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18 pages, 2770 KB  
Article
An Intelligent Multi-Emissivity Infrared Temperature Correction Method for Substation Equipment Based on Semantic Segmentation
by Sheng Han, Jialong Dong, Yafei Huang and Baifu Zhang
Sensors 2026, 26(15), 4754; https://doi.org/10.3390/s26154754 (registering DOI) - 27 Jul 2026
Abstract
Emissivity is a critical parameter in infrared temperature measurement and varies significantly among different materials. Infrared thermography has been widely used for the inspection of substation equipment. However, substations contain a large number of devices with complex structures, making it impractical to assign [...] Read more.
Emissivity is a critical parameter in infrared temperature measurement and varies significantly among different materials. Infrared thermography has been widely used for the inspection of substation equipment. However, substations contain a large number of devices with complex structures, making it impractical to assign a separate emissivity value to each device or component. This limitation can significantly affect temperature measurement accuracy. To address this issue, this paper proposes an intelligent multi-emissivity temperature correction method for infrared images of substation equipment. First, a temperature–emissivity correction function is established. Then, a total of 2189 infrared images of substation equipment are collected, and the main equipment components are annotated at the pixel level. Subsequently, an equipment component segmentation model based on DeepLabv3+ is trained. Finally, different emissivity values are assigned to different component regions for temperature correction, and corrected infrared pseudo-color images are regenerated. In the experiment, the temperature values before and after correction are compared with thermocouple measurements. In the present validation experiment, the average deviation between the corