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Keywords = biogenic fabrication

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22 pages, 3121 KB  
Article
The Development of Silver Nanoparticles-Based Colorimetric Uric Acid Detection: An Extension Study of Silver Nanoparticles Extraction from Water Hyacinth (Eichhornia crassipes)
by Fueangfakan Chutrakulwong, Mana Intarasawang and Kheamrutai Thamaphat
Biosensors 2026, 16(8), 409; https://doi.org/10.3390/bios16080409 - 29 Jul 2026
Viewed by 293
Abstract
This work is an extension of our previous work on UV-assisted green synthesis of silver nanoparticles (AgNPs) from water hyacinth leaf extract, which is focused on using their unique biogenic capping layer to mitigate matrix interference in clinical diagnostics. The synthesized AgNPs were [...] Read more.
This work is an extension of our previous work on UV-assisted green synthesis of silver nanoparticles (AgNPs) from water hyacinth leaf extract, which is focused on using their unique biogenic capping layer to mitigate matrix interference in clinical diagnostics. The synthesized AgNPs were evaluated for uric acid (UA) detection and used to fabricate a plasmonic colorimetric biosensing platform. The results show that the biosynthesized AgNPs effectively act as optical signal transducers in an uricase-based enzymatic system, in which the natural capping shield provides excellent electrosteric protection, providing excellent colloidal stability without non-specific aggregation in complex matrices. A linear correlation between absorbance and UA concentration was observed in the range of 100–500 µM (R2 = 0.99). The limit of detection (LOD) calculated by the 3σ/slope approach was 25.89 µM. The sensor showed good repeatability with a relative standard deviation (RSD) below 5%, and stability studies showed that the AgNPs retained more than 90% of their initial response after 14 days. Recovery studies in spiked human serum showed satisfactory accuracy (96.3–103.4%), confirming a high tolerance to endogenous interfering species (e.g., ascorbic acid and glutathione) without pre-purification steps. Importantly, the working range covers clinically relevant uric acid concentrations found in human serum. The obtained results point to the potential of waste-derived green-stabilized AgNPs as a robust plasmonic-based colorimetric biosensing platform for the clinical monitoring of uric acid, successfully combining ecological valorization with high-performance, matrix-tolerant diagnostics. Full article
(This article belongs to the Section Biosensor Materials)
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31 pages, 26954 KB  
Article
Croaker Fish Bone-Derived Hydroxyapatite as a Sustainable Source for 3D-Printed Scaffolds for Bone Regeneration
by Diana Gabriela Nina-Nina, Giovanna de Amorim Grasser, Amanda Sardeli Alqualo, João Paulo dos Santos Prado, Eliandra de Sousa Trichês, Elson Longo, Ana Cláudia Muniz Rennó, Anna Rafaela Cavalcante Braga, Marcelo Assis and Renata Neves Granito
Mar. Drugs 2026, 24(8), 260; https://doi.org/10.3390/md24080260 - 26 Jul 2026
Viewed by 497
Abstract
The use of biogenic hydroxyapatite as a sustainable and bioactive alternative to synthetic ceramics has attracted increasing attention for 3D-printed scaffolds in bone tissue engineering. In this work, calcium alginate-based scaffolds reinforced with commercial (cHA) and biogenic hydroxyapatite (bHA) obtained from croaker fish [...] Read more.
The use of biogenic hydroxyapatite as a sustainable and bioactive alternative to synthetic ceramics has attracted increasing attention for 3D-printed scaffolds in bone tissue engineering. In this work, calcium alginate-based scaffolds reinforced with commercial (cHA) and biogenic hydroxyapatite (bHA) obtained from croaker fish bones (Micropogonias furnieri) were fabricated by 3D printing using hydroxyapatite contents ranging from 10% to 20%. Both hydroxyapatites exhibited hexagonal structures, and all formulations showed rheological behavior suitable for extrusion-based printing. Structural analyses revealed increased diffraction peak intensity with higher hydroxyapatite content, while FTIR spectra showed no significant structural changes. Hydroxyapatite addition increased the compressive modulus, although higher loadings reduced maximum resistance and produced denser, less porous structures. After 14 days in simulated body fluid, scaffolds containing 10% bHA favored apatite deposition, evidenced by increased phosphorus levels. In vitro assays using MC3T3-E1 pre-osteoblasts demonstrated biocompatibility, with metabolic viability above 70% and no toxicity. The 10% bHA formulation also enhanced cell proliferation, adhesion, and migration without increasing reactive oxygen or nitrogen species. Alizarin Red staining indicated osteogenic potential, while micronucleus assays with CHO-K1 cells confirmed the absence of genotoxicity. These findings highlight the potential of biogenic hydroxyapatite scaffolds for bone tissue engineering. Full article
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27 pages, 33076 KB  
Article
Novel Eco-Friendly Chitosan-Loaded CuO-SiO2 Coating on Cotton Fabric for Durable, Multifunctional, and Mechanical Properties
by Mst. Tania Aktek and Mohammad Ali
Textiles 2026, 6(3), 87; https://doi.org/10.3390/textiles6030087 - 21 Jul 2026
Viewed by 224
Abstract
Developing durable multifunctional clothing with enhanced mechanical and comfort properties utilizing eco-friendly, cost-effective hybrid nano finishes is highly challenging. The reason behind the nondurable functionality is the lack of bonding ability of nanoparticles (NPs) with cotton fabric, and this additional coating has a [...] Read more.
Developing durable multifunctional clothing with enhanced mechanical and comfort properties utilizing eco-friendly, cost-effective hybrid nano finishes is highly challenging. The reason behind the nondurable functionality is the lack of bonding ability of nanoparticles (NPs) with cotton fabric, and this additional coating has a great impact on the mechanical, thermo-physiological, and sensorial comfort properties of cotton fabric. Focusing on these issues, this paper attempts to develop biogenic chitosan-loaded CuO-SiO2 hybrid nano finishes with three distinct formulations, namely Chi-CuO-SiO2(5g/L), Chi-CuO-SiO2(10g/L), and Chi-CuO-SiO2(20g/L) hybrid nanofluids, to incorporate on cotton fabric by pad-dry-cure method. These hybrid nanofluids from biogenic Chi-CuO and rice husk SiO2 NPs have been newly introduced for textile application. The NPs CuO and SiO2 are synthesized from lemon peel zest extract and rice husk, respectively. Characterization of CuO NPs by Fourier Transform Infrared Spectroscopy (FTIR), Field Emission Scanning Electron Microscopy (FESEM), Energy Dispersive Spectroscopy (EDX), and X-ray diffractometers (XRD) evidences that spherical-shaped, amorphous, and 60–80 nm sized NPs are synthesized. The hydrodynamic performance of hybrid nanofluids measured by Zeta Sizer shows that the chitosan-loaded CuO-SiO2(5g/L) hybrid nanofluid is the most stable among the three, and the value is +29.4 mV. The presence of CuO NPs, SiO2 NPs, and chitosan on cotton fabric was confirmed by FTIR, FESEM, and EDX spectra of the hybrid nanofluid-deposited fabric. The cotton fabric coated with chitosan-loaded CuO-SiO2 hybrid nanofluids exhibits better durable antimicrobial efficacy, UV-protective properties, and thermo-physiological comfort properties than that of the uncoated fabric. More specifically, CuO-SiO2(20g/L)-coated fabric demonstrates approximately 99.99% bacterial efficacy against both gram-positive and gram-negative bacteria even after 15 washing cycles, and excellent UV-protective properties. In addition, CuO-SiO2(5g/L)-coated fabric displays around 75% enhancement of overall moisture management properties and 1.22% and 0.53% enhancement of tensile strength in warp and weft directions with excellent elongation compared to the pristine one. Moreover, assessment of the mechanical sensorial comfort properties of this fabric depicts that it is smoother, and has better thermal conductivity than that of the control one. In addition, CuO-SiO2(5g/L) hybrid nanofluid-treated cotton fabric exhibited cell viability above 95%, which confirms its non-cytotoxicity. The outcomes of this study suggest that chitosan-loaded CuO-SiO2(5g/L) hybrid nanofluid-treated cotton fabric can be considered as optimum and employed as biomedical textiles with better mechanical and comfort properties. Full article
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17 pages, 4188 KB  
Article
Hydrogen-Bond Organization and Porous Architecture Govern Water Transport and Germination in Cellulosic Membranes
by Natalia Fuentes Molina, Ana Fragozo Molina and Kennys Cujia Jiménez
Polymers 2026, 18(13), 1575; https://doi.org/10.3390/polym18131575 - 24 Jun 2026
Viewed by 383
Abstract
Water scarcity in semi-arid regions threatens seed germination and early crop establishment, driving the development of biodegradable Nature-based Solutions to replace synthetic plastic mulches. Porous cellulose membranes were fabricated from rice husk (RH), banana pseudostem (BP), and sugarcane bagasse (SB) by thermo-chemical extraction [...] Read more.
