aluminum sulfate (Al2(SO4)3) and Moringa oleifera (MO) seeds extract. Subsequently, the coagulation performance of Al2(SO4)3 was improved by the separate addition of anionic polyacrylamide (APAM) and naturally derived MO. Results showed that Al2(SO4)3 in combination with APAM had better performance than Al2(SO4)3 or MO alone. In the Al2(SO4)3+APAM system, the removal efficiencies were 93.47%, 81.25%, and 29.48% for PA, PS, and PE MPs, respectively. Furthermore, the effectiveness of the Al2(SO4)3 and MO blended system was approximately similar to the Al2(SO4)3+APAM system. However, the required amount of Al2(SO4)3 was decreased to 50% in the Al2(SO4)3+MO system compared to the optimal dosage in the Al2(SO4)3 system alone. The combination of 40 mg/L of Al2(SO4)3 and 60 mg/L of MO resulted in removal efficiencies of 92.99%, 80.48%, and 28.94% for PA, PS, and PE MPs, respectively. The high efficacy of these enhanced methods was due to the synergic effects of charge neutralization and agglomeration adsorption, which were validated through zeta potential assessments and visual analysis using scanning electron microscopy (SEM) images. In the case of experimental conditions, initial pH had little impact on removal efficiency, while NaCl salinity and stirring speed directly affected MPs removal. Consequently, this research took a step toward finding a green strategy to remove MPs from water systems.


Subject(s)
Acrylic Resins , Microplastics , Water Pollutants, Chemical , Water Purification , Water Pollutants, Chemical/chemistry , Acrylic Resins/chemistry , Water Purification/methods , Moringa oleifera/chemistry , Anions/chemistry , Adsorption , Polystyrenes/chemistry
12.
Chemosphere ; 358: 142165, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38704048

ABSTRACT

Expanded polystyrene (EPS) plastic is widely used because of its low density and lightweight properties, enabling it to float on water and increase its exposure to sunlight. In this study, we simulated the photoaging process of flame retardant-added EPS (FR-EPS) and common original EPS (OR-EPS) microplastic (MP) particles with and without methyl octabromoether flame retardant (MOBE) in the laboratory to explore the effect of MOBE on the photodegradation of EPS. Results showed that MOBE accelerated size reduction and surface hole formation on the particles, hastening the shedding and replacement of particle surfaces. FR-EPS particles exhibited a weight loss exceeding that of OR-EPS, reaching 40.85 ± 3.72% after 36 days of irradiation. Moreover, rapid physical peeling of the FR-EPS surface was accompanied by continuous chemical oxidation and fluctuations of the carbonyl index and O/C ratio. A diffusion model based on Fick's second law fitted well for the concentration of MOBE remaining in FR-EPS particles. MOBE's sensitivity to direct photochemical reactions inhibited the early-stage photoaging of EPS MP particles by competing for photons. However, MOBE as chromophores could absorb photons and produce •OH to promote the aging of EPS. Moreover, the capacity of EPS to absorb light energy also accelerated MOBE degradation. These findings suggested that the photoaging behavior of commercial EPS products containing flame retardants in the environment is quite different from that of pure EPS, indicating that additive-plastic interactions significantly alter MP fate and environmental risks.


Subject(s)
Flame Retardants , Microplastics , Polystyrenes , Polystyrenes/chemistry , Microplastics/chemistry , Photolysis , Plastics/chemistry
13.
Chemosphere ; 358: 142220, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38710410

ABSTRACT

Microplastics have become a prevalent environmental pollutant due to widespread release and production. Algae, as primary producers, play a crucial role in maintaining the ecological balance of freshwater environments. Despite reports on the inhibition of microalgae by microplastics, the size-dependent effects on microalgae and associated molecular mechanism remain poorly understood. This study investigates the impacts of three polystyrene micro/nano-plastics (PS-MNPs) with different sizes (100 nm, 350 nm, and 6 µm) and concentrations (25-200 mg/L) on Chlamydomonas reinhardtii (C. reinhardtii) throughout its growth period. Results reveal size- and concentration-dependent growth inhibition and induction of oxidative stress by PS-MNPs, with microalgae exhibiting increased vulnerability to smaller-sized and higher-concentration PS-MNPs. Proteomics analysis elucidates the size-dependent suppression of proteins involved in the photosynthesis process by PS-MNPs. Photosynthetic activity assays demonstrate that smaller PS-MNPs more significantly reduce chlorophyll content and the maximal photochemical efficiency of photosystem II. Finally, electron microscope and Western blot assays collectively confirm the size effect of PS-MNPs on microalgae growth is attributable to suppressed protein expression rather than shading effects. This study contributes to advancing our understanding of the intricate interactions between micro/nano-plastics and algae at the molecular level, emphasizing the efficacy of proteomics in dissecting the mechanistic aspects of microplastics-induced biological effects on environmental indicator organisms.


