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20 pages, 3469 KB  
Article
In Vitro Propagation as a Strategy for Improving Phytochemical Production and Supporting Conservation of Tunisian Lavandula stoechas
by Soumaya Hmissi, Dragana Stojičić, Dijana Krstić-Milošević, Mirjana Janjanin, Hiba Ben Aribi, Hadil Khadraoui, Sawssen Hlaiem, Sami Fattouch, Chokri Messaoud and Branka Uzelac
Horticulturae 2026, 12(7), 903; https://doi.org/10.3390/horticulturae12070903 - 22 Jul 2026
Viewed by 549
Abstract
Lavandula stoechas (Lamiaceae) is a highly valued medicinal plant due to its rich content of bioactive secondary metabolites, particularly rosmarinic acid. This study aimed to develop an efficient in vitro propagation protocol from seeds and to evaluate the influence of 6-benzylaminopurine (BAP) on [...] Read more.
Lavandula stoechas (Lamiaceae) is a highly valued medicinal plant due to its rich content of bioactive secondary metabolites, particularly rosmarinic acid. This study aimed to develop an efficient in vitro propagation protocol from seeds and to evaluate the influence of 6-benzylaminopurine (BAP) on morphogenesis and phenolic compound production while comparing the antioxidant and antifungal activities of methanolic extracts from in vitro cultured and wild-growing plants. Seeds were germinated on half-strength MS medium under different sucrose concentrations and temperatures. Nodal explants from seedlings were cultured on full-strength MS medium supplemented with 0, 1, 2, or 3 µM BAP. Methanolic extracts were analyzed for total phenolic content, rosmarinic acid concentration (HPLC), antioxidant activity (DPPH and ABTS assays), and antifungal activity against phytopathogenic fungi. Rapid germination occurred on day 3 on half-strength MS medium with 1% sucrose at 20 °C. The highest biomass production was achieved with 3 µM BAP. In vitro cultured plants accumulated fivefold-higher total phenolic content (217.73 mg GAE g−1 DW) than wild plants (43.23 mg GAE g−1 DW), with significantly higher rosmarinic acid levels. Antioxidant activity was markedly stronger in extracts from plants grown with 1–2 µM BAP, whereas antifungal activity remained limited. These results demonstrate that in vitro propagation with optimized BAP concentrations is an effective strategy for enhancing bioactive metabolite production and supporting the conservation of Tunisian L. stoechas. Full article
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20 pages, 1262 KB  
Article
Formulation and Evaluation of Fluconazole Containing Sodium Alginate/Methylcellulose-Based Buccal Films for Potential Treatment of Oral Candidiasis
by Adekunle Oduneye Odularu, Anuoluwapo Temitope Adesegun, Chukwuemeka Paul Azubuike and Oluwadamilola Miriam Kolawole
Pharmaceutics 2026, 18(6), 748; https://doi.org/10.3390/pharmaceutics18060748 - 18 Jun 2026
Viewed by 742
Abstract
Background/Objectives: Oral candidiasis is an infection of the oral cavity caused by Candida albicans. Mucoadhesive buccal films could adhere to the buccal mucosa for prolonged periods, improving the therapeutic outcomes of patients with oral candidiasis. This study aimed to develop and [...] Read more.
Background/Objectives: Oral candidiasis is an infection of the oral cavity caused by Candida albicans. Mucoadhesive buccal films could adhere to the buccal mucosa for prolonged periods, improving the therapeutic outcomes of patients with oral candidiasis. This study aimed to develop and evaluate the properties of fluconazole containing sodium alginate/methylcellulose-based buccal films for potential treatment of oral candidiasis. Methods: Drug-polymer compatibility was investigated using FT-IR spectrophotometry. Three optimised fluconazole films (F1 to F3) containing 1–1.6% sodium alginate and methylcellulose (1.6%) were formulated using the solvent-casting method. Their physicomechanical properties were characterised using standard protocols. Drug content and in vitro drug release profiles were evaluated using UV-visible spectroscopy; in vitro/ex vivo mucoadhesion studies were conducted using the shaking water bath technique, and their antifungal activity against Candida albicans was evaluated using the agar ditch method. Results: FT-IR data analysis revealed that sodium alginate, methylcellulose and fluconazole were compatible in the films. The films were off-white, smooth, peelable, thin, with satisfactory pH values, folding endurance, drug content, excellent zones of inhibition against Candida albicans (40 mm), controlled drug release profile (3.6–4.1 mg/cm2 after 6 h), and they displayed Korsmeyer–Peppas drug release kinetics. Film F3 containing 1.6% sodium alginate and 1.6% of methylcellulose exhibited superior swelling index (70 ± 1%), tensile strength (0.68 ± 0.04 MPa) and in vitro/ex vivo mucoadhesion time (5.5 ± 0.3 h; 2.3 ± 0.3 h) relative to other studied films. Conclusions: The sodium alginate content of the films influenced their tensile and mucoadhesive properties. Film F3 was the most promising formulation for potential treatment of oral candidiasis. Full article
(This article belongs to the Section Biopharmaceutics)
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15 pages, 672 KB  
Article
Synergistic Effect of White Vinegar-Sodium Bicarbonate Mixture on Candida albicans and Heat-Cured Acrylic Denture Base Material Properties
by Mohammed Abdulrasool Mohsin and Shorouq Majid Abass
Prosthesis 2026, 8(6), 59; https://doi.org/10.3390/prosthesis8060059 - 15 Jun 2026
Viewed by 712
Abstract
Background/Objectives: Denture disinfection is a crucial step in reducing microbial colonization and the risk of denture stomatitis, as well as contributing to patient health and denture longevity; thus, it was obligatory to select an effective cleanser without undesirable impact on properties of [...] Read more.
Background/Objectives: Denture disinfection is a crucial step in reducing microbial colonization and the risk of denture stomatitis, as well as contributing to patient health and denture longevity; thus, it was obligatory to select an effective cleanser without undesirable impact on properties of acrylic denture base material. This study aimed to assess the synergistic effect of white vinegar and sodium bicarbonate (WVSB) mixture on Candida albicans by means of colony forming unit (CFU) and adhesion assays, as well as the surface roughness and flexural strength of heat-cured acrylic denture base material after being immersed in the WVSB mixture. Methods: In total, 200 specimens of heat-cured acrylic resin were prepared: 50 per each test, 5 per each group. They were divided into ten groups; distilled water (negative control), a Corega denture cleanser tablet soaked for 5 min (positive control), and four concentrations (2%, 3%, 4% and 5%) of WVSB mixture were made and examined for (5 and 10 min) immersion durations. Statistical analysis was performed by using Welch’s ANOVA alongside Games–Howell post hoc tests for CFU assay and one-way ANOVA along with Tukey HSD post hoc tests for remaining tests. A p < 0.05 was considered significant in all experiments. Results: The results for the CFU, adhesion and surface roughness tests showed that the WVSB mixture demonstrated a statistically significant difference in most test groups compared to the negative control group, while the flexural strength test showed a statistically non-significant difference. Conclusions: The WVSB mixture showed concentration and time-dependent antifungal effects against C. albicans, with increased surface roughness and no negative effect on the flexural strength of heat-cure acrylic. Full article
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17 pages, 2793 KB  
Article
Phytochemical Diversity in Populus trichocarpa Buds: Insights into Population Variation and Antifungal Properties
by Sam C. Cothron, Luke Leftwich, Jin-Gui Chen and Feng Chen
Plants 2026, 15(11), 1746; https://doi.org/10.3390/plants15111746 - 4 Jun 2026
Viewed by 421
Abstract
Buds are a critical stage in the annual growth–dormancy cycle of perennial woody plants and are essential for survival and biomass accumulation. To safeguard these structures, trees employ both physical and chemical protection. Although Populus buds are known to contain rich phytochemistry, population-level [...] Read more.
Buds are a critical stage in the annual growth–dormancy cycle of perennial woody plants and are essential for survival and biomass accumulation. To safeguard these structures, trees employ both physical and chemical protection. Although Populus buds are known to contain rich phytochemistry, population-level variation remains largely unexplored. Here, we characterized bud phytochemistry across a population of Populus trichocarpa natural variants using gas chromatography–mass spectrometry and examined the antifungal properties of bud extracts. In the reference genotype Nisqually-1, a total of 32 lipophilic metabolites were detected, belonging to four chemical groups: terpenoids, phenylpropanoids, linear hydrocarbons, and others. Analysis of 49 additional P. trichocarpa natural variants revealed both shared features and substantial variation. All lines contained metabolites from the phenylpropanoid, linear hydrocarbon and terpenoid classes, which consistently dominated the profiles. However, quantitative differences in individual metabolites and relative class abundances distinguished the lines, allowing them to be grouped into three chemotypic clusters. To assess potential biological implications of phytochemical variance, we tested antifungal activity of bud extracts against the pathogenic fungus Fusarium oxysporum. Extracts from all 50 lines significantly inhibited fungal growth compared with controls. Correlation analyses between metabolite abundance and inhibition strength identified candidate metabolites that were most strongly associated with antifungal activity. Together, these findings reveal both conserved and variable components of bud phytochemistry in P. trichocarpa. The observed chemical diversity and consistent antifungal effects suggest that bud metabolites contribute to defense and may reflect adaptation across natural populations. Full article
(This article belongs to the Section Phytochemistry)
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23 pages, 10872 KB  
Article
Brilacidin’s Antifungal Mechanism: Insights from Lipid Membrane Models
by María Victoria López Nota Francisco, Milagro Mottola, Jessica Aye Valdivia Pérez, Julieta Tallone, Thaila Fernanda dos Reis, Gustavo H. Goldman, Candelaria Inés Cámara and Maria Laura Fanani
Antibiotics 2026, 15(6), 548; https://doi.org/10.3390/antibiotics15060548 - 29 May 2026
Viewed by 651
Abstract
Background/Objectives: BRI is a synthetic arylamide polymer designed to mimic the electrostatic and amphiphilic features of defensin-type antimicrobial peptides (AMPs), although its molecular organization and activity have not been experimentally validated. This study presents the first integrated computational and experimental characterization of BRI [...] Read more.
Background/Objectives: BRI is a synthetic arylamide polymer designed to mimic the electrostatic and amphiphilic features of defensin-type antimicrobial peptides (AMPs), although its molecular organization and activity have not been experimentally validated. This study presents the first integrated computational and experimental characterization of BRI to define the physicochemical basis of its AMP-like behavior and membrane interactions. Methods: Molecular modelling was used to evaluate the structural and electrostatic properties of BRI. Model lipid membranes were used to study membrane interactions. Fluorescence spectroscopy, electrochemical measurements, and ζ-potential analyses were performed to characterize membrane insertion, aggregation, ionic conductance, and membrane resistance. Microbiology assays evaluating synergy with azole were also assessed. Results: Molecular modelling showed that BRI is a flexible molecule with cationic and hydrophobic surfaces, a strong amphiphilic dipole, and a dominant +4 charge state, explaining its sensitivity to ionic strength and membrane interactions. BRI displayed two membrane-dependent mechanisms of action. In zwitterionic phospholipid membranes, BRI resembled canonical AMPs, showing membrane insertion, pore formation, and increased ionic conductance. In anionic ergosterol-containing membranes mimicking fungal cells, BRI exhibited sterol-dependent insertion, in-plane aggregation, and modulation of membrane resistance without pore formation. Fluorescence, electrochemical, and ζ-potential measurements supported BRI–BRI interactions at the membrane interface and sensitivity to lipid domain organization. BRI also synergized with azole antifungal drugs, suggesting a mechanistic role for ergosterol in its antifungal activity. Conclusions: These findings reveal a sterol- and domain-mediated mechanism for arylamide polymers and identify lipid organization as a key determinant of antifungal activity. The dependence of BRI activity on ergosterol content provides a mechanistic explanation for its synergy with azole antifungals and supports further investigation of BRI as a membrane-active antifungal agent. Full article
(This article belongs to the Section Novel Antimicrobial Agents)
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19 pages, 5046 KB  
Article
Incorporation of Nanoparticles in Coatings on Acrylic Resin: Impact on Wettability and Antifungal Action
by Juliana de Freitas Gouveia Silva, Lady Daiane Pereira Leite, Tiago Moreira Bastos Campos, Cristiane Yumi Koga-Ito, Gilmar Patrocínio Thim and Tarcisio José de Arruda Paes Junior
Materials 2026, 19(10), 2130; https://doi.org/10.3390/ma19102130 - 19 May 2026
Viewed by 435
Abstract
Acrylic resin is widely used in the fabrication of complete dentures, interacting significantly with the intraoral environment. However, complete dentures face challenges such as stability issues and biofilm accumulation. Glaze application is a common method to reduce surface porosity and microbial adhesion, but [...] Read more.
Acrylic resin is widely used in the fabrication of complete dentures, interacting significantly with the intraoral environment. However, complete dentures face challenges such as stability issues and biofilm accumulation. Glaze application is a common method to reduce surface porosity and microbial adhesion, but it also decreases surface wettability, potentially impairing salivary film formation essential for peripheral sealing. This study aimed to incorporate titanium dioxide and zinc oxide nanoparticles into the glaze applied to thermally activated acrylic resin (TAAR) via spray coating to enhance surface wettability and antifungal activity. Four groups were tested: G (TAAR + commercial glaze − control); AlG (TAAR + commercial glaze + aluminum oxide − roughness control); TiG (TAAR + commercial glaze + titanium dioxide); and ZnG (TAAR + commercial glaze + zinc oxide). Evaluations included flexural strength, color and translucency, surface analysis and antibiofilm activity against Candida albicans. Data were analyzed using one-way ANOVA. No statistically significant differences in mechanical strength (MPa) were observed (G: 108.54 ± 8.36; AlG: 113.60 ± 11.95; ZnG: 111.98 ± 9.27; TiG: 113.66 ± 10.41). Surface roughness significantly increased, and contact angle decreased, indicating improved wettability. Regardless of the antifungal activity no improvement was detected (G: 6.71 ± 0.10; AlG: 6.82 ± 0.08; ZnG: 6.72 ± 0.20; TiG: 6.66 ± 0.18). In conclusion, the incorporation of nanoparticles into the glaze improves the wettability of acrylic resin surfaces, potentially enhancing peripheral sealing and denture retention, which is beneficial for patients with reduced alveolar ridge height. Full article
(This article belongs to the Section Biomaterials)
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20 pages, 4584 KB  
Article
Tailoring Cellulose Derivative Gel Matrices for Bacillus subtilis Delivery: Effects of Polymer Molecular Weight on Stability and Biocontrol
by Petya Tsekova, Nasko Nachev, Iliyana Valcheva, Donka Draganova, Mariya Spasova and Olya Stoilova
Gels 2026, 12(5), 366; https://doi.org/10.3390/gels12050366 - 27 Apr 2026
Viewed by 688
Abstract
Cellulose-derived gel films are promising matrices for the immobilization and delivery of beneficial microorganisms in sustainable plant protection. This study evaluated the effects of polymer molecular weight and chemical structure on the physicochemical properties and biocontrol performance of hydroxyethyl cellulose (HEC) films of [...] Read more.
Cellulose-derived gel films are promising matrices for the immobilization and delivery of beneficial microorganisms in sustainable plant protection. This study evaluated the effects of polymer molecular weight and chemical structure on the physicochemical properties and biocontrol performance of hydroxyethyl cellulose (HEC) films of low, medium, and high molecular weight, as well as sodium carboxymethyl cellulose (CMC-Na), loaded with Bacillus subtilis. The films were characterized in terms of morphology, swelling behavior, mechanical properties, microbial viability, and antifungal activity against Fusarium avenaceum and Alternaria solani. Increasing HEC molecular weight produced progressively denser and more homogeneous gel networks, resulting in improved structural integrity, whereas CMC-Na formed dense but less stable networks. Swelling studies at pH 4, 7, and 9 showed high water uptake for all HEC systems, with enhanced structural stability observed in high-molecular-weight films, whereas CMC-Na dissolved rapidly under all conditions. Mechanical testing further confirmed that increasing molecular weight enhanced stiffness and tensile strength but reduced flexibility. Immobilized in gel matrices, B. subtilis remained viable after 12 months of storage and rapidly reactivated after rehydration. All biohybrid films inhibited fungal growth, with stronger formulation-dependent responses against F. avenaceum than against A. solani. In general, polymer molecular weight and structure were identified as key parameters controlling network organization, hydration behavior, mechanical performance, and biological functionality. These findings highlight the potential of cellulose-derived gel matrices as tunable carriers for microbial biocontrol applications. Full article
(This article belongs to the Special Issue Women’s Special Issue Series: Gels (2nd Edition))
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12 pages, 2962 KB  
Article
Preparation of Silver-Loaded Antibacterial Agent Using Sodium Titanate Nanotubes and Its Strengthening and Antifungal Effect on Wooden Cultural Relics
by Wangting Wu
Coatings 2026, 16(5), 508; https://doi.org/10.3390/coatings16050508 - 22 Apr 2026
Viewed by 424
Abstract
In this paper, we utilized sodium titanate as a substrate to fabricate a supported antifungal repair agent capable of inhibiting fungi through the release of silver ions, and applied it to the preservation and restoration of wooden materials. The structural and material properties [...] Read more.
In this paper, we utilized sodium titanate as a substrate to fabricate a supported antifungal repair agent capable of inhibiting fungi through the release of silver ions, and applied it to the preservation and restoration of wooden materials. The structural and material properties of sodium titanate were characterized using transmission electron microscopy (TEM), scanning electron microscopy (SEM), and adsorption kinetic modeling. Furthermore, its effectiveness in wood restoration as well as its antifungal performance were evaluated. Results indicate that the synthesized sodium titanate exhibits a distinctive tubular structure, with a diameter of approximately 12 nm, a pore size of 7 nm, and a specific surface area as high as 310.91 m2/g. The abundant ion exchange active sites on the material surface provide conditions for the loading of silver ions. At 25 °C, the maximum adsorption capacity for silver ions reaches 515.5 mg/g, with an adsorption amount accounting for 34.0 wt.%. When combined with polyvinyl alcohol (PVA) for reinforcing wooden materials, it significantly increases the packing density of the reinforcing agent, ultimately enhancing the compressive strength of wood from 155.0 MPa to 412.2 MPa. Furthermore, owing to the antifungal effect of silver ions, the treated wood demonstrates effective resistance against the growth of Aspergillus niger. Full article
(This article belongs to the Special Issue Innovations in Functional Coatings for Wood Processing)
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20 pages, 8903 KB  
Article
SiO2NPs/Paraloid B-72 Nanocomposite-Based Formulation for Sustainable Restoration and Mitigation of Fungal Deterioration of Sandstone Cultural Heritage
by Mohamed Hssan Hassan Abdelhafez, Mabrouk Touahmia, Ali Aldersoni, Hassan Ismail, Ahmed Sallam, Mohamed Saleh, Khaled Elkhayat and Mona M. E. Khalil
Sustainability 2026, 18(8), 3860; https://doi.org/10.3390/su18083860 - 14 Apr 2026
Viewed by 858
Abstract
This study evaluates a SiO2 nanoparticle (SiO2NPs)/Paraloid B-72 nanocomposite as a restorative and antifungal treatment for deteriorated sandstone at the Ptolemaic Temple of Isis, located within a densely populated residential area. The temple stones exhibit structural damage, soiling, and severe [...] Read more.
This study evaluates a SiO2 nanoparticle (SiO2NPs)/Paraloid B-72 nanocomposite as a restorative and antifungal treatment for deteriorated sandstone at the Ptolemaic Temple of Isis, located within a densely populated residential area. The temple stones exhibit structural damage, soiling, and severe microbiological deterioration. Fungal isolates from the sandstone were cultured on PDA medium and identified by ITS region DNA sequencing as Alternaria alternata, Penicillium chrysogenum, and Aspergillus niger. The SiO2NPs and their Paraloid B-72 nanocomposites were synthesized and characterized using transmission electron microscopy (TEM) and X-ray diffraction (XRD). Stone samples, examined before and after treatment via SEM-EDX, TEM, and XRD, were used to assess both conservation performance and compatibility. Laboratory antifungal tests showed that SiO2NPs at 300 ppm exhibited the greatest inhibition of mycelial growth, reaching 91.59% for P. chrysogenum, 90.77% for A. niger, and 85.2% for A. alternata. Mechanical testing demonstrated that treatment with the SiO2NPs/Paraloid B-72 nanocomposite enhanced stone strength, increasing compressive strength from 26.5 MPa to 27.4 MPa. SEM images confirmed excellent, homogeneous dispersion of the nanocomposite on stone grains, forming a coherent coating without pore occlusion. Overall, the SiO2NPs/Paraloid B-72 formulation improved sandstone surface properties while substantially improving short-term mechanical performance and antifungal efficacy, indicating promise for enhancing restoration procedures when combined with established conservation protocols for sandstone architectural heritage. Full article
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29 pages, 20703 KB  
Article
Habitat-Adapted Endophytic Fusarium clavum EeR24 from the Arava Desert Induces Resistance Against Fusarium Wilt of Muskmelons
by Vineet Meshram, Meirav Elazar, Marcel Maymon, Gunjan Sharma, Eduard Belausov, Dana Charuvi, Mahiti Gupta, Soniya Goyal, Surbhi Goel and Stanley Freeman
Microorganisms 2026, 14(4), 871; https://doi.org/10.3390/microorganisms14040871 - 12 Apr 2026
Viewed by 996
Abstract
Muskmelon (Cucumis melo) is a widely cultivated and economically important fruit crop that is severely affected by Fusarium wilt caused by Fusarium oxysporum f. sp. melonis (race 1.2) (Fom). Conventional management practices have shown limited effectiveness and pose environmental and health [...] Read more.
Muskmelon (Cucumis melo) is a widely cultivated and economically important fruit crop that is severely affected by Fusarium wilt caused by Fusarium oxysporum f. sp. melonis (race 1.2) (Fom). Conventional management practices have shown limited effectiveness and pose environmental and health risks; therefore, sustainable and eco-friendly alternatives are required to manage this disease. In the present study, 23 endophytic fungal isolates belonging to eight genera were isolated from Ecballium elaterium and screened to determine antifungal potential against Fom using an in vitro antagonistic assay. Two endophytic isolates (Fusarium sp. EeR4 and Fusarium clavum EeR24) exhibited an inhibitory effect against Fom on quarter-strength PDA plates. In growth chamber experiments, F. clavum EeR24-colonized melon seedlings and significantly protected plants from wilting compared to non-colonized pathogen-challenged seedlings. Under greenhouse conditions, F. clavum EeR24 significantly improved morphological and physiological traits, including plant height, weight, number of leaves, membrane stability, photosynthesis, stomatal conductance, and transpiration, in Cucumis melo. Endophytic colonization improved catalase (56%), guaiacol peroxide (47%), and superoxide dismutase activity (25%), and increased flavonoid and phenolic content by 11–59% compared to non-colonized Fom-challenged plants. Lipid peroxidation significantly decreased by 37% and proline accumulation increased by 70% in colonized plants compared to non-colonized plants. Histochemical analysis also indicated that endophytic colonization considerably reduced the levels of H2O2, O2, malondialdehyde, and cell mortality in Fom-challenged plants. In addition, the culture filtrate and organic residues of F. clavum EeR24 inhibited the mycelial growth of Fom by 52–58%, respectively. Furthermore, a study on spatial colonization of the endophyte and the pathogen using GFP and RFP tagging indicated that both the endophyte and the pathogen simultaneously colonized the root tissues of C. melo; however, the endophyte significantly reduced the pathogenicity of Fom. These results suggest that endophytic F. clavum EeR24 may be developed as an effective biocontrol agent for the management of Fusarium wilt in melon plants under field conditions. Full article
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16 pages, 3434 KB  
Article
Berberine-Loaded Chitosan-Succinylated Pullulan Composite Films for the Preservation of Fresh-Cut Apples
by Xinyu Zhang, Chu Gong, Yujie Liu, Jun Wang, Zhizhou Yang and Jun-Li Yang
Polymers 2026, 18(8), 908; https://doi.org/10.3390/polym18080908 - 8 Apr 2026
Cited by 2 | Viewed by 781
Abstract
Biopolymer-based packaging films possess outstanding performances and are being developed as the alternatives to traditional petroleum-based plastic packaging films with many non-ignorable shortcomings. In this study, chitosan, succinylated pullulan (SP), and berberine (BBR) were combined to fabricate novel biopolymer-based composite films (CSSPB) via [...] Read more.
Biopolymer-based packaging films possess outstanding performances and are being developed as the alternatives to traditional petroleum-based plastic packaging films with many non-ignorable shortcomings. In this study, chitosan, succinylated pullulan (SP), and berberine (BBR) were combined to fabricate novel biopolymer-based composite films (CSSPB) via the layer-by-layer assembly method. The effects of the incorporation of BBR on the physicochemical properties of the film were investigated. It was found that after BBR was added, the tensile strength (TS), elongation at break (EAB), hydrophobicity, and antioxidant capacities of the film were enhanced. The chemical bonding, crystalline properties, elemental composition, and thermal stability of the films were also characterized by Fourier transform infrared (FT-IR) spectroscopy, X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), and thermogravimetric analysis (TGA), respectively. The in vitro antifungal tests revealed the antifungal activities of the films with a relatively high BBR content against Colletotrichum gloeosporioides (CG). In the preservation experiments, the CSSPB films exhibited preservation effects on fresh-cut apples, which manifested as delaying browning, weight loss, an increase in the soluble solids content, and a decrease in hardness. The new CSSPB composite films were opined to hold application potential in the field of food packaging. Full article
(This article belongs to the Special Issue Biobased Polymers and Its Composites)
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40 pages, 8273 KB  
Review
Calcium Phosphate Nanostructured Biocomposites with Applications in Bone Tissue Engineering
by Gabriela Petcu, Elena Maria Anghel, Viorica Parvulescu, Alina Maria Holban, Carmen Curutiu, Cornelia-Ioana Ilie and Lia-Mara Ditu
Materials 2026, 19(7), 1375; https://doi.org/10.3390/ma19071375 - 30 Mar 2026
Cited by 5 | Viewed by 1601
Abstract
Nanostructured calcium phosphate-based (CaP) biocomposites have proven to be ideal candidates for the creation of multifunctional systems with applications in biomedicine. This review presents a critical and integrative overview of recent advances in the synthesis of CaP nanocomposites with applications in bone tissue [...] Read more.
Nanostructured calcium phosphate-based (CaP) biocomposites have proven to be ideal candidates for the creation of multifunctional systems with applications in biomedicine. This review presents a critical and integrative overview of recent advances in the synthesis of CaP nanocomposites with applications in bone tissue regeneration. An analysis of calcium phosphate-based nanocomposites is thus provided by correlating their composition, synthesis routes and biological properties, guiding the rational development of next-generation biomaterials for bone tissue engineering. The first section presents calcium phosphates, such as hydroxyapatite (HAp) or β-tricalcium phosphate (β-TCP), used in the preparation of nanocomposite materials. Next, the main biocomposite materials are analyzed as a result of the functionalization of calcium phosphates by metal ion substitutions or by the addition of polymers, bioglass or metal additives. Thus, biomaterials with excellent properties in applications such as tissue engineering have been obtained. The synergistic effect of materials in the composition of biocomposites favored the improvement of properties such as bioactivity, mechanical strength, antimicrobial activity, structure and porosity. Beyond classical osteoconductivity, CaP-based nanocomposites demonstrate a broad spectrum of biological activities like immunomodulatory effects, pro-healing signaling, anti-inflammatory pathways, antibacterial and antifungal mechanisms, and capabilities for precise drug delivery or theranostic applications. Full article
(This article belongs to the Special Issue Calcium Phosphate Biomaterials with Medical Applications)
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18 pages, 4459 KB  
Article
Wollastonite in Acrylic Paint to Protect Normal and Heat-Treated Spruce Wood Against Coniophora puteana
by Hamid R. Taghiyari, Elham Nadali, Antonio Pizzi, Afshin Rahmati, Olaf Schmidt and Antonios N. Papadopoulos
Polymers 2026, 18(7), 788; https://doi.org/10.3390/polym18070788 - 25 Mar 2026
Cited by 1 | Viewed by 708
Abstract
This study investigates the efficacy of wollastonite-enriched acrylic paint in protecting spruce wood (Picea abies) against the brown-rot fungus Coniophora puteana. Unheated and heat-treated wood samples (185 °C for 4 h) were coated with either plain acrylic paint or wollastonite-enriched [...] Read more.
This study investigates the efficacy of wollastonite-enriched acrylic paint in protecting spruce wood (Picea abies) against the brown-rot fungus Coniophora puteana. Unheated and heat-treated wood samples (185 °C for 4 h) were coated with either plain acrylic paint or wollastonite-enriched acrylic paint and exposed to the fungus. Fungal resistance was evaluated by measuring mass loss (ML) and compression strength parallel to the grain. While conventional acrylic coatings provide a physical barrier against moisture and limited microbial attack, their effectiveness against C. puteana is often insufficient. Our results show that untreated controls lost 23.8% of their mass, whereas plain acrylic paint reduced mass loss only slightly. In contrast, wollastonite-enriched paint significantly decreased ML in both unheated and heat-treated specimens, demonstrating superior antifungal performance. These findings indicate that incorporating wollastonite into acrylic paint enhances fungal resistance, offering a simple, environmentally friendly, and effective surface treatment for spruce wood. This study fills a research gap in the use of mineral additives in acrylic coatings and highlights a practical approach for improving wood durability against fungal decay. Full article
(This article belongs to the Special Issue Wood Polymer Composites: Progress and Prospects)
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22 pages, 6193 KB  
Article
Temperature-Responsive Antimicrobial Nanofibrous Film Encapsulating Cinnamon Oil for Chinese Bayberry Preservation
by Mengjie Bian, Xinhui Zhang, Chong Shi, Yaqiong Wu, Yicheng Wang, Fuliang Cao, Donglu Fang and Weilin Li
Agronomy 2026, 16(5), 519; https://doi.org/10.3390/agronomy16050519 - 27 Feb 2026
Viewed by 928
Abstract
This research developed an active food packaging system featuring a tailored controlled-release mechanism. The system was fabricated using temperature-responsive poly(N-vinylcaprolactam) (PNVCL) nanofibers with a core-shell architecture. The resulting film incorporated cinnamon essential oil (CEO) as a natural preservative within a composite structure consisting [...] Read more.
This research developed an active food packaging system featuring a tailored controlled-release mechanism. The system was fabricated using temperature-responsive poly(N-vinylcaprolactam) (PNVCL) nanofibers with a core-shell architecture. The resulting film incorporated cinnamon essential oil (CEO) as a natural preservative within a composite structure consisting of PNVCL, polyvinyl alcohol (PVA), polylactic acid (PLA) and CEO. The nanofiber film obtained via coaxial electrospinning exhibited a sandwich-like structure; the obtained fiber membrane is abbreviated as PP/PC, and the number represents the essential oil content. The PP/PC-4 composite demonstrated exceptional physical barrier properties and mechanical strength, with a WVP as high as 5.74 ± 0.37 (g·mm)/(m2·h·kPa). It also achieved the highest maximum force, elastic modulus, and tensile strength, recorded at 3.08 ± 0.31 N, 228.86 ± 15.46 MPa, and 5.26 ± 0.72 MPa, respectively, along with superior thermal stability. FTIR spectroscopy confirmed molecular interactions, specifically through C–H bonding, between the PLA/CEO core and the PNVCL shell layers. After 5 d of storage at 40 °C, the PP/PC-4 film retained substantial antibacterial efficacy. The antifungal efficacy demonstrated the highest performance, exceeding the control group by 32%. The weight loss rate on day four was 28%, significantly lower than other groups, while the hardness retention rate was 73% higher than the control group and 44% higher than PLA/CEO (4%). Application of this material prolonged the shelf life of Chinese bayberry (Myrica rubra) by 4 d while enhancing key preservation metrics. Owing to its advanced barrier properties, mechanical performance and temperature-modulated release characteristics, this PNVCL-based nanofiber film demonstrated strong potential as an intelligent packaging material for prolonging the freshness of perishable food products. Full article
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Article
Development of Bioactive Carboxymethyl Cellulose-Based Films via Dual Crosslinking with Citric Acid and X-Ray Irradiation
by Jumana Mahmud, Juan Heredia, Muhammed R. Sharaby, Lily Jaiswal, Stephane Salmieri, Seyedeh Elmira Moosavi and Monique Lacroix
Foods 2026, 15(4), 713; https://doi.org/10.3390/foods15040713 - 14 Feb 2026
Cited by 2 | Viewed by 1534
Abstract
This study developed biodegradable carboxymethyl cellulose (CMC) films crosslinked with citric acid (CA) and X-ray irradiation as sustainable packaging alternatives to reduce plastic use. CMC/CA films were subjected to three doses of X-ray irradiation at two energy levels. CMC/CA films exposed to 10 [...] Read more.
This study developed biodegradable carboxymethyl cellulose (CMC) films crosslinked with citric acid (CA) and X-ray irradiation as sustainable packaging alternatives to reduce plastic use. CMC/CA films were subjected to three doses of X-ray irradiation at two energy levels. CMC/CA films exposed to 10 kGy at 350 kV exhibited a significant three-fold reduction in water solubility compared to non-irradiated films, while also lowering water vapor and oxygen permeability without affecting mechanical strength (p ≤ 0.05). FTIR analysis confirmed the esterification between CMC and CA, which reduced the film hydrophilicity. Onion peel extract (OPE) was added as a bioactive compound to provide antifungal properties. Release studies showed reduced OPE diffusion in irradiated films, with lower release rate constant (kkp) values. The in situ test on cheese inoculated with Penicillium commune showed that the irradiated bioactive films prolonged shelf life, reducing fungal counts to log 2.3 CFU/g after 18 days compared to log 5.7 CFU/g in control samples. Cheese wrapped with irradiated bioactive films had weight loss from 1.05 to 9.37%, whereas uncovered samples exhibited the highest weight loss (2.07 to 15.07%). Overall, irradiation-assisted crosslinking and OPE incorporation improved film functionality, offering a sustainable and effective packaging solution for cheese preservation within a circular economy framework. Full article
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