Water scarcity in semi-arid regions threatens seed germination and early crop establishment, driving the development of biodegradable Nature-based Solutions to replace synthetic plastic mulches. Porous cellulose membranes were fabricated from rice husk (RH), banana pseudostem (BP), and sugarcane bagasse (SB) by thermo-chemical extraction and high-shear homogenization (n = 5 replicates per membrane type). Membranes were characterized by ATR-FTIR and scanning electron microscopy, confirming removal of non-cellulosic components and biogenic silica preservation in RH, and revealing biomass-dependent porous architectures linked to mechanical and transport behavior. RH produced the most compact fibrillar matrix (compressive strength: 8.16 ± 0.24 MPa; WVT: 170 ± 60 g m−2 day−1), BP an open interconnected network with superior deformability (9.83 ± 0.25% elongation) and moisture transport (WVT: 400 ± 100 g m−2 day−1), and SB the highest moisture-retention capacity (215.7 ± 15.8%). Germination assays with Brassica oleracea var. botrytis under water stress showed SB achieved the highest germination rate (90.5 ± 0.99%), confirming that sustained moisture availability governs germination more decisively than transport rate alone. Soil burial tests confirmed biodegradable behavior across all membranes (R2 ≥ 0.995; k = 0.043–0.046 day−1). These findings establish a hydrogen-bond-mediated structure–property–function framework for designing biomass-specific cellulose membranes as biodegradable solutions for water-limited agricultural systems. Full article
(This article belongs to the Special Issue Advances in Cellulose and Lignocellulosic Composites)
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27 pages, 4875 KB  
Article
Biogenic Fabrication of Titanium and Manganese Oxide Nanoparticles via Lawsonia inermis: Physicochemical Characterization and Biomedical Efficacy
by Rajiv Periakaruppan, Kavin K, Vanathi Palanimuthu, Joaval Antony Martin and Noura Al-Dayan
Surfaces 2026, 9(2), 56; https://doi.org/10.3390/surfaces9020056 - 15 Jun 2026
Viewed by 725
Abstract
This research is based on the eco-friendly biogenic synthesis of titanium dioxide (TiO2) and manganese oxide (MnO) nanoparticles using Lawsonia inermis (henna) leaf extract. The biosynthesized NPs were examined via UV–visible spectroscopy, FTIR, FESEM, EDX, TGA, Zeta potential, and DLS to [...] Read more.
This research is based on the eco-friendly biogenic synthesis of titanium dioxide (TiO2) and manganese oxide (MnO) nanoparticles using Lawsonia inermis (henna) leaf extract. The biosynthesized NPs were examined via UV–visible spectroscopy, FTIR, FESEM, EDX, TGA, Zeta potential, and DLS to study their optical characteristics, functional group, structural nature, surface morphology, elemental composition, thermal stability, and surface charge. FTIR peaks confirmed the functional groups responsible for nanoparticle formation. FESEM micrographs indicated spherical TiO2 nanoparticles and irregular MnO nanoparticles. The biosynthesized nanoparticles revealed antibacterial activity against pathogens, including Pseudomonas aeruginosa, Escherichia coli, Klebsiella pneumoniae, and Bacillus subtilis. Antioxidant potential was demonstrated using the DPPH assay, with MnO nanoparticles exhibiting higher activity (IC50: 30 µg/mL) than TiO2 nanoparticles. Cytotoxicity studies on L929 cell lines revealed dose-dependent effects, while wound-healing assays indicated enhanced cell migration, particularly with MnO nanoparticles. This study highlights the L. inermis-mediated nanoparticles as sustainable and biocompatible with biomedical and environmental applications. Full article
(This article belongs to the Special Issue Bio-Inspired Surfaces)
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29 pages, 2043 KB  
Review
Bioengineered Silver Nanoparticles: Next-Generation Biogenic Synthesis Strategies for Precision Biomedical Applications
by Mythileeswari Lakshmikanthan, Sakthivel Muthu and Indra Neel Pulidindi
Bioengineering 2026, 13(5), 587; https://doi.org/10.3390/bioengineering13050587 - 20 May 2026
Cited by 3 | Viewed by 963
Abstract
Silver nanoparticles (AgNPs) have attracted substantial scientific interest in biomedical research owing to their unique physicochemical characteristics, broad-spectrum antimicrobial activity, plasmonic properties, and therapeutic versatility. Although conventional physicochemical synthesis methods enable controlled NPs fabrication, their dependence on hazardous reagents, elevated energy input, and [...] Read more.
Silver nanoparticles (AgNPs) have attracted substantial scientific interest in biomedical research owing to their unique physicochemical characteristics, broad-spectrum antimicrobial activity, plasmonic properties, and therapeutic versatility. Although conventional physicochemical synthesis methods enable controlled NPs fabrication, their dependence on hazardous reagents, elevated energy input, and environmentally detrimental processing conditions has stimulated the development of sustainable biogenic alternatives. Biological synthesis utilizing plants, microorganisms, fungi, algae, and purified biomolecules has emerged as an eco-friendly and bio-compatible strategy for AgNP fabrication, enabling simultaneous reduction, stabilization, and intrinsic biofunctionalization of NPs. However, traditional biogenic synthesis remains constrained by limited mechanistic understanding, poor batch reproducibility, inadequate control over physicochemical properties, and challenges in large-scale manufacturing. Recent advances in bioengineering have transformed this field through the integration of metabolic engineering, synthetic biology, microfluidic-assisted synthesis, artificial intelligence-guided process optimization, and continuous-flow biomanufacturing, collectively enabling precision fabrication of biogenic AgNPs with enhanced uniformity, scalability, and functional tunability. Furthermore, strategic surface engineering and functionalization have expanded the applicability of biogenic AgNPs across targeted anticancer therapy, antimicrobial intervention, wound healing, regenerative medicine, drug delivery, and theranostic imaging. Despite these advancements, critical challenges remain regarding nano–bio interactions, toxicological safety, regulatory compliance, and translational scalability. Unlike conventional reviews focused primarily on green synthesis approaches, this review critically highlights emerging bioengineering paradigms that enable programmable, scalable, and precision-controlled biogenic AgNP fabrication. This review comprehensively examines next-generation paradigms and strategies for AgNPs biosynthesis, elucidates the molecular mechanisms governing their formation, highlights emerging functionalization and biomedical application paradigms, and discusses current translational barriers. Forming biogenic composites of AgNPs and heteroatom doped carbon nanodots needs intense research in near future. Full article
(This article belongs to the Section Nanobiotechnology and Biofabrication)
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16 pages, 10042 KB  
Article
A Fluorescent Composite of Carbon-Dot-Embedded Covalent Organic Frameworks for Highly Sensitive and Rapid Detection of Biogenic Amines in Large Yellow Croaker
by Yunying Xia, Han Wu, Xin You, Haofeng Huang, Zhiming Yan, Zhihui Luo, Qinghua Yao and Hui Xu
Foods 2026, 15(8), 1449; https://doi.org/10.3390/foods15081449 - 21 Apr 2026
Viewed by 545
Abstract
The excessive accumulation of biogenic amines (BAs) in aquatic products poses serious health risks, necessitating the development of rapid and sensitive detection methods. This study reports the synthesis of a novel fluorescent nanocomposite, carbon-dot-embedded covalent organic frameworks (CDs@COFs). Comprehensive characterization (TEM, XPS, FTIR, [...] Read more.
The excessive accumulation of biogenic amines (BAs) in aquatic products poses serious health risks, necessitating the development of rapid and sensitive detection methods. This study reports the synthesis of a novel fluorescent nanocomposite, carbon-dot-embedded covalent organic frameworks (CDs@COFs). Comprehensive characterization (TEM, XPS, FTIR, UV–Vis, and fluorescence spectroscopy) confirmed the successful fabrication of the nanocomposites, which exhibited excellent thermal and optical stability. A significantly enhanced quantum yield of 36.22% (compared with 12.92% for pure carbon dots) was obtained. As a fluorescent probe, the composite enabled the detection of nine BAs based on a fluorescence quenching mechanism. The proposed method demonstrated good linearity (1~100 ng/mL) and low detection limits of 0.58~0.98 ng/mL. The method was successfully applied to analyze tyramine in large yellow croaker, showing accurate spike recoveries ranging from 91.93% to 101.43% and excellent reproducibility (RSD < 3%). These results highlight the great potential of the developed method as a powerful tool for the rapid screening of BAs in aquatic products. Full article
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32 pages, 825 KB  
Systematic Review
Modular Engineered-Wood Housing in Low-Technification, Seismic-Prone Settings: A Systematic Review of Structural Performance, Digital Fabrication, and Low-Carbon Performance
by Emerson Porras, Walter Morales, Lidia Chang and Joseph Sucasaca
Sustainability 2026, 18(8), 4096; https://doi.org/10.3390/su18084096 - 20 Apr 2026
Viewed by 950
Abstract
This qualitative systematic review evaluates the potential of modular prefabricated OSB/plywood housing systems in low-technification, high-seismicity settings. These systems are promoted as low-carbon options for emerging contexts, and we assess how far the evidence supports that promise and under which conditions they can [...] Read more.
This qualitative systematic review evaluates the potential of modular prefabricated OSB/plywood housing systems in low-technification, high-seismicity settings. These systems are promoted as low-carbon options for emerging contexts, and we assess how far the evidence supports that promise and under which conditions they can contribute to net-zero housing pathways. An adapted PRISMA 2020 workflow was applied to Scopus (TITLE-ABS, 2000–2025); 153 studies were synthesized in a table-first, coded matrix into axes for structural, digital fabrication, sustainability/circularity, and extrapolatable systems—supplemented by curated housing cases—with other EWPs used only for contrast. To address fragmentation and heterogeneity across domains, we developed a domain-based QA/QC instrument (STRUCTURAL, LCA, and FABRICATION) to judge whether studies provide minimally comparable evidence. Structural performance is relatively mature for certain patterns (calibrated FEM, cyclic tests, some 1:1 trials), whereas digital fabrication and LCA evidence remain partial: file-to-factory workflows rarely report verifiable QA/QC traceability, and most LCAs stop at A1–A3 with uneven treatment of A4, C/D, and biogenic carbon. Full convergence of adequate STRUCTURAL, LCA, and FABRICATION evidence within the same system type is rare, so both transferability to low-technification, seismic-prone settings and alignment with net-zero objectives must be characterized as conditional rather than established. The review identifies minimum multi-domain thresholds—technical robustness, whole-life LCA coverage, and verifiable QA/QC—as prerequisites for positioning modular OSB/plywood housing as a credible low-carbon pathway. These conclusions are limited by Scopus-only, English-language coverage and methodological heterogeneity, especially in the LCA. Full article
(This article belongs to the Topic Multiple Roads to Achieve Net-Zero Emissions by 2050)
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21 pages, 4748 KB  
Article
Synergistic and Magnetically Recoverable NiFe2O4–MWCNT–CA Nanocomposites for Efficient UV-Driven Photodegradation of Organic Pollutants
by Assem Basurrah, Ibrahim O. Althobaiti and Yaaser Q. Almulaiky
Catalysts 2026, 16(3), 262; https://doi.org/10.3390/catal16030262 - 14 Mar 2026
Viewed by 728
Abstract
A synergistic and magnetically recoverable NiFe2O4–MWCNT–CA nanocomposite was developed for efficient UV-driven photodegradation of hazardous organic pollutants. Biogenic NiFe2O4 nanoparticles synthesized using Costus speciosus extract exhibited a crystallite size of 32.5 nm, which increased to 83.6 [...] Read more.
A synergistic and magnetically recoverable NiFe2O4–MWCNT–CA nanocomposite was developed for efficient UV-driven photodegradation of hazardous organic pollutants. Biogenic NiFe2O4 nanoparticles synthesized using Costus speciosus extract exhibited a crystallite size of 32.5 nm, which increased to 83.6 nm upon incorporation into the MWCNT–cellulose acetate matrix. XRD confirmed the preservation of the cubic spinel structure, while VSM analysis showed maintained ferrimagnetic behavior with a saturation magnetization of 9.64 emu/g, enabling rapid magnetic separation. Although BET analysis revealed a reduction in surface area from 112.46 to 30.99 m2/g due to hybridization, the conductive MWCNT network significantly enhanced charge separation and interfacial electron transport. The composite displayed a widened optical bandgap of 5.3 eV, necessitating UV excitation for photocatalytic activity. Under UV irradiation, it achieved rapid degradation of methylene blue (97%) and Congo red (91%) at 20 mg/L, with corresponding rate constants of 0.119 and 0.076 min−1. Scavenger experiments confirmed hydroxyl radicals (•OH) as the dominant reactive species, followed by photogenerated holes (h+). These results demonstrate a robust and synergistically engineered photocatalyst with high efficiency in removing organic pollutants under UV illumination. Full article
(This article belongs to the Special Issue Catalysis for Sustainable Environmental Solutions)
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27 pages, 5395 KB  
Article
ML-Driven Decision Support for Dynamic Modeling of Calcareous Sands
by Abdalla Y. Almarzooqi, Mohamed G. Arab, Maher Omar and Emran Alotaibi
Mach. Learn. Knowl. Extr. 2026, 8(3), 68; https://doi.org/10.3390/make8030068 - 9 Mar 2026
Viewed by 747
Abstract
Dynamic characterization of calcareous (carbonate) sands is essential for performance-based design of offshore foundations, coastal reclamation, and marine infrastructure in tropical and subtropical regions. In contrast to silica sands, carbonate sediments are biogenic and typically comprise angular, irregular grains with intra-particle voids and [...] Read more.
Dynamic characterization of calcareous (carbonate) sands is essential for performance-based design of offshore foundations, coastal reclamation, and marine infrastructure in tropical and subtropical regions. In contrast to silica sands, carbonate sediments are biogenic and typically comprise angular, irregular grains with intra-particle voids and fragile skeletal microstructure. These traits promote grain crushing and fabric evolution at relatively low-to-moderate confinement, leading to pronounced stress dependency, strong nonlinearity with strain amplitude, and substantial scatter in laboratory stiffness and damping measurements. Consequently, empirical correlations calibrated primarily on quartz sands may yield biased estimates when transferred to carbonate environments. This study presents an ML-driven, leakage-aware benchmarking framework for predicting two key dynamic parameters of biogenic calcareous sands, damping ratio D and shear modulus G, using standard tabular descriptors commonly available in geotechnical practice. Two consolidated experimental databases were curated from resonant column and cyclic triaxial measurements (D: n=890; G: n=966), spanning mean effective confining stress 25  σm1600 kPa and a wide range of density and gradation conditions. To emphasize transferability, explicit deposit/site labels were excluded, and missingness arising from heterogeneous reporting was handled through a consistent preprocessing pipeline (training-only imputation, categorical encoding, and scaling). Eleven regression algorithms were evaluated, covering linear baselines, regularized regression, neighborhood learning, single trees, bagging and boosting ensembles, kernel regression, and a feedforward neural network. Performance was assessed using R2, RMSE, and MAE on training/validation/test splits, and engineering credibility was supported through explainability-based diagnostics to verify mechanically plausible sensitivities. Results show that ensemble-tree models (Extra Trees and Random Forest) provide the most reliable accuracy–robustness balance across both targets, consistently outperforming linear models and the tested SVR configuration and exhibiting stable validation-to-test behavior. The explainability audit confirms physically meaningful separation of governing controls: stiffness is primarily stress-controlled (σm dominant for G), whereas damping is primarily strain-controlled (γ dominant for D). The proposed framework supports practical deployment as a fast surrogate for generating Gγ and Dγ curves within the training domain and for guiding targeted laboratory test planning in carbonate settings. Full article
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16 pages, 3078 KB  
Article
Catharanthus roseus Extract-Loaded Zn-Substituted Hydroxyapatite Nanocomposites as a Multifunctional Antioxidant and Anticancer Therapeutic Applications
by Sankar Sekar, Sutha Sadhasivam, Saravanan Sekar, Youngmin Lee, Sekar Vaithilingam, Nandhakumar Srinivasan, Elangovan Krishnan, Sejoon Lee and Balaji Murugan
Int. J. Mol. Sci. 2026, 27(4), 2070; https://doi.org/10.3390/ijms27042070 - 23 Feb 2026
Cited by 1 | Viewed by 928
Abstract
During recent decades, bone cancer-related diseases have remained hard to treat because of poor diagnosis, systemic toxicity, and restricted conventional treatments. Hence, the fabrication of functionalised nanoparticles offers a promising alternative by limiting side effects and improving therapeutic outcomes. In this study, zinc-substituted [...] Read more.
During recent decades, bone cancer-related diseases have remained hard to treat because of poor diagnosis, systemic toxicity, and restricted conventional treatments. Hence, the fabrication of functionalised nanoparticles offers a promising alternative by limiting side effects and improving therapeutic outcomes. In this study, zinc-substituted hydroxyapatite (Zn-HA) nanoparticles were fabricated from biogenic tuna fish bone waste via a thermal decomposition method and subsequently functionalised with Catharanthus roseus (CR) flower extract to synthesise a Zn-HA/CR nanocomposite. Structural and compositional characterisations verified Zn ions incorporation into the HA lattice and efficient CR-derived phytochemical functionalisation without altering the hexagonal HA phase. Compared to pure hydroxyapatite, the Zn-HA/CR nanocomposite exhibited improved surface morphology, enhanced swelling behaviour and degradation, and increased microhardness. The nanocomposite demonstrated significantly enhanced antibacterial activity against Staphylococcus aureus and Escherichia coli. The Zn-HA/CR nanocomposite also showed strong, dose-dependent antioxidant activity in DPPH assays. Furthermore, in vitro cytotoxicity studies using MG-63 (HOS) osteosarcoma cancer cells revealed that the proposed nanocomposite leads to pronounced morphological alterations and reduced cell viability. The prepared Zn-HA/CR nanocomposite would be a potential nanocomposite for enhanced antioxidant and anticancer activity, which highlights this composite as a multifunctional biomaterial platform for therapeutic applications. Full article
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13 pages, 1386 KB  
Article
Potentiometric Determination of Biogenic Amines Using a Cucurbit[6]uril-PVC Sensing Membrane
by Cláudio M. R. Almeida, Joana L. A. Miranda, Manuela M. Moreira, Júlia M. C. S. Magalhães, Maria F. Barroso and Luisa Durães
Chemosensors 2026, 14(1), 4; https://doi.org/10.3390/chemosensors14010004 - 22 Dec 2025
Viewed by 921
Abstract
In this work, a potentiometric sensor for the detection of biogenic amines (BAs) in food samples was developed and characterised. The sensor employs a home-fabricated electrode incorporating a cucurbit[6]uril-modified polyvinyl chloride membrane as the sensing element. The working principle, system behaviour, and optimal [...] Read more.
In this work, a potentiometric sensor for the detection of biogenic amines (BAs) in food samples was developed and characterised. The sensor employs a home-fabricated electrode incorporating a cucurbit[6]uril-modified polyvinyl chloride membrane as the sensing element. The working principle, system behaviour, and optimal operational conditions for BA monitoring were systematically investigated. The developed sensor demonstrated excellent analytical performance, showing a linear response in the concentration range of 3.0 × 10−5 to 1.0 × 10−2 mol L−1, with a low limit of detection of 2.4 × 10−5 mol L−1. Among the tested analytes, the sensor exhibited the highest sensitivity toward tyramine. These results highlight the potential of the proposed cucurbit[6]uril-based potentiometric sensor as an effective and reliable tool for monitoring BAs in complex food matrices, contributing to improved food safety, quality control, and spoilage prevention in the food industry, while also demonstrating its new application as a low-cost, easily constructed platform for rapid tyramine screening in food products. Full article
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21 pages, 4466 KB  
Article
Biogenic Fabrication of Ag-NPs@Hydroxyapatite from Goat Bone Waste: A Sustainable Route for Photocatalytic and Antioxidant Applications
by Ahmed Hamad Alanazi, Ali Atta, Hallouma Bilel, Riyadh F. Halawani, Fahed A. Aloufi, Amnah Salem Al Zbedy and Amr Mohammad Nassar
Inorganics 2026, 14(1), 2; https://doi.org/10.3390/inorganics14010002 - 22 Dec 2025
Cited by 2 | Viewed by 3494
Abstract
In this study, we present a new, facile, and eco-friendly approach to the synthesis of silver nanoparticles using an aqueous extract obtained from wasted goat bone, which acted as a reducing and stabilizing agent. Hydroxyapatite (GHAP) derived from the same biogenic source was [...] Read more.
In this study, we present a new, facile, and eco-friendly approach to the synthesis of silver nanoparticles using an aqueous extract obtained from wasted goat bone, which acted as a reducing and stabilizing agent. Hydroxyapatite (GHAP) derived from the same biogenic source was then added to the Ag-NPs solution, resulting in the formation of a nanocomposite (Ag@GHAP). Biogenic GHAP and Ag@GHAP have been characterized using Fourier transform infrared spectroscopy (FTIR), dynamic light scattering (DLS), zeta potential, scanning electron microscopy (SEM), atomic force microscopy (AFM), and powder X-ray diffraction (XRD), confirming the formation of crystalline GHAP with well-dispersed silver nanoparticles. According to AFM studies, the Ag@GHAP composite exhibits a higher surface roughness alteration than GHAP. XRD revealed that the crystalline sizes of GHAP and Ag@GHAP are 10.2 and 15.6 nm, respectively. Zeta potential showed that GHAP and Ag@GHAP possessed values of −12.4 and −11.7 mV, respectively. Ag@GHAP showed a promising performance in photocatalysis and antioxidant applications as compared to GHAP. The energy band gap (Eg) values are 5.1 eV and 4.5 eV for GHAP and Ag@GHAP, respectively. Ag@GHAP showed photocatalytic activity during the degradation of methylene blue dye (5 ppm) under solar irradiation with a removal efficiency of 99.15% in 100 min at the optimum conditions. The antioxidant activity of GHAP and Ag@GHAP was determined using the DPPH method. The results showed enhanced antioxidant activity of a silver decorated sample with IC50 values of 36.83 and 2.95 mg/mL, respectively. As a result, the Ag@GHAP composite is a promising candidate in environmental treatment and scavenging of free radicals. Full article
(This article belongs to the Special Issue Nanocomposites for Photocatalysis, 2nd Edition)
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26 pages, 5288 KB  
Article
Snail Shell-Reinforced Waste-Based Polymer Composites for Radiation Shielding and Anti-Reflective Applications
by Mustafa Ersin Pekdemir, Sibel Selçuk Pekdemir, Demet Yılmaz, Hatice Onay and Ibrahim Nazem Qader
Polymers 2025, 17(23), 3115; https://doi.org/10.3390/polym17233115 - 24 Nov 2025
Cited by 3 | Viewed by 1405
Abstract
The increasing demand for sustainable and multifunctional materials in radiation shielding and optical applications has driven research toward utilizing natural and waste-derived reinforcements in polymer matrices. However, achieving effective attenuation performance across different radiation types using eco-friendly fillers remains a significant challenge. In [...] Read more.
The increasing demand for sustainable and multifunctional materials in radiation shielding and optical applications has driven research toward utilizing natural and waste-derived reinforcements in polymer matrices. However, achieving effective attenuation performance across different radiation types using eco-friendly fillers remains a significant challenge. In this study, polyvinyl chloride (PVC)/Polystyrene (PSt) blend composites (1:1 weight ratio) were reinforced with powdered snail shell (SSP) as a biogenic additive, aiming to enhance their shielding and optical performance. Composites containing 5%, 10%, 20%, and 30% SSP (w/v) were fabricated and characterized. Key parameters including linear attenuation coefficient (LAC), mass attenuation coefficient (MAC), mean free path (MFP), half-value layer (HVL), and effective atomic number (Zeff) were measured using a variable-energy X-ray source (13.37–59.54 keV) and ULEGe detector. Fast neutron shielding performance and theoretical values for build-up factor (EBF) and macroscopic neutron cross-sections were also calculated. The results showed a marked improvement in X-ray attenuation with increasing SSP content (SSP30 > SSP20 > SSP10 > SSP5), while neutron shielding declined due to the high oxygen content of SSP. Among the tested samples, the SSP30 composite exhibited the highest X-ray attenuation efficiency, whereas the SSP5 composition showed the greatest enhancement in optical reflectance and neutron absorption, indicating optimal performance in these respective tests. Additionally, 5% SSP incorporation improved optical reflectance by 12%, indicating enhanced photon backscattering at the material surface. This behavior contributes to improved gamma shielding efficiency by reducing photon penetration and enhancing surface-level attenuation. These findings highlight the potential of snail shell-based fillers as low-cost, sustainable reinforcements in multifunctional polymer composites. Full article
(This article belongs to the Section Polymer Applications)
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Article
Innovative Antimicrobial Fabrics Loaded with Nanocomposites from Chitosan and Black Mulberry Polysaccharide-Mediated Selenium Nanoparticles to Suppress Skin Pathogens
by Mousa Abdullah Alghuthaymi
Polymers 2025, 17(21), 2902; https://doi.org/10.3390/polym17212902 - 30 Oct 2025
Cited by 1 | Viewed by 1036
Abstract
Skin pathogenic microbes continue to seriously endanger humans, particularly resistant strains. Nanomaterials/composites are promising answers for this. Black mulberry (MB) polysaccharides were employed for biosynthesizing/capping selenium nanoparticles (SeNPs); their conjugations alongside chitosan (Cht) nanoforms were constructed and assessed for skin pathogens’ (Staphylococcus [...] Read more.
Skin pathogenic microbes continue to seriously endanger humans, particularly resistant strains. Nanomaterials/composites are promising answers for this. Black mulberry (MB) polysaccharides were employed for biosynthesizing/capping selenium nanoparticles (SeNPs); their conjugations alongside chitosan (Cht) nanoforms were constructed and assessed for skin pathogens’ (Staphylococcus aureus bacteria and Candida albicans yeast) suppression and destruction. The biosynthesis of SeNPs with MB was verified using FTIR analysis and UV-vis spectroscopy. The nanocomposites were constructed from Cht–MB-SeNPs at concentrations of 2:1 (F1), 1:1 (F2), and 1:2 (F3). The SeNPs had a mean diameter of 46.19 nm, whereas the F-2 nanocomposites had the lowest particle diameter (212.42 nm) compared to F-1 (239.88 nm) and F-3 (266.16 nm) nanocomposites. The F-2 nanocomposites significantly exhibited the strongest antimicrobial efficacy against skin pathogens, with 26.3 and 27.1 mm inhibition zones and 22.5 and 20.0 μg/mL inhibitory concentrations against bacteria and C. albicans yeast, respectively. The scanning imaging of microbes exposed to nanocomposite emphasized the severe destruction/lyses of microbial cells within 10 h. Loading of cotton fabrics with nanomaterials, particularly with Cht/MB-SeNP nanocomposites, generated potent durable antimicrobial textiles that could prohibit microbial growth, with inhibition zones of 6.2 mm against C. albicans and 3.7 mm against S. aureus; the textiles could preserve their antimicrobial actions after two washing cycles. The biogenic construction of Cht/MB-SeNP nanocomposites can provide innovative solutions to manage and control skin pathogens. Full article
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