Subject(s)
Chlamydomonas reinhardtii , Microplastics , Photosynthesis , Polystyrenes , Proteomics , Chlamydomonas reinhardtii/drug effects , Chlamydomonas reinhardtii/metabolism , Chlamydomonas reinhardtii/growth & development , Polystyrenes/toxicity , Polystyrenes/chemistry , Microplastics/toxicity , Photosynthesis/drug effects , Oxidative Stress/drug effects , Chlorophyll/metabolism , Water Pollutants, Chemical/toxicity , Microalgae/drug effects , Plastics/toxicity , Particle Size , Photosystem II Protein Complex/metabolism
14.
Chemosphere ; 358: 142275, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38719125

ABSTRACT

Microplastics (MPs) are widespread environmental contaminants that have been detected in animals and humans. However, their toxic effects on terrestrial mammals and the underlying mechanisms are still not well understood. Herein, we explored the role of gut microbiota in mediating the toxicity of micro- and nano-sized polystyrene plastics (PS-MPs/PS-NPs) using an antibiotic depleted mice model. The results showed that PS-MPs and PS-NPs exposure disrupted the composition and structure of the gut microbiota. Specifically, these particles led to an increase in pathogenic Esherichia-shigella, while depleting probiotics such as Akkermansia and Lactobacillus. Comparatively, PS-NPs particles had more pronounced effect, leading to obviously shifted the colon transcriptional profiles characterized by inducing the enrichment of colon metabolism and immune-related pathways (i.e., upregulated in genes like udgh, ugt1a1, ugt1a6a, ugt1a7c and ugt2b34). Additionally, both PS-MPs and PS-NPs induced oxidative stress, gut-liver damage and systemic inflammation in mice. Mechanistically, we confirmed that PS particles disturbed gut microbiota, activating TLR2-My88-NF-κB pathway to trigger the release of inflammatory cytokine IL-1ß and TNF-α. The damage and inflammation caused by both size of PS particles was alleviated when the gut microbiota was depleted. In conclusion, our findings deepen the understanding of the molecule mechanisms by which gut microbiota mediate the toxicity of PS particles, informing health implications of MPs pollution.


Subject(s)
Gastrointestinal Microbiome , Microplastics , Polystyrenes , Animals , Gastrointestinal Microbiome/drug effects , Polystyrenes/toxicity , Mice , Microplastics/toxicity , Nanoparticles/toxicity , Nanoparticles/chemistry , Oxidative Stress/drug effects , Particle Size , Inflammation/chemically induced , Environmental Pollutants/toxicity , Male , NF-kappa B/metabolism
15.
Environ Sci Technol ; 58(20): 8878-8888, 2024 May 21.
Article in English | MEDLINE | ID: mdl-38733558

ABSTRACT

Particulate contaminants, such as microplastics (1 µm to 5 mm) and nanoplastics (<1 µm), are disseminated in many terrestrial environments. However, it is still unclear how particles' properties drive their mobility through soils and aquifers due to (i) poor environmental relevance of the model particles that are studied (e.g., spherical and monodisperse) and (ii) the use of packed bed experiments which do not allow a direct observation of deposition dynamics. Using transparent 2D porous media, this study analyzes deposition dynamics of rough polystyrene fragments with irregular shapes and with a size continuum (≈10 nm to 5 µm). Using in situ and ex situ measurements, particle deposition as a function of size was monitored over time under repulsive conditions. In the absence of natural organic matter (NOM), micrometric particles rapidly deposit and promote the physical interception of smaller nanoparticles by creating local porous roughness or obstacles. In the presence of NOM, differences according to particle size were no longer observed, and all fragments were more prone to being re-entrained, thereby limiting the growth of deposits. This work demonstrates the importance of pore surface roughness and porosity of the pore surface for the deposition of colloidal particles, such as microplastics and nanoplastics, under repulsive conditions.


Subject(s)
Microplastics , Particle Size , Nanoparticles/chemistry , Porosity , Polystyrenes/chemistry
16.
Environ Sci Process Impacts ; 26(5): 882-890, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38693902

ABSTRACT

Microplastics can function as carriers in the environment, absorbing various toxins and spreading to diverse ecosystems. Toxins accumulated in microplastics have the potential to be re-released, posing a threat. In this study, two typical plastics, namely polyethylene (PE) and polystyrene (PS), along with the degradable plastic poly(butylene adipate-co-terephthalate) (PBAT), were subjected to a long-term ultraviolet alternating weathering experiment. The study investigated the variations in the weathering process and pollutant adsorption of microplastics of different particle sizes. Furthermore, the adsorption capacity of microplastics for various pollutants was assessed. The findings indicate that particle size significantly influences weathering, leading to variations in adsorption capacity. The weathered PE displays a higher adsorption capacity for azo dyes. Additionally, the adsorption capacity of PBAT for neutral red is double that of antibiotics. Importantly, the maximum adsorption capacity of PBAT for pollutants after aging is approximately 10 times greater than that of PE. Consequently, degradable plastics undergoing weathering in the natural environment may pose a higher ecological risk than traditional plastics.


Subject(s)
Microplastics , Water Pollutants, Chemical , Microplastics/chemistry , Adsorption , Water Pollutants, Chemical/analysis , Water Pollutants, Chemical/chemistry , Polyethylene/chemistry , Environmental Monitoring , Plastics/chemistry , Models, Chemical , Polystyrenes/chemistry , Weather
17.
Int J Mol Sci ; 25(9)2024 May 02.
Article in English | MEDLINE | ID: mdl-38732183

ABSTRACT

The impact of microplastics (MPs) on the metabolic functions of the liver is currently unclear and not completely understood. To investigate the effects of the administration of MPs on the hepatic metabolism of normal and obese mice, alterations in the lipid, glucose (Glu), and amino acid regulation pathways were analyzed in the liver and adipose tissues of C57BL/6Korl (wild type, WT) or C57BL/6-Lepem1hwl/Korl mice (leptin knockout, Lep KO) orally administered polystyrene (PS) MPs for 9 weeks. Significant alterations in the lipid accumulation, adipogenesis, lipogenesis, and lipolysis pathways were detected in the liver tissue of MP-treated WT and Lep KO mice compared to the vehicle-treated group. These alterations in their liver tissues were accompanied by an upregulation of the serum lipid profile, as well as alterations in the adipogenesis, lipogenesis, and lipolysis pathways in the adipose tissues of MP-treated WT and Lep KO mice. Specifically, the level of leptin was increased in the adipose tissues of MP-treated WT mice without any change in their food intake. Also, MP-induced disruptions in the glycogenolysis, Glu transporter type 4 (GLUT4)-5' AMP-activated protein kinase (AMPK) signaling pathway, levels of lipid intermediates, and the insulin resistance of the liver tissues of WT and Lep KO mice were observed. Furthermore, the levels of seven endogenous metabolites were remarkably changed in the serum of WT and Lep KO mice after MP administrations. Finally, the impact of the MP administration observed in both types of mice was further verified in differentiated 3T3-L1 adipocytes and HepG2 cells. Thus, these results suggest that the oral administration of MPs for 9 weeks may be associated with the disruption of lipid, Glu, and amino acid metabolism in the liver tissue of obese WT and Lep KO mice.


Subject(s)
Amino Acids , Glucose , Lipid Metabolism , Liver , Mice, Inbred C57BL , Mice, Knockout , Microplastics , Polystyrenes , Animals , Liver/metabolism , Liver/drug effects , Mice , Glucose/metabolism , Lipid Metabolism/drug effects , Amino Acids/metabolism , Administration, Oral , Leptin/metabolism , Adipose Tissue/metabolism , Adipose Tissue/drug effects , Adipogenesis/drug effects , Male , Lipogenesis/drug effects , Obesity/metabolism , Obesity/etiology , Obesity/genetics , Humans , Lipolysis/drug effects
18.
Int J Mol Sci ; 25(9)2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38731941

ABSTRACT

Micro- and nanoplastic particles, including common forms like polyethylene and polystyrene, have been identified as relevant pollutants, potentially causing health problems in living organisms. The mechanisms at the cellular level largely remain to be elucidated. This study aims to visualize nanoplastics in bronchial smooth muscle (BSMC) and small airway epithelial cells (SAEC), and to assess the impact on mitochondrial metabolism. Healthy and asthmatic human BSMC and SAEC in vitro cultures were stimulated with polystyrene nanoplastics (PS-NPs) of 25 or 50 nm size, for 1 or 24 h. Live cell, label-free imaging by holotomography microscopy and mitochondrial respiration and glycolysis assessment were performed. Furthermore, 25 and 50 nm NPs were shown to penetrate SAEC, along with healthy and diseased BSMC, and they impaired bioenergetics and induce mitochondrial dysfunction compared to cells not treated with NPs, including changes in oxygen consumption rate and extracellular acidification rate. NPs pose a serious threat to human health by penetrating airway tissues and cells, and affecting both oxidative and glycolytic metabolism.


Subject(s)
Bronchi , Epithelial Cells , Mitochondria , Humans , Mitochondria/metabolism , Mitochondria/drug effects , Bronchi/metabolism , Bronchi/cytology , Epithelial Cells/metabolism , Epithelial Cells/drug effects , Glycolysis/drug effects , Nanoparticles , Myocytes, Smooth Muscle/metabolism , Myocytes, Smooth Muscle/drug effects , Cells, Cultured , Polystyrenes , Asthma/metabolism , Asthma/pathology , Muscle, Smooth/metabolism , Microplastics/toxicity , Oxygen Consumption/drug effects
19.
Sci Adv ; 10(22): eadj4370, 2024 May 31.
Article in English | MEDLINE | ID: mdl-38809990

ABSTRACT

Tumor heterogeneity is a primary factor that contributes to treatment failure. Predictive tools, capable of classifying cancer cells based on their functions, may substantially enhance therapy and extend patient life span. The connection between cell biomechanics and cancer cell functions is used here to classify cells through mechanical measurements, via particle uptake. Machine learning (ML) was used to classify cells based on single-cell patterns of uptake of particles with diverse sizes. Three pairs of human cancer cell subpopulations, varied in their level of drug resistance or malignancy, were studied. Cells were allowed to interact with fluorescently labeled polystyrene particles ranging in size from 0.04 to 3.36 µm and analyzed for their uptake patterns using flow cytometry. ML algorithms accurately classified cancer cell subtypes with accuracy rates exceeding 95%. The uptake data were especially advantageous for morphologically similar cell subpopulations. Moreover, the uptake data were found to serve as a form of "normalization" that could reduce variation in repeated experiments.


Subject(s)
Drug Resistance, Neoplasm , Machine Learning , Neoplasms , Humans , Neoplasms/metabolism , Neoplasms/pathology , Neoplasms/drug therapy , Cell Line, Tumor , Particle Size , Algorithms , Polystyrenes/chemistry , Flow Cytometry
20.
Sci Total Environ ; 934: 173399, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38781836

ABSTRACT

Plastic pollution poses a significant threat to terrestrial ecosystems, yet the potential for soil fauna to contribute to plastic biodegradation remains largely unexplored. In this study, we reveal that soil-dwelling grubs, Protaetia brevitarsis larvae, can effectively biodegrade polystyrene (PS) plastics. Over a period of 4 weeks, these grubs achieved a remarkable 61.5 % reduction in PS foam mass. This biodegradation was confirmed by the depolymerization of ingested PS, formation of oxidative functional groups, noticeable chemical modifications, and an increase of δ13C of residual PS in frass. Additionally, antibiotic treatment to suppress gut microbes led to variations in the biodegradation process. PS ingestion induced a significant shift in the gut microbiome, promoting the growth of degradation-related bacteria such as Promicromonosporaceae, Bacillaceae, and Paenibacillaceae. Furthermore, the digestion of plastic triggered extensive metabolomic reprogramming of grubs' intestines, enhancing redox capabilities and facilitating PS biodegradation. These results indicate that responsive adaptation of both the gut microbiome and the host's intestinal metabolism contributes to PS degradation. Collectively, these findings demonstrate P. brevitarsis larvae's capability to alleviate soil plastic pollution, and highlight the potential of researching soil fauna further for sustainable plastic waste management solutions.


Subject(s)
Biodegradation, Environmental , Gastrointestinal Microbiome , Larva , Polystyrenes , Gastrointestinal Microbiome/drug effects , Animals , Soil Pollutants/metabolism , Soil/chemistry , Soil Microbiology
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