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Keywords = biofunctional performances

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18 pages, 25564 KB  
Article
Evaluation of Advanced Delivery Methods to Transport Bio-Functional Components in Cracked Concrete
by Geetika Mishra, Irene Verdu, Christopher M. Sales and Yaghoob (Amir) Farnam
CivilEng 2026, 7(3), 61; https://doi.org/10.3390/civileng7030061 - 10 Sep 2026
Viewed by 210
Abstract
The effective delivery of bio-functional agents into cracked concrete remains a critical challenge for achieving reliable microbially induced calcium carbonate precipitation (MICCP)-based self-healing. This study investigates a hydrogel-assisted delivery approach using sodium alginate (SA) to facilitate the transport and distribution of Lysinibacillus sphaericus [...] Read more.
The effective delivery of bio-functional agents into cracked concrete remains a critical challenge for achieving reliable microbially induced calcium carbonate precipitation (MICCP)-based self-healing. This study investigates a hydrogel-assisted delivery approach using sodium alginate (SA) to facilitate the transport and distribution of Lysinibacillus sphaericus within subsurface cracks. An artificial crack (~0.2 mm width) was created in mortar specimens to provide a defined and localized pathway for hydrogel delivery. SA hydrogels at different concentrations (2%, 4%, and 6 wt%) and temperatures (20 °C, 40 °C, and 60 °C) were injected inside the crack in both types of samples with and without channels. The transport behavior was quantified through ImageJ analysis, while biological performance was evaluated using optical microscopy, thermogravimetric analysis (TGA), and X-ray computed tomography (X-CT). The results showed that 2% and 4 wt% SA hydrogels achieved >95% infiltration of the crack volume and with a minor influence of the drilled channel, indicating effective transport through the crack and pore network. Optical microscopy confirmed bacterial distribution throughout the crack depth. TGA showed about 18.23 mg and 8.14 mg higher CaCO3 precipitation in bacteria-treated specimens than in controls at 7 and 28 days, respectively, demonstrating MICCP activity. X-CT visualization further showed substantial crack filling in the bacteria-treated specimens, with an estimated 86.4% of the crack volume occupied by bio-products and a hydrogel matrix. These results demonstrate that an appropriately selected SA concentration and temperature can facilitate targeted bacterial delivery and MICCP-based crack filling. Full article
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40 pages, 5340 KB  
Review
Green Synthesis and Functional Design of Polypyrrole-Based Nanomedicines for Cancer Theranostics: A Critical Review and Sustainability-Guided Perspective
by Jiaqiao Zhong and Yuanzhe Li
Polymers 2026, 18(16), 2030; https://doi.org/10.3390/polym18162030 - 21 Aug 2026
Viewed by 479
Abstract
Nanomedicine has advanced cancer theranostics via targeted delivery and phototherapy, yet many high-performance systems rely on inorganic or metal-intensive materials synthesized through energy-demanding routes, raising concerns about biocompatibility, environmental accumulation, and sustainability. This review re-evaluates polypyrrole (PPy)-based nanomedicines from a green chemistry perspective, [...] Read more.
Nanomedicine has advanced cancer theranostics via targeted delivery and phototherapy, yet many high-performance systems rely on inorganic or metal-intensive materials synthesized through energy-demanding routes, raising concerns about biocompatibility, environmental accumulation, and sustainability. This review re-evaluates polypyrrole (PPy)-based nanomedicines from a green chemistry perspective, shifting focus from performance-centric optimization to sustainability-guided design. PPy, an organic conductive polymer with near-infrared photothermal activity and structural tunability, offers a promising platform. However, pristine PPy suffers from limited functionality, poor biodegradability, and insufficient reactive oxygen species (ROS) generation. Reported FeCl3-, CuCl2-, and Fe2+/H2O2-mediated routes are compared to examine formulation-specific relationships among synthesis conditions, polymer characteristics, redox behavior, ROS-related function, and process burdens. Because the underlying studies differ in composition, processing, purification, and assay conditions, these comparisons are used to identify evidence-supported trade-offs and data gaps rather than to establish a universal causal hierarchy. Green strategies are critically assessed, including one-step carboxylated copolymerization for backbone degradability and metal–polyphenol networks for catalytic ROS amplification. To organize the heterogeneous evidence, this review introduces a PPy-specific dual-axis evidence map that considers process-related sustainability alongside biofunctional performance. This qualitative tool is intended to identify trade-offs and evidence gaps rather than provide a validated sustainability score. Full article
(This article belongs to the Section Polymer Applications)
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19 pages, 5030 KB  
Article
High-Performance Regenerated Silk Fibers as Building Blocks of Tissue Scaffolds: The European THOR Project
by José Pérez-Rigueiro, Atocha Guedán-Durán, Fivos Panetsos, Gianna Arencibia, Gustavo V. Guinea, Luis Colchero, Miriam Quero, Jaime Espinosa, Alessandro Rizzi, Tando Maduna, Anna Pancho, Marsela Hakani, Andreas Vlachos, Julia Sepúlveda-Díaz, Alan Morin, Michele Papa, Giovanni Cirillo, Assunta Virtuoso and Ciro De Luca
Biomimetics 2026, 11(8), 566; https://doi.org/10.3390/biomimetics11080566 - 8 Aug 2026
Viewed by 741
Abstract
The European Pathfinder THOR project envisages the creation of a vascularized fragment of tissue that can be implanted in a patient using regenerated silk fibers as its building blocks. The selection of regenerated silk as the main building block of the scaffold relies [...] Read more.
The European Pathfinder THOR project envisages the creation of a vascularized fragment of tissue that can be implanted in a patient using regenerated silk fibers as its building blocks. The selection of regenerated silk as the main building block of the scaffold relies heavily on its outstanding biocompatibility in comparison with either other artificial polymeric fibers or even natural silk fibers. Additionally, regenerated fibers produced through the Dynamic Dope Destabilization Spinning (D3STM) process are shown to exhibit high mechanical performance as reflected in values of strain at breaking and work to fracture comparable to those of the natural material. It is further shown that these fibers are endowed with the unique property of self-adhesion whereby hydrated fibers attach to one another and may sustain detachment forces of up to a few tens of MPa, a property that facilitates the generation of the scaffold with the fibers as its basic building block. Lastly, regenerated silk fibers are shown to be efficiently decorated with either peptides or small proteins, such as the vascular endothelial growth factor (VEGF), or with antibodies. The performance of both non-functionalized and decorated silk fibers is assessed in two different in vitro biological systems: (1) endothelial cell cultures, and (2) organotypic brain slice cultures. Together, these results support the use of regenerated silk fibers as versatile building blocks for biofunctional tissue scaffolds and provide experimental validation of the tissue engineering strategy established by the THOR project. Full article
(This article belongs to the Special Issue Silk-Based Bioinspired Materials: Design and Application 2026)
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23 pages, 5868 KB  
Review
Surface Engineering for PMMA-Based Removable Prostheses: A Narrative Review
by Jamal Al Ashkar, Nicoleta Ioanid, Delia Teodora Dima, Ruxandra Teodora Stan, Andreas Katsonis, Ana-Maria Raluca Pauna and Roxana-Ionela Vasluianu
Polymers 2026, 18(14), 1765; https://doi.org/10.3390/polym18141765 - 20 Jul 2026
Viewed by 530
Abstract
Polymethylmethacrylate (PMMA) is still the most widely used prosthetic polymer, although its biological inertness and vulnerability to mechanical stress and microbiological colonization are gradually restricting its therapeutic lifespan. This narrative review develops a conceptual framework, three ceramic modifiers corresponding to three distinct biofunctional [...] Read more.
Polymethylmethacrylate (PMMA) is still the most widely used prosthetic polymer, although its biological inertness and vulnerability to mechanical stress and microbiological colonization are gradually restricting its therapeutic lifespan. This narrative review develops a conceptual framework, three ceramic modifiers corresponding to three distinct biofunctional strategies, to logically guide the design of the next generation of PMMA-based prosthetic dentures. We critically analyze the transformation of hydroxyapatite (HA), silica (SiO2), and titanium dioxide (TiO2) from passive fillers to active functional phases, offering unique, complementary therapeutic advantages. Therefore, HA confers osteoconductive and bone affinity, SiO2 provides surface reactivity, tunable bioactivity, and drug release capacity, while TiO2 provides mechanical reinforcement, chemical stability, and photocatalytic antibacterial activity. These ceramics used in PMMA matrices result in hybrid materials that outperform standard resins in terms of structural, mechanical, and biological performance. Recent research on binary and ternary systems (e.g., HA–TiO2, SiO2–HA, and HA–SiO2–TiO2 in PMMA) has indicated synergistic effects, such as increased osteoblast proliferation, reduced biofilm development, improved fracture toughness, and favorable corrosion resistance in simulated oral environments. A decision matrix is also provided to assist the clinician in selecting the best ceramic for a given clinical function of a prosthetic base or provisional repair. Although polymer–ceramic hybrid systems show remarkable translational potential, there are still obstacles to be addressed in terms of long-term interfacial stability, standardized synthesis processes, and regulatory mechanisms. This review proposes a framework of PMMA as a multimodal biofunctional engineering platform rather than a basic structural polymer and provides a roadmap for the development of intelligent, interactive, and clinically durable prosthetic materials. Full article
(This article belongs to the Section Polymer Analysis and Characterization)
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27 pages, 5089 KB  
Review
Toward Predictive Design of Lignocellulosic Mycelium-Bound Composites: A Process–Structure–Property Framework, Quantitative Synthesis, and Standardization Roadmap
by Musiliu A. Liadi, Tawakalt O. Ayodele, Ibrahim A. Bello, C. Igathinathane and Hammed M. Ademola
Polymers 2026, 18(13), 1652; https://doi.org/10.3390/polym18131652 - 2 Jul 2026
Cited by 1 | Viewed by 810
Abstract
Mycelium-bound composites (MBCs) have emerged as a promising class of biofabricated materials that integrate fungal hyphal networks with lignocellulosic substrates to form lightweight, biodegradable structures without synthetic adhesives. Despite rapid growth in the field, the current literature remains fragmented, with inconsistent methodologies and [...] Read more.
Mycelium-bound composites (MBCs) have emerged as a promising class of biofabricated materials that integrate fungal hyphal networks with lignocellulosic substrates to form lightweight, biodegradable structures without synthetic adhesives. Despite rapid growth in the field, the current literature remains fragmented, with inconsistent methodologies and widely varying reported material properties. This review advances the field by moving beyond descriptive synthesis toward a quantitative and conceptual integration of existing studies. We systematically analyze how key fabrication variables—including fungal species, substrate composition, growth conditions, and post-processing parameters—govern density, porosity, and mechanical performance. A process–structure–property (PSP) framework is proposed to combine these relationships and explain discrepancies across studies. We highlight the dominant role of densification and moisture conditioning in determining compressive strength, often outweighing species-level effects. A comparative synthesis of reported data reveals significant variability in compressive strength (0.05–1.2 MPa) and elastic modulus, attributable to inconsistencies in sample preparation, testing protocols, and environmental conditioning. To address this, we identify critical gaps in standardization and propose actionable testing protocols and reporting guidelines for reproducibility. Furthermore, we assess the technology readiness level (TRL) of MBC systems and distinguish between laboratory-scale innovations and commercially viable processes. While hybridization strategies and biofunctional applications offer promising avenues, their maturity varies widely. This work provides a decision-oriented framework for MBC design and a roadmap for transitioning these materials from experimental systems to scalable, standardized, and application-ready biomaterials. Full article
(This article belongs to the Special Issue Advanced Study on Lignin-Containing Composites)
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29 pages, 9801 KB  
Article
Phosphorylated Chitosan Modulates the Surface, Mechanical, Optical, and Antibacterial Behavior of Short- and Long-Term 3D-Printed Dental Resins
by Sofia Garibaldi Otavio, Renan Leonardi de Oliveira Rigotti, Tatiane Cristina Dotta, Rogério Valentim Gelamo, Ana Paula Ramos and Rodrigo Galo
Polymers 2026, 18(13), 1576; https://doi.org/10.3390/polym18131576 - 24 Jun 2026
Cited by 1 | Viewed by 623
Abstract
The incorporation of antimicrobial agents into 3D-printed resins may improve their biological performance; however, their effects on physicochemical and mechanical properties remain unclear. This study evaluated the influence of phosphorylated chitosan (P-Chi; 0.25% and 0.50% w/w) incorporated into short- (ST) [...] Read more.
The incorporation of antimicrobial agents into 3D-printed resins may improve their biological performance; however, their effects on physicochemical and mechanical properties remain unclear. This study evaluated the influence of phosphorylated chitosan (P-Chi; 0.25% and 0.50% w/w) incorporated into short- (ST) and long-term (LT) 3D-printed dental resins. Surface, mechanical, optical, and antibacterial properties against Streptococcus mutans were investigated using standardized methods. FTIR confirmed the successful phosphorylation and incorporation of P-Chi into both resin matrices. P-Chi significantly reduced S. mutans CFU counts compared with the control (p < 0.001, η2p = 0.286), regardless of concentration, although no inhibition halos were detected, indicating a contact-dependent antimicrobial mechanism. Enhanced antibacterial activity was accompanied by increased surface roughness and wettability. Nanoparticle concentration significantly affected mechanical performance (p = 0.001), whereas resin type did not (p = 0.613). The 0.25% groups exhibited lower flexural strength and microhardness than the controls (p < 0.05), while the 0.50% groups maintained flexural strength comparable to that of the controls, with G6 showing the highest elastic modulus (3494.95 ± 301.30 MPa). Color variation was influenced by resin type rather than P-Chi concentration (p < 0.05). Overall, P-Chi enhanced antibacterial activity while maintaining clinically acceptable mechanical properties, supporting its use as a multifunctional additive for biofunctional 3D-printed provisional resins. Full article
(This article belongs to the Special Issue Chitosan and Its Composite Materials for Biomedical Applications)
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24 pages, 5073 KB  
Article
Storage Stability of a Multifunctional Fermented Blend Based on Sacha Inchi (Plukenetia volubilis) Oil Press Cake and Yacon (Smallanthus sonchifolius) Flour: Physicochemical Properties, Bioactivity, and Prebiotic–Probiotic Potential
by David Campos, Rosana Chirinos, Ana Aguilar-Galvez, María P. Carrasco and Romina Pedreschi
Foods 2026, 15(12), 2131; https://doi.org/10.3390/foods15122131 - 13 Jun 2026
Viewed by 584
Abstract
Plant-based symbiotic systems are often limited by poor storage stability and inconsistent biofunctional performance. This study evaluated the stability and functionality of a fermented blend based on sacha inchi (Plukenetia volubilis) oil press cake (SIC) and yacon (Smallanthus sonchifolius) [...] Read more.
Plant-based symbiotic systems are often limited by poor storage stability and inconsistent biofunctional performance. This study evaluated the stability and functionality of a fermented blend based on sacha inchi (Plukenetia volubilis) oil press cake (SIC) and yacon (Smallanthus sonchifolius) flour (YF) as sources of protein and fructooligosaccharides (FOS), respectively, using two processing strategies: fermentation with Lactobacillus rhamnosus (T1) and combined enzymatic hydrolysis with Alcalase and fermentation with Lactobacillus plantarum (T2). Both treatments maintained viable cell counts (VCC) above probiotic thresholds (>106 CFU mL−1) during 28 days of storage at 4 °C, confirming their suitability as probiotic carriers. Notably, T2 significantly enhanced metabolic activity, as evidenced by higher organic acid production and increased soluble protein content due to Alcalase-mediated hydrolysis, which promoted the generation of bioactive peptides associated with improved antioxidant and antihypertensive activities. Biofunctional properties, including total phenolic content, antioxidant capacity (AC), and angiotensin-converting enzyme (ACE) inhibitory activity, remained stable throughout storage, while FOS degradation was minimal, confirming preservation of prebiotic functionality. LC–MS/MS Q-TOF analysis revealed a complex phenolic profile that was differentially modulated by lactic acid fermentation, with L. plantarum (T2) promoting extensive phenolic biotransformation and increased metabolite diversity, whereas L. rhamnosus (T1) largely preserved the original phenolic profile. These findings demonstrate that the synergistic interaction between enzymatic hydrolysis and L. plantarum fermentation promoted peptide release, intensified microbial metabolism, and enhanced phenolic biotransformation, thereby contributing to the superior functional properties observed in T2, while maintaining stable biofunctional characteristics throughout refrigerated storage in both treatments. Full article
(This article belongs to the Section Food Engineering and Technology)
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49 pages, 9657 KB  
Review
Fundamentals and Advances in Programmable Peptide Hydrogels for Multifunctional Biomedical Applications: A Review
by Yihao Zhao, Zhe Zhang, Mingyang Jiang, Cancan Xu and Zhiwei Shen
Gels 2026, 12(6), 527; https://doi.org/10.3390/gels12060527 - 11 Jun 2026
Cited by 1 | Viewed by 1280
Abstract
Programmable peptide hydrogels represent advanced supramolecular biomaterials featured with customizable molecular sequences and tunable self-assembly behaviors, which can biomimetically reconstruct the structural and microenvironmental complexity of native extracellular matrix. This review systematically elaborates the molecular engineering advances of programmable peptide hydrogels following a [...] Read more.
Programmable peptide hydrogels represent advanced supramolecular biomaterials featured with customizable molecular sequences and tunable self-assembly behaviors, which can biomimetically reconstruct the structural and microenvironmental complexity of native extracellular matrix. This review systematically elaborates the molecular engineering advances of programmable peptide hydrogels following a hierarchical logic from fundamental mechanisms to translational applications. We first interpret the intrinsic self-assembly mechanisms driven by non-covalent interactions and the regulatory effects of typical external microenvironmental stimuli. On this basis, we summarize core rational design principles, covering stimuli-responsive structural optimization, biofunctional modification, and the tunable regulation of physical properties, degradability and immunogenicity. Furthermore, we correlate multi-scale structural features (nanostructures, porous architecture and mechanical properties) with their versatile biomedical functions, and comprehensively discuss their cutting-edge applications in tissue regeneration, targeted drug and gene delivery, cell-mediated therapy, immunomodulation, and anti-infective treatment. Finally, we identify critical translational barriers including batch-to-batch inconsistency, immunogenic risks, and in vivo performance instability, and highlight future directions involving multi-stimuli-responsive systems, artificial intelligence-assisted design, computational modeling, and hybrid material construction. This work systematically clarifies the structure–property–function relationship of peptide hydrogels, and underscores their great potential as next-generation platforms for precision regenerative medicine and targeted disease intervention. Full article
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23 pages, 7432 KB  
Article
Eco-Friendly Selenium-Hyaluronic Acid Nanoconjugates with Potent Anticancer, Antimicrobial, Anti-Inflammatory and Wound-Healing Activities
by Husam Qanash, Bandar Alharbi, Abdulrahman S. Bazaid, Ghaida Alsaif, Talal Alharazi and Naif K. Binsaleh
Polymers 2026, 18(11), 1376; https://doi.org/10.3390/polym18111376 - 1 Jun 2026
Viewed by 717
Abstract
Cancer and multidrug-resistant microbial infections remain major global health challenges, underscoring the need for multifunctional, biocompatible, and environmentally sustainable therapeutic platforms. Herein, selenium–hyaluronic acid nanoconjugates (Se/HA NPs) were synthesized through an eco-friendly ascorbic acid-mediated reduction approach to improve the bio-functional stability and therapeutic [...] Read more.
Cancer and multidrug-resistant microbial infections remain major global health challenges, underscoring the need for multifunctional, biocompatible, and environmentally sustainable therapeutic platforms. Herein, selenium–hyaluronic acid nanoconjugates (Se/HA NPs) were synthesized through an eco-friendly ascorbic acid-mediated reduction approach to improve the bio-functional stability and therapeutic performance of selenium-based nanomaterials. The formation of Se/HA NPs was confirmed by transmission electron microscopy (TEM), X-ray diffraction (XRD), energy-dispersive X-ray spectroscopy (EDX), and Fourier-transform infrared spectroscopy (FTIR). FTIR analysis supported the involvement of ascorbic acid- and hyaluronic acid-associated functional groups in nanoparticle formation and stabilization. TEM revealed well-dispersed, predominantly spherical nanoparticles with diameters ranging from 29.72 to 80.38 nm, while XRD confirmed their crystalline nature with an average crystallite size of 31.2 nm. Biologically, Se/HA NPs exhibited strong antibacterial activity against Enterococcus faecalis (21 mm), Staphylococcus aureus (24 mm), Escherichia coli (25 mm), and Klebsiella pneumoniae (27 mm), outperforming hyaluronic acid alone and showing activity comparable to standard antibiotics, with a minimum inhibitory concentration (MIC) of 15.62 µg/mL. Notably, Se/HA NPs showed pronounced antifungal activity against Candida albicans, with an inhibition zone of 34 mm and an MIC of 7.8 µg/mL. In MG-63 osteosarcoma cells, Se/HA NPs demonstrated potent cytotoxicity, with a half-maximal inhibitory concentration (IC50) of 8.36 µg/mL compared with 746.37 µg/mL for hyaluronic acid. Moreover, Se/HA NPs enhanced wound closure to 73.41% and showed strong anti-inflammatory activity, with an IC50 of 5.37 µg/mL, demonstrating multifunctional bioactivity. Full article
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40 pages, 2063 KB  
Review
From Plant Metabolites to Functional Nanomaterials: Advances in Phytochemical-Mediated Silver Nanoparticle Synthesis and Applications
by Edith Dube
Micro 2026, 6(2), 40; https://doi.org/10.3390/micro6020040 - 1 Jun 2026
Cited by 9 | Viewed by 2015
Abstract
Phytochemical-assisted green synthesis of silver nanoparticles offers a sustainable alternative to conventional fabrication routes by utilising plant-derived metabolites as multifunctional reducing, capping, and stabilising agents. Polyphenols, flavonoids, tannins, alkaloids, and related biomolecules mediate the reduction of Ag+ to Ag0 under mild [...] Read more.
Phytochemical-assisted green synthesis of silver nanoparticles offers a sustainable alternative to conventional fabrication routes by utilising plant-derived metabolites as multifunctional reducing, capping, and stabilising agents. Polyphenols, flavonoids, tannins, alkaloids, and related biomolecules mediate the reduction of Ag+ to Ag0 under mild conditions while controlling nucleation, growth, and surface stabilisation, thereby dictating nanoparticle size, morphology, and colloidal stability. This review establishes clear links between phytochemical composition and the mechanistic pathways governing nanoparticle formation and biofunctional performance. Variations in extract chemistry influence electron transfer dynamics, surface functionalisation, and physicochemical properties, ultimately modulating biological activity. Enhanced antimicrobial and antioxidant effects arise from synergistic interactions between the silver core and phytochemical capping layers, promoting membrane disruption, reactive oxygen species generation, and biomolecular interference. Despite promising applications in antimicrobial coatings, food preservation, agriculture, and anticancer systems, key challenges remain, including compositional variability, limited mechanistic standardisation, and insufficient toxicological evaluation. Nonetheless, phytochemical-assisted synthesis provides a tunable and sustainable platform for AgNP production, aligning nanomaterial design with green chemistry principles while enabling multifunctional bioactivity. By integrating phytochemical composition, mechanistic synthesis pathways, and structure–activity relationships across diverse applications, this review provides a critical framework for the rational design, standardisation, and scalable development of next-generation phytochemical-mediated AgNP systems. Full article
(This article belongs to the Section Microscale Materials Science)
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23 pages, 1937 KB  
Article
Fermentation of Apple Pomace: Bioactive Lipid Extracts with Antioxidant, Anti-Inflammatory and Antithrombotic Activities in a Cement Tank System
by Vasileios D. Prokopiou, Meggie Louzi, Emmanouil Tsavdaridis, Maria Kokontini, Spyridoula Tsataliou, Aikaterini Eirini Zontanou, Christos Plakidis, Anna Ofrydopoulou, Zoi S. Metaxa and Alexandros Tsoupras
Appl. Sci. 2026, 16(10), 5093; https://doi.org/10.3390/app16105093 - 20 May 2026
Viewed by 611
Abstract
Efficient use of agro-industrial residues is central to developing a circular bioeconomy. In this study, apple pomace was used as a feedstock for fermentation with water kefir cultures to investigate the formation of bioactive compounds and evaluate their functional biological effects. The effects [...] Read more.
Efficient use of agro-industrial residues is central to developing a circular bioeconomy. In this study, apple pomace was used as a feedstock for fermentation with water kefir cultures to investigate the formation of bioactive compounds and evaluate their functional biological effects. The effects of fermentation in a cement tank were compared to a reference fermentation system using a conventional glass vessel, focusing on physicochemical parameters and biological activity. Despite differences in pH evolution, no significant differences between the two fermentation systems were found in antioxidant capacity, total phenolic and carotenoid content, or inhibitory activity against platelet aggregation. Lipid extracts from both systems showed strong antioxidant properties and pronounced inhibitory activity against platelet-activating factor (PAF)- and ADP-induced aggregation, with significantly lower IC50 values for PAF (p < 0.05), indicating enhanced anti-inflammatory specificity. These effects may be attributed to the synergistic interaction of fermentation-derived bioactives, including polar lipids, aglycone flavonoids, and carotenoids. Importantly, fermentation in a cement tank did not compromise biofunctional performance, highlighting its potential as a low-cost and scalable alternative for bioprocessing. Overall, these findings demonstrate that water kefir fermentation can efficiently convert low-value fruit residues into bioactive-rich matrices, providing a sustainable and environmentally friendly approach aligned with EU and UN circular economy frameworks for waste reduction and resource valorization. Full article
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16 pages, 1954 KB  
Article
Bioengineering Insights into Orientation and Structural Stability of Phenyl Methyl Thiazole Derivative with β-Cyclodextrin Through Computational Modeling
by Eswaran Kamaraj, Arumugam Anitha, Moorthiraman Murugan and Rajaram Rajamohan
Bioengineering 2026, 13(5), 583; https://doi.org/10.3390/bioengineering13050583 - 19 May 2026
Viewed by 506
Abstract
This study explores the formation of inclusion complexes between a newly synthesized N-(2-(butylamino)-2-oxoethyl)-2-(3-cyano-4-isobutoxyphenyl)-4-methylthiazole-5-carboxamide with β-cyclodextrin using density functional theory with dispersion correction (DFT-D3) at the B3LYP-GD3/3-21G, 6-31G(d), 6-31G’(d), and 6-311G(d) levels. Two orientations are considered: in Orientation A, the 3-cyano-4-isobutoxyphenyl moiety interacts with [...] Read more.
This study explores the formation of inclusion complexes between a newly synthesized N-(2-(butylamino)-2-oxoethyl)-2-(3-cyano-4-isobutoxyphenyl)-4-methylthiazole-5-carboxamide with β-cyclodextrin using density functional theory with dispersion correction (DFT-D3) at the B3LYP-GD3/3-21G, 6-31G(d), 6-31G’(d), and 6-311G(d) levels. Two orientations are considered: in Orientation A, the 3-cyano-4-isobutoxyphenyl moiety interacts with the primary hydroxyl rim of β-cyclodextrin, while in Orientation B, the amide side chain faces the wider rim. Complexation energies and thermodynamic parameters are calculated to determine stability. Electronic properties, including HOMO-LUMO energies, and global reactivity descriptors, such as electronegativity (χ), chemical potential (μ), hardness (η), and electrophilicity index (ω), are evaluated. Non-covalent interaction (NCI) analysis is also performed to visualize interaction sites. The results reveal the significant influence of orientation on the host–guest complex stability and electronic properties, providing valuable insights into cyclodextrin-based encapsulation systems. The study provides a computational blueprint for engineering cyclodextrin-based bio-functional systems, where orientation-controlled inclusion governs stability, reactivity, and performance. This can significantly impact the development of smart drug delivery systems, biosensors, and multifunctional biomaterials in modern bioengineering. Full article
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22 pages, 23602 KB  
Article
Development of a Bioactive Dental Barrier Membrane Based on PCL/Collagen and PVA/Hydroxyapatite Layers with Amoxicillin-Loaded Electrosprayed Coating
by Hilal Gülsena Nur Akkus, Ayse Betül Bingol, Büsra Oktay, Buse Ozsan, Ahmet Akif Kızılkurtlu, Azime Erarslan, Fatih Ciftci and Cem Bülent Ustündag
Pharmaceutics 2026, 18(5), 610; https://doi.org/10.3390/pharmaceutics18050610 - 17 May 2026
Viewed by 1097
Abstract
Background/Objectives: Guided bone regeneration (GBR) in dental applications requires scaffolds that possess balanced mechanical strength, controlled biodegradability, and excellent biological performance; therefore, this study aims to develop and evaluate a multilayered biofunctional dental membrane designed to enhance mechanical, biological, and antibacterial performance. [...] Read more.
Background/Objectives: Guided bone regeneration (GBR) in dental applications requires scaffolds that possess balanced mechanical strength, controlled biodegradability, and excellent biological performance; therefore, this study aims to develop and evaluate a multilayered biofunctional dental membrane designed to enhance mechanical, biological, and antibacterial performance. Methods: The multilayered membrane was fabricated using sequential electrospinning and electrospraying techniques to form a polycaprolactone (PCL)/Collagen first layer and a polyvinyl alcohol (PVA)/Collagen/Hydroxyapatite (HAp) second layer, topped with a final electrospray coating of PVA/Amoxicillin. Characterization was performed via SEM, FTIR, and EDS, followed by evaluations of tensile properties, swelling behavior, hydrolytic degradation, in vitro drug release, disk diffusion antibacterial activity against Staphylococcus aureus and Escherichia coli, and 7-day L929 fibroblast cytocompatibility (ANOVA/Tukey, p < 0.05). Results: SEM, FTIR, and EDS analyses confirmed uniform nanofiber morphology, homogeneous HAp distribution, and successful integration of bioactive compounds. The membrane exhibited a maximum tensile strength of 15.17 N, strain of 25.24%, and stress of 2.16 MPa, while swelling reached ~100% within 2 h and degradation stabilized around 4% weight loss after 48 h. Drug release profiles showed a rapid amoxicillin release in the first 50 min, plateauing at approximately 4.5 mg/L by 350 min, with distinct antibacterial inhibition zones, and the PCL/Col–PVA/Col/HAp–PVA/Amox group demonstrated the highest cell viability (~140%) after 7 days, significantly exceeding the control groups (p < 0.01). Conclusions: These quantitative findings validate the fabricated multilayered membrane’s potential as a mechanically robust, biodegradable, antibacterial, and bioactive scaffold for advanced guided bone regeneration in dental applications. Full article
(This article belongs to the Special Issue Biomaterials for Oral and Dental Drug Delivery)
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34 pages, 3061 KB  
Article
Fermentation Enhances Antioxidant, Antiplatelet, and Anti-Inflammatory Properties of Oat- and Soy-Derived Dairy Alternatives
by Nikolaos Koutis, Georgios Liepouris, Ilianna Moysidou, Lydia Vogiatzaki, Katie Shiels, Sushanta Kumar Saha, Anna Ofrydopoulou and Alexandros Tsoupras
Nutrients 2026, 18(8), 1260; https://doi.org/10.3390/nu18081260 - 16 Apr 2026
Cited by 2 | Viewed by 1545
Abstract
Background: The increasing demand for plant-based dairy alternatives has stimulated interest in their potential health-promoting properties, particularly when combined with fermentation processes that may enhance the bio-efficacy and bioavailability of bioactive compounds. Methods: The present study investigated the impact of fermentation on the [...] Read more.
Background: The increasing demand for plant-based dairy alternatives has stimulated interest in their potential health-promoting properties, particularly when combined with fermentation processes that may enhance the bio-efficacy and bioavailability of bioactive compounds. Methods: The present study investigated the impact of fermentation on the antioxidant, antiplatelet, and anti-inflammatory activities of oat- and soy-based dairy alternatives. Total lipids were extracted and fractionated into lipophilic and amphiphilic lipid fractions, which were subsequently evaluated for antioxidant capacity using 2,2′-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) (ABTS), 2,2-diphenyl-1-picrylhydrazyl (DPPH), and ferric reducing antioxidant power (FRAP) assays, as well as for their inhibitory activity against platelet aggregation induced by platelet-activating factor (PAF) or by ADP. Results: Fermentation significantly enhanced the biological activity of the tested products, with fermented samples exhibiting lower IC50 values and thus more potent anti-inflammatory and antiplatelet efficacy and improved antioxidant performance compared with the non-fermented plant-based dairy alternative products. The amphiphilic lipid fractions demonstrated the strongest bioactivity, suggesting that fermentation promotes structural modifications in polar lipids that contribute to enhanced functional properties. Overall, fermented soy products exhibited stronger antiplatelet (anti-ADP) and anti-inflammatory (anti-PAF) activities, with lower IC50 values (indicating higher inhibitory potency), whereas fermented oat products demonstrated particularly enhanced antioxidant capacity, especially in TAC fractions, as evidenced by higher FRAP values and carotenoid content (e.g., oat yogurt TAC: 19.14 ± 9.97 mg CE/g extract). In DPPH assays, TAC fractions of both soy and oat showed comparable radical scavenging activity (TEAC ≈ 0.019 for soy yogurt TAC), while ABTS and FRAP assays highlighted matrix-dependent differences between lipid fractions. Fatty acid analysis further indicated favorable compositional changes associated with fermentation, including favorable alterations in the n-6/n-3 fatty acid ratio of the fatty acid content of the bioactive polar lipid species, while OMICs analysis indicated the specific molecular species of phospho-/glyco-based polar lipids present in these products. Conclusions: These findings suggest that fermentation can substantially improve the biofunctional profile of plant-based dairy alternatives and highlight fermented oat- and soy-based products as promising dietary sources of bioactive polar lipids with potential cardioprotective properties. Full article
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Review
Valorization of Date Palm (Phoenix dactylifera L.) Fruits and By-Products as High-Value Sustainable Products: A Comprehensive Review on Bioactive Composition, Health Benefits, and Industrial Applications
by Ouarda Djaoudene, Raquel Rodríguez-Solana and Anabela Romano
Molecules 2026, 31(7), 1194; https://doi.org/10.3390/molecules31071194 - 3 Apr 2026
Cited by 2 | Viewed by 2717
Abstract
Health-promoting foods are attracting growing interest as complements to pharmacological interventions, particularly when incorporated into bioactive-enriched functional foods. The date palm (Phoenix dactylifera L.) plays a key socio-economic role in arid and semi-arid regions, and is widely recognized for its high nutritional [...] Read more.
Health-promoting foods are attracting growing interest as complements to pharmacological interventions, particularly when incorporated into bioactive-enriched functional foods. The date palm (Phoenix dactylifera L.) plays a key socio-economic role in arid and semi-arid regions, and is widely recognized for its high nutritional value, functional attributes, and therapeutic potential. Date fruits and their processing by-products, particularly the seeds, are a rich source of essential nutrients, dietary fiber, and diverse phytochemicals with documented antioxidant, anti-inflammatory, antidiabetic, and antimicrobial properties. This narrative review summarizes the latest evidence from experimental, preclinical, and emerging clinical studies on the nutritional composition, phytochemical profile, and biofunctional properties of dates and their derivatives, with particular emphasis on seeds as a significant processing by-product. Recent advances in their valorization for food applications, including bakery products, dairy products, beverages, meat products, confectionery, and active packaging, are critically discussed, as are their emerging uses in the pharmaceutical and related industries. Particular attention is given to their potential to improve the nutritional quality, functional performance, sensory attributes, and shelf life of food products. Overall, date fruits and their by-products are cost-effective, natural, and sustainable ingredients for developing value-added functional foods. Their efficient valorization offers promising strategies for reducing waste, implementing circular economy principles, and meeting the increasing consumer demand for healthier products. This review highlights the need for multidisciplinary research and innovation to advance sustainable by-product utilization, improve agro-industrial waste management, and expand the range of high-value applications for date fruits and seeds, thereby contributing to global food security, economic development, and improved public health. Full article
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