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Search Results (492)

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Keywords = trace metal pollutants

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15 pages, 3349 KB  
Review
Impact of Indoor Air Pollution on Occupational Exposure: Rethinking the Major Health Threat for Airport Workers
by Alessia Perna, Adriano Paolucci, Teresa Esposito, Giulia Spernanzoni, Annalisa Bruno, Rosa Maria Russo, Maria Pierdomenico and Massimo Santoro
Life 2026, 16(8), 1242; https://doi.org/10.3390/life16081242 - 27 Jul 2026
Abstract
(1) Background: Airports workers are exposed to a mixture of airborne pollutants generated by aircraft operations, ground support equipment, road traffic, and indoor microenvironments. Indoor air quality, influenced by outdoor pollutant and ventilation dynamics, represents an important, but overlooked determinant of occupational exposure. [...] Read more.
(1) Background: Airports workers are exposed to a mixture of airborne pollutants generated by aircraft operations, ground support equipment, road traffic, and indoor microenvironments. Indoor air quality, influenced by outdoor pollutant and ventilation dynamics, represents an important, but overlooked determinant of occupational exposure. Fine and ultrafine particulate matter (PM) can induce oxidative stress, inflammation, and xenobiotic responses, affecting not only the respiratory system, but also other organs. (2) Methods: This review examines the health effects of occupational exposure among airport workers, with emphasis on indoor air pollution besides aircraft engine emissions. Studies addressing exposure characterization, biological effects, biomarkers, and risk management strategies were critically evaluated. (3) Results: Occupational exposure is driven by both combustion-derived pollutants and indoor–outdoor air exchange processes. Ultrafine particles, black carbon, polycyclic aromatic hydrocarbons, and trace metals contribute to oxidative stress, inflammatory responses, and xenobiotic pathway activation. Monitoring indoor microclimatic parameters, including temperature, atmospheric pressure, and humidity, may facilitate the identification of event-related deterioration in indoor air quality. (4) Conclusions: Indoor air pollution should be recognized as a key component of airport occupational exposure. Integrating indoor/outdoor air quality monitoring and biomarker-based surveillance may improve risk assessment and support more effective protection of airport workers, while advanced predictive tools, including AI-based exposure modelling, represent a promising direction that still requires dedicated validation. Full article
(This article belongs to the Section Epidemiology)
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18 pages, 2966 KB  
Article
Temporal Variations, Source Attributions, and Health Risks of PM2.5-Bound Trace Elements in a Megacity in Central China
by Lulu Zhang, Wenwen Yan, Yan Wang, Pengchu Bai, So Fukaya, Huiqin Zhang, Kewu Pi, Keisuke Fukushi, Seiya Nagao and Ning Tang
Atmosphere 2026, 17(8), 726; https://doi.org/10.3390/atmos17080726 - 26 Jul 2026
Abstract
Trace elements bound to PM2.5 constitute crucial factors increasing human health risks. To optimize health-oriented air quality management strategies for industrial cities, this study monitored major trace elements in PM2.5 in Wuhan, China, from June 2023 to May 2024. During the [...] Read more.
Trace elements bound to PM2.5 constitute crucial factors increasing human health risks. To optimize health-oriented air quality management strategies for industrial cities, this study monitored major trace elements in PM2.5 in Wuhan, China, from June 2023 to May 2024. During the study period, the mean concentration of trace elements was 3290 ± 2270 ng/m3, comprising 93.9% crustal elements and 6.1% heavy metals. The positive matrix factorization model identified fugitive dust as the primary source of trace elements, with a mean contribution of 35.6%, followed by traffic emissions (21.8%), industrial emissions (19.1%), biomass and waste incineration (12.3%), and coal combustion (11.1%). Health risk assessment revealed that the cumulative non-carcinogenic and carcinogenic risks of trace elements via inhalation exposure exceeded acceptable levels for both local children and adults, with Mn, As, and Cr as key risk factors. Although coal combustion contributed less to trace element concentrations than other sources, it was the largest contributor to non-carcinogenic and carcinogenic risks, followed by fugitive dust and traffic emissions. These results suggest that trace element pollution control in Wuhan should prioritize reducing coal combustion emissions, while emphasizing the critical importance of sustained traffic regulation and fugitive dust suppression to improve air quality and protect public health. Full article
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29 pages, 10580 KB  
Article
Spatiotemporal Distribution and Ecological Risks of Trace Metals in a Marine Protected Area of the Northwestern Arabian Gulf
by Turki Al-Said, Surendraraj Alagarsamy, Sabeena Farvin Koduvayur Habeebullah, Ali Al-Hashem, Loreta Fernandes, Amit Sarkar, Yesudhason Poulose, Rakhesh Madhusoodanan, Waleed Al-Zakri and Faiza Al-Yamani
Environments 2026, 13(7), 413; https://doi.org/10.3390/environments13070413 - 22 Jul 2026
Viewed by 247
Abstract
Dissolved bio-essential trace metals (Cu, Zn, Co, Ni, and Fe) in seawater and 17 elements in surface sediments were studied to assess the metal contamination and associated ecological risks in the Sulaibikhat Bay Marine Protected Area (MPA) in the northwestern Arabian Gulf. Dissolved [...] Read more.
Dissolved bio-essential trace metals (Cu, Zn, Co, Ni, and Fe) in seawater and 17 elements in surface sediments were studied to assess the metal contamination and associated ecological risks in the Sulaibikhat Bay Marine Protected Area (MPA) in the northwestern Arabian Gulf. Dissolved metals were mostly at low to moderate levels and within the limits of most international water quality standards. However, dissolved Cu concentrations (0.54 to 4.73 µg L−1) in the MPA stations (MPA-1 and MPA-2) exceeded the Oslo–Paris Convention for the Protection of the Marine Environment of the North-East Atlantic (OSPAR) ecotoxicological assessment thresholds, suggesting possible adverse ecological effects. Sediment showed higher levels of Cd, Cr, Ni, V, Cu, and Zn at stations within the MPA, with Principal Component Analysis (PCA) linking these enrichments to nearby industrial and desalination discharge sources. The calculated enrichment factor (EF) and geoaccumulation index (Igeo) values confirmed moderate to substantial anthropogenic contributions for Cd, Cr, and Ni, while the major lithogenic elements were derived from natural mineralogical inputs. A pollution load index (PLI) > 1 at stations MPA-1, MPA-3 and MPA-4 in Sulaibikhat Bay indicated cumulative metal contamination. Ecological risk assessment criteria classified sediments within the MPA and Sulaibikhat Bay as having a moderate level of ecological risk, with Cd identified as the principal contributor. The toxicological indices, namely mean Effect Range Median Quotient (m-ERM-Q) and mean Probable Effect Level Quotient (m-PEL-Q), indicated a low-to-moderate probability of adverse biological effects due to Cu and Ni exposure in the MPA. In contrast, the reference station in the Kuwait Bay showed very low contamination and negligible ecological risk. These findings stress the need for continuous monitoring and effective source control to protect the ecosystem of this newly established MPA in Kuwait. Full article
(This article belongs to the Section Environmental Pollution, Toxicology and Restoration)
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26 pages, 3174 KB  
Article
Potential Toxic Elements in Farm Soils and Vegetables of Northern Bangladesh: Impact on Soil Health and Human Safety
by Aninda Sarker, Supti Mallick, Minhaj Uddin, Ronzon Chandra Das, Md. Harun Rashid, Md. Shohidul Alam, Quazi Forhad Quadir and Md. Zakir Hossen
J. Xenobiot. 2026, 16(4), 127; https://doi.org/10.3390/jox16040127 - 10 Jul 2026
Viewed by 350
Abstract
Intensive vegetable production can increase the transfer of persistent toxic trace elements from agricultural soils into the food chain, particularly where agrochemical use, irrigation inputs, and local geochemical conditions are insufficiently characterized. This study was undertaken to assess toxic trace-metal contamination levels in [...] Read more.
Intensive vegetable production can increase the transfer of persistent toxic trace elements from agricultural soils into the food chain, particularly where agrochemical use, irrigation inputs, and local geochemical conditions are insufficiently characterized. This study was undertaken to assess toxic trace-metal contamination levels in soils and vegetables from two renowned vegetable-producing subdistricts—Shibganj and Kahaloo—in the Bogra district, Bangladesh. The study also estimated potential human health risks by evaluating the dietary intake of these elements. It measured Pb, Ni, Cd, and Cr content in six vegetables and their respective farm soils using an atomic absorption spectrophotometer (AAS). The average concentrations of Pb, Ni, Cd, and Cr in farm soils of Shibganj and Kahaloo subdistricts were 158.3 ± 8.83, 31.5 ± 5.25, 0.43 ± 0.08, and 14.1 ± 2.16 µg g−1 and 164.1 ± 4.60, 35.7 ± 6.91, 0.53 ± 0.14, and 9.37 ± 2.87 µg g−1, respectively. Soils collected from all locations in both subdistricts of Bogra fall under ‘moderate’ ecological risk. Regarding the pollution load index (PLI), 66.7% of Shibganj and 75.0% of Kahaloo sampling sites had a PLI > 1.0, confirming that ‘metal pollution exists.’ Based on the calculated bioconcentration factors (BCFs), Cr and Cd show a high tendency to migrate from soil to various vegetables in the study area, though the mean Cd BCF for brinjal in Shibganj exceeded 1.0 due to a single high observation. The results demonstrated that the edible parts of potatoes, onions, and chilies accumulate significant amounts of toxic trace elements. The calculated mean daily intake of Pb and Cr in all vegetables ranged from 0.33 to 1.21 mg person−1 day−1 and from 0.10 to 0.64 mg person−1 day−1, respectively, exceeding the upper tolerable intake limits. Similarly, dietary intake of potatoes showed both non-carcinogenic and carcinogenic risks, while brinjal showed only carcinogenic risks for adults. Redundancy analysis (RDA) indicates that the measured soil parameters are strong predictors of the response variables (trace element content in various vegetables). Overall, the results identified Pb-dominated soil contamination and human exposure to Pb and Cr associated with vegetables as the principal concerns. To address these issues, priority actions should be given to source apportionment and testing of various agricultural inputs. Additionally, before implementing site-specific remediation or issuing consumption advisories, these risks should be validated through metal speciation and bioaccessibility analyses. Full article
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22 pages, 6958 KB  
Article
Dynamics of Toxic and Essential Element Transfer in Soil–Plant–Animal Systems Under Industrial Contamination
by Maxat Berdikulov, Karlygash Aubakirova, Olzhas Omirzakov, Vitaliy Krivets, Aigul Omarova, Almira Kuanysh, Assem Axeitova, Ali Zhanbolov, Aliya Alpamys, Madina Bralina, Maozhi Ren, Arvind Kumar Dubey and Zhadyrassyn Nurbekova
Biology 2026, 15(13), 1011; https://doi.org/10.3390/biology15131011 - 25 Jun 2026
Viewed by 370
Abstract
Industrial contamination can influence the transfer of toxic and essential elements through soil–plant–animal systems and may pose risks to food safety. This study aimed to determine whether contamination patterns in soil are reflected in forage vegetation and meat products and to evaluate trace-element [...] Read more.
Industrial contamination can influence the transfer of toxic and essential elements through soil–plant–animal systems and may pose risks to food safety. This study aimed to determine whether contamination patterns in soil are reflected in forage vegetation and meat products and to evaluate trace-element behavior across interconnected components of the soil–plant–animal system. This study assessed the distribution and transfer of 12 elements (As, Be, Cd, Co, Cr, Cu, Hg, Mn, Ni, Pb, V, and Zn) in soil, forage vegetation, and meat products from five industrially affected areas of Central Kazakhstan. Element concentrations were determined by inductively coupled plasma mass spectrometry. Soil contained the highest concentrations of most elements, confirming its role as the primary reservoir of contamination, whereas forage vegetation reflected local pollution patterns. The highest levels of contamination were generally observed in the industrial centers of Temirtau and Zhezkazgan, with Zhezkazgan exhibiting the most distinct element profile. Soil-to-forage transfer was most pronounced for Cd, Cu, Pb, and Zn, with significant positive relationships between soil and forage concentrations (p < 0.001). Meat products generally contained lower element concentrations than soil and forage; however, Cd, Hg, and As exceeded regulatory limits in 23 of 279 samples (8.2%). By integrating environmental and animal-derived matrices within a single framework, this study provides new insight into trace-element transfer pathways and facilitates the identification of priority contaminants, high-risk areas, and livestock products requiring enhanced environmental and food safety monitoring in industrial regions. Full article
(This article belongs to the Special Issue Advances in Ecotoxicology and Environmental Toxicology)
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2 pages, 149 KB  
Abstract
Baseline Elemental Profile of Juvenile Sharks from a Multispecies Nursery Area off West Africa (Sal Rei Bay, Boa Vista Island, Cabo Verde)
by Marta Ramalho, Catarina Caldeira-Santos, Melanie Court, Jaquelino Varela, Bernardo Duarte and Rui Rosa
Proceedings 2026, 146(1), 83; https://doi.org/10.3390/proceedings2026146083 - 22 Jun 2026
Viewed by 167
Abstract
Introduction: Establishing baseline descriptions of inorganic elements in the early life stages of sharks and in their respective nursery areas is essential for assessing anthropogenic impacts and supporting conservation strategies. Objectives: This study presents the first baseline of plasma trace element concentrations (Al, [...] Read more.
Introduction: Establishing baseline descriptions of inorganic elements in the early life stages of sharks and in their respective nursery areas is essential for assessing anthropogenic impacts and supporting conservation strategies. Objectives: This study presents the first baseline of plasma trace element concentrations (Al, Zn, As, Cu, Cr, Cd, Co, Mn, Ti, Ni, Hg, Pb) for four juvenile shark species (Carcharhinus limbatus, Paragaleus pectoralis, Rhizoprionodon acutus, and Sphyrna lewini) from Sal Rei Bay, Boa Vista Island, Cabo Verde—the first multi-species shark nursery area described in Atlantic Africa. Methodology: Seawater and sediment samples were collected from eight sites and analyzed along with plasma samples using total reflection X-ray fluorescence spectroscopy (TXRF). Sediment granulometry and pollution indices, including the enrichment factor (EF), ecological risk index (RI), and metal pollution index (MPI), were used to characterize habitat contamination. Data were analyzed using statistical models to explore spatial and element-specific patterns. Results: Overall, environmental contamination was low, with slight increases in Cd, Co, and Hg at sites 1 and 2, near the fishing port, and at site 5, likely reflecting natural transport, sediment redistribution, and enhanced nearshore deposition. Juvenile sharks exhibited generally low plasma trace element concentrations, although species-specific elemental signatures were evident: elevated levels of Al and Cu in C. limbatus, Zn in S. lewini, and As in R. acutus and P. pectoralis. Conclusions: These findings establish critical baseline reference values for trace elements in juvenile sharks from a key Atlantic nursery area. The results provide an essential framework for future biomonitoring efforts and contribute to the management and conservation of Cabo Verdean shark nursery habitats. Full article
(This article belongs to the Proceedings of The XI Iberian Congress of Ichthyology)
26 pages, 5189 KB  
Article
Hydrological Forcing of Anthropogenic Pulses of Trace Metal Mass Loading in the Santiago River, Mexico
by Aida Alejandra Guerrero de León, Valerie Natalia Salazar-Zepeda, Virgilio Zúñiga-Grajeda, Hasbleidy Palacios-Hinestroza, Walter Ramírez Meda and Jesús Barrera-Rojas
Hydrology 2026, 13(6), 160; https://doi.org/10.3390/hydrology13060160 - 18 Jun 2026
Viewed by 734
Abstract
The Santiago River is a highly anthropogenically impaired lotic system globally, yet the mechanisms governing its contaminant transport remain poorly understood under static monitoring paradigms. This study evaluates how hydrological forcing dictates the mobilization and bioavailability of trace metals by integrating a 15-year [...] Read more.
The Santiago River is a highly anthropogenically impaired lotic system globally, yet the mechanisms governing its contaminant transport remain poorly understood under static monitoring paradigms. This study evaluates how hydrological forcing dictates the mobilization and bioavailability of trace metals by integrating a 15-year public hydrochemical database from 10 monitoring nodes with SAR-derived discharge estimates and thermodynamic metal modeling (PHREEQC). To validate the structural integrity of the mass load estimates against hydrometric uncertainties, a deterministic boundary-sensitivity analysis was conducted. Results empirically refute the classical dilution paradigm, introducing the “Anthropogenic Pulse” to describe the non-linear acceleration of pollutant export during high-flow events (discharge Q surging from 36.62 to 286.13 m3/s). While climate-driven parameters follow seasonal cycles, industrial stressors (COD, Pb, Cd) remain in a chronic steady state, decoupling from volumetric dilution. Based on coupled × CQ × C (discharge × concentration) estimates, this dynamic induces a synchronized flushing of toxic burdens, exporting monthly peak loads exceeding 51,000 kg of Zinc, 6500 kg of Lead, and 3100 kg of Cadmium. Thermodynamic simulations reveal that this hydrological flushing functions as a chemical activator; the seasonal dilution of natural Alkalinity and Hardness suppresses the river’s theoretical buffered pH (from 8.5 to 7.0), maintaining metals in their uncomplexed free-ion states (Me2+). Modeling indicates that nearly 90% of the exported Cadmium remains in this highly labile, toxic form due to a dual coupling with both river Discharge (rs = 0.87) and pH (rs = 0.79). The identification of stochastic arsenic peaks 100 times above regulatory limits at Paso de Guadalupe (RS-08) underscores the failure of concentration-based monitoring. Our findings suggest that restoration strategies should shift toward mass-loading-based regulatory frameworks and targeted sediment management at critical nodes to mitigate the chronic export of bioavailable industrial waste. Full article
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29 pages, 2633 KB  
Article
Managing Post-Phytoremediation Biomass Within a Circular Economy Framework: Multitrophic Ecotoxicological Assessment of Biomass, Derived Biochar and Their Leachable Fractions
by Piotr Cichy, Joanna Kalka, Sebastian Żabczyński, Patrycja Wąsik, Agnieszka Korus, Michał Chabiński and Andrzej Szlęk
Appl. Sci. 2026, 16(12), 6104; https://doi.org/10.3390/app16126104 - 16 Jun 2026
Viewed by 365
Abstract
Phytoremediation is a sustainable approach for the remediation of heavy metal–contaminated soils; however, the management of contaminated biomass generated during this process remains an insufficiently addressed challenge. Such biomass constitutes a secondary waste stream that may release mobile pollutants and pose environmental risks. [...] Read more.
Phytoremediation is a sustainable approach for the remediation of heavy metal–contaminated soils; however, the management of contaminated biomass generated during this process remains an insufficiently addressed challenge. Such biomass constitutes a secondary waste stream that may release mobile pollutants and pose environmental risks. In this study, an integrated ecotoxicological assessment framework was applied to evaluate phytoremediation-derived biomass and its transformation products obtained via pyrolysis. Two types of woody biomass with different heavy metal contents and their corresponding biochars produced at 700 °C were investigated. A multitrophic battery of bioassays combining direct exposure assays using terrestrial organisms (higher plants, Eisenia fetida, and soil microbial activity) with leachate-based assays using aquatic organisms (Lemna minor, Daphnia magna, and Aliivibrio fischeri) was applied. Untreated biomass exhibited high to extreme toxicity in aquatic systems (toxic units, TU >100) and significant phytotoxic effects. Pyrolysis substantially reduced contaminant mobility and ecotoxicity of leachates, resulting in lower toxicity (TU typically <15) and no significant effects on plant growth, earthworm survival, or soil microbial functional diversity. Residual toxicity was linked to elevated pH and trace amounts of thermally generated organic substances. These results demonstrate that pyrolysis effectively reduces the environmental risk of contaminated biomass and supports the use of multitrophic ecotoxicological testing for safe waste valorization within circular economy strategies. Full article
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14 pages, 3019 KB  
Article
Microspectrophotometry and Raman Investigations of the Effects of Hexavalent Chromium on the Photosynthetic and Photoreceptive Apparatus of Euglena gracilis
by Giulia Lorenzetti, Laura Barsanti, Lorenzo Birindelli, Beatrice Campanella, Paolo Gualtieri and Stefano Legnaioli
Appl. Sci. 2026, 16(12), 6078; https://doi.org/10.3390/app16126078 - 16 Jun 2026
Viewed by 361
Abstract
Heavy metals such as copper and zinc serve as essential trace elements for photosynthetic organisms at appropriate concentrations. However, at elevated levels, these metals (along with non-essential metals like chromium, lead, mercury, and cadmium) exert severe toxic effects on aquatic life. Heavy metal [...] Read more.
Heavy metals such as copper and zinc serve as essential trace elements for photosynthetic organisms at appropriate concentrations. However, at elevated levels, these metals (along with non-essential metals like chromium, lead, mercury, and cadmium) exert severe toxic effects on aquatic life. Heavy metal toxicity primarily relates to oxidative damage in living systems through a direct increase in reactive oxygen species (ROS) and reduction in cellular antioxidant capacity. Previous research on algae of different types with different coverings led us to complete the comparative framework. For this purpose and to assess biotechnological potential, we investigated chromium effects on Euglena gracilis, which possesses a unique pellicle covering, to determine whether it could serve as a chromium biosensor or bioremediation agent. Using Raman spectroscopy and absorption microspectrophotometry (MSP), we found that chromium concentrations of up to 500 μM had no effect on Euglena chlorophyll or carotenoid profiles, consistent with the pellicle preventing chromium entry and protecting the photosynthetic apparatus. However, concentrations > 10 μM severely inhibited growth through extracellular interference with essential nutrient utilization (ammonium phosphate and vitamin B12). Growth inhibition was reversible upon transfer to fresh medium, confirming that cellular machinery remained intact. These results suggest that E. gracilis cannot serve as a chromium biosensor (photosynthetic apparatus unaffected) or bioremediation agent (no chromium internalization), but its ability to maintain photosynthetic functionality in chromium-contaminated environments suggests the potential for alternative applications in polluted water biomass production. Full article
(This article belongs to the Section Environmental Sciences)
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24 pages, 9617 KB  
Review
Mechanisms of Copper Stress Response in Plants: Implications for the Medicinal Plant Platycodon grandiflorus
by Chi Liu, Shan Jiang, Junbai Ma, Meitong Pan, WenJing Sun, Denghua Wen, Ruoxi Zhang, Wei Ma and Xiubo Liu
Biology 2026, 15(12), 934; https://doi.org/10.3390/biology15120934 - 15 Jun 2026
Cited by 1 | Viewed by 297
Abstract
Copper is an essential trace element for plant growth; however, in excessive amounts, it can cause severe toxicity by inducing bursts of reactive oxygen species and disrupting metabolic balance. As a root-based medicinal plant and food, Platycodon grandiflorus has its roots in direct [...] Read more.
Copper is an essential trace element for plant growth; however, in excessive amounts, it can cause severe toxicity by inducing bursts of reactive oxygen species and disrupting metabolic balance. As a root-based medicinal plant and food, Platycodon grandiflorus has its roots in direct contact with the soil. Its ability to accumulate copper is the most pronounced among various heavy metals; consequently, it is particularly susceptible to copper stress, which in turn affects its normal growth and medicinal quality. This paper focuses on the intrinsic stress potential and possible response pathways of Platycodon grandiflorus to copper stress. Drawing on existing research and relevant literature, it conducts an integrated analysis of its defence mechanisms across four levels: physical barriers, non-enzymatic antioxidants, conserved physiological and biochemical pathways, and transcriptional regulation. Regarding physical barriers, the cell wall forms the first line of defence through pectin adsorption and lignin deposition; in terms of endogenous antioxidant defence, secondary metabolites such as polysaccharides and saponins can directly participate in the scavenging of reactive oxygen species; regarding conserved pathways, the glutathione–phytochelate system acts in concert with antioxidant enzymes such as SOD and CAT to participate in copper ion chelation and the alleviation of oxidative stress, with hormone signalling regulation also playing a crucial coordinating role in this process; regarding transcriptional regulation, transcription factors such as PgWRKY may mediate the perception of stress signals and the expression of downstream genes. These pathways act in a coordinated and sequential manner, collectively forming a multi-level defence network through which Platycodon grandiflorus responds to copper stress. At the same time, this paper highlights the functional limitations of this defence system, summarises the shortcomings in current research, and proposes directions for future studies, with a view to guiding the safe cultivation and quality assurance of Platycodon grandiflorus in copper-polluted areas, as well as for the breeding of heavy-metal-tolerant medicinal plants. Full article
(This article belongs to the Section Physiology)
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18 pages, 7249 KB  
Article
Atmospheric Deposition of Trace Toxic Metal Elements (TMEs) from Weathering of a Black Shale High Geological Background Areas in the Loushao Basin, Hunan Province, China: Pollution Characteristics and a Health Risk Assessment
by Xinping Deng, Luyuan Chen, Bozhi Ren, Qing Xie, Wei Yin and Zhaoqi Cai
Sustainability 2026, 18(11), 5522; https://doi.org/10.3390/su18115522 - 1 Jun 2026
Viewed by 203
Abstract
This study is based on pollution assessment system and sustainability under a high geological background. The findings from atmospheric deposition research indicate that the exceedance rates for Cd, As, and Hg elements in black shale are 408%, 141%, and 220%, respectively. In atmospheric [...] Read more.
This study is based on pollution assessment system and sustainability under a high geological background. The findings from atmospheric deposition research indicate that the exceedance rates for Cd, As, and Hg elements in black shale are 408%, 141%, and 220%, respectively. In atmospheric deposition, the concentrations of Cd, Hg, and Pb exceed the background values by 2.83, 3.29, and 4.08 times in dry conditions and by 3.6, 4.07, and 3.43 times in wet conditions. The difference between dry and wet deposition primarily reflects the concentration variations of Cd, Hg, and As. The distribution of Cd concentrations exceeding standards is widespread, covering over 71% of the total area, and shows a negative correlation with the enrichment patterns in weathered soils. Source analysis indicates that the contribution rates of PC1 for dry and wet deposition are 84.1% and 80.5%, respectively. This finding reveals that atmospheric deposition is significantly influenced by natural weathering processes, while anthropogenic factors exacerbate the overall pollution levels. The HI values for As, Hg, Pb, and Cr for both adults and children are all greater than 1, with the HI value for Pb in dry deposition reaching 13.5, indicating it poses the most severe health risk to children’s safety. Full article
(This article belongs to the Section Pollution Prevention, Mitigation and Sustainability)
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24 pages, 41139 KB  
Article
Trace Metal Enrichment and Radiological Risk in Coastal Sediments: Implications for Ecological and Human Health Safety
by El Saeed R. Lasheen, Tamader Alhazani, Gehad M. Saleh, Basma A. El-Badry, Mabrouk Sami, Ioan V. Sanislav and Ahmed Abdelaal
Toxics 2026, 14(6), 464; https://doi.org/10.3390/toxics14060464 - 26 May 2026
Cited by 2 | Viewed by 669
Abstract
Coastal environments are becoming more susceptible to enrichment of trace elements from human activities and natural processes. This research presents a detailed assessment of heavy metal pollution and radiological risks in coastal sediments from the Ras Mohamed area, South Sinai, at the northern [...] Read more.
Coastal environments are becoming more susceptible to enrichment of trace elements from human activities and natural processes. This research presents a detailed assessment of heavy metal pollution and radiological risks in coastal sediments from the Ras Mohamed area, South Sinai, at the northern Red Sea. Fifteen surface sediment samples were examined for nine trace metals and naturally occurring radionuclides (226Ra, 232Th, and 40K) using ICP-OES and gamma spectrometry techniques, respectively. Geochemical analyses showed the concentration sequence Fe > Ba > V > Cr > Zn > Co > Ni > Cu > Pb, where average levels of Cr, V, and Co were higher than Canadian Soil Quality Guidelines (CSQGs) and global crustal background values. Environmental evaluation using the pollution load index = 2.16 reflected ongoing contamination, and the Geo-Accumulation Index indicated low to moderate polluted sediment conditions. Nevertheless, ecological risk results (PERI = 87.21) together with toxicity indicators pointed to low to moderate biological effects. Human exposure assessments for adults and children revealed no significant non-carcinogenic risk (HI < 1), and the Total Cancer Risk remained below the acceptable regulatory threshold (1 × 10−4). From the other side, all recorded radiation activities were low, falling below internationally recognized safety limits. An evaluation of radiological hazard indices further confirmed that the sediments present no significant radiation risk, as all measurements remain within the low-level classification of international standards. Overall, the results indicate that although localized sediment transport and tourism-related pressures have increased certain metal levels, the region is radiologically secure and currently presents negligible risk to human health. Full article
(This article belongs to the Section Metals and Radioactive Substances)
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33 pages, 8358 KB  
Article
Multi-Element Composition of Wild Prunus spinosa Fruits Across Contrasting Environments: Implications for Food Safety and Quality
by Andra Ioana Vlad, Szilárd Bartha, Voichița Timiș-Gânsac, Laviniu Ioan Nuțu Burescu, Tunduc Adrian, Mariana Florica Bei, Florin Alexandru Rebrean, Călugăr Anamaria, Petrică Tudor Moțiu and Florin-Dumitru Bora
Foods 2026, 15(10), 1726; https://doi.org/10.3390/foods15101726 - 14 May 2026
Viewed by 510
Abstract
Environmental contamination with potentially toxic elements is a growing concern for ecosystem quality and food safety. This study evaluated the relationships between environmental conditions, anthropogenic activities, and the elemental composition of Prunus spinosa fruits collected from western and central Romania along a pollution [...] Read more.
Environmental contamination with potentially toxic elements is a growing concern for ecosystem quality and food safety. This study evaluated the relationships between environmental conditions, anthropogenic activities, and the elemental composition of Prunus spinosa fruits collected from western and central Romania along a pollution gradient. Eighty samples from ten sites representing non-polluted, agricultural, traffic-exposed, and mining-affected areas were analyzed by ICP-MS after microwave digestion. Fruits from impacted areas showed compositional differences, including lower concentrations of some essential macroelements and higher levels of several trace elements potentially associated with anthropogenic pressure. Increased sodium, aluminum, and silicon contents were consistent with environmental stress and enhanced environmental exposure and possible soil-derived particulate influence, while boron and molybdenum declined with pollution intensity. Elemental patterns were mainly associated with local environmental conditions and appeared consistent with site-specific environmental influences. Food safety assessment indicated generally low to moderate risk depending on sampling origin. Overall, Prunus spinosa fruits showed potential as a bioindicator of environmental quality and a useful tool for monitoring anthropogenic contamination. Full article
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23 pages, 2631 KB  
Article
Efficient Charge Transfer in TiOPc/MoS2 Heterostructure for Dynamically Enhanced SERS Sensing and Photocatalysis
by Muhammad Saleem, Min Li, Shuai Qiu, Muhammad Zahid, Min Li, Chengju Guo, Abdur Rahim, Yuzhi Song and Mei Liu
Molecules 2026, 31(10), 1644; https://doi.org/10.3390/molecules31101644 - 13 May 2026
Viewed by 833
Abstract
Surface-enhanced Raman scattering (SERS) offers exceptional sensitivity for trace contaminant detection; conventional noble-metal substrates suffer from high cost, signal irreproducibility, and poor chemical stability. While semiconductor alternatives are promising, their performance is fundamentally limited by sluggish interfacial charge-transfer kinetics under static band alignment. [...] Read more.
Surface-enhanced Raman scattering (SERS) offers exceptional sensitivity for trace contaminant detection; conventional noble-metal substrates suffer from high cost, signal irreproducibility, and poor chemical stability. While semiconductor alternatives are promising, their performance is fundamentally limited by sluggish interfacial charge-transfer kinetics under static band alignment. To overcome these limitations, we introduced a new strategy centred on a high carrier generation rate (HCGR). By integrating TiOPc, a material that exhibits strong Ti–O bond polarisation and a high HCGR, with atomically thin MoS2, we constructed a hybrid platform that drives efficient charge transfer via HCGR-enabled kinetic pumping, surpassing traditional thermodynamic band engineering. This HCGR-driven efficient CT mechanism primarily amplifies SERS through enhanced chemical mechanisms (CM) with minor electromagnetic contributions, achieving an enhancement factor (EF) of 107. The platform can detect methylene blue (MB) and rhodamine 6G (R6G) at concentrations as low as 10−14 M and 10−13 M, respectively, demonstrating excellent repeatability (RSD = 7.2%) and stability over 60 days. Additionally, efficient CT accelerated MB photodegradation under UV light, achieving complete decomposition within 80 min. The practical applicability of the platform is evidenced by detecting Hg2+ (LOD: 10−11 M) and malachite green in tap/lake water (LODs: 10−12 M/10−10 M). This work establishes HCGR-driven efficient CT as the next generation of semiconductor SERS platforms. It provides a scalable route toward low-cost, reusable sensors for real-time, in situ monitoring of industrial effluents and the dynamic pollutant degradation of pollutants in environmental monitoring. Full article
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14 pages, 2339 KB  
Article
Ultrasensitive, Selectivity Detection of Mercury Ion Using a Novel Localized Surface Plasmon Resonance Biosensor
by Wenyu Xu, Yuanfu Zhang, Yaqi Liu, Lekai Li, Xianfeng Shao, Xinzhi Li, Xueru Chen and Xianxi Zhang
Sensors 2026, 26(10), 2967; https://doi.org/10.3390/s26102967 - 8 May 2026
Viewed by 757
Abstract
Mercury ion, a highly toxic and bioaccumulative heavy metal pollutant, poses significant risks to human health and ecosystems even at trace concentrations. Therefore, the development of highly sensitive and selective analytical methods for mercury ions is critically important to safeguard environmental integrity and [...] Read more.
Mercury ion, a highly toxic and bioaccumulative heavy metal pollutant, poses significant risks to human health and ecosystems even at trace concentrations. Therefore, the development of highly sensitive and selective analytical methods for mercury ions is critically important to safeguard environmental integrity and human health. In this work, 4-mercaptopyridine-functionalized gold nanoparticles (4-MPY-AuNPs) were synthesized and subsequently immobilized onto quartz slides to fabricate a localized surface plasmon resonance (LSPR) sensor. Exploiting the selective coordination interaction between the pyridyl nitrogen atoms of 4-MPY and Hg2+, this LSPR sensor enables highly specific detection of Hg2+. Moreover, injecting a trace amount of 4-mercaptopyridine-functionalized AuNPs into the flow cell triggers the in situ formation of a surface-confined AuNP–Hg2+–AuNP sandwich architecture, thereby enhancing the sensor’s sensitivity. Under the optimized conditions, the proposed method exhibited a linear dynamic range of 1 × 10−9–6 × 10−7 mol L−1, with a correlation coefficient (R2) of 0.9917 and a limit of detection (LOD) of 3.2 × 10−10 mol L−1; the LOD of this method is one order of magnitude lower than the LODs reported in contemporary Hg2+ detection methods. This method exhibits high selectivity, sensitivity, cost-effectiveness, and is label-free, thereby demonstrating significant potential for environmental applications. Full article
(This article belongs to the Section Biosensors)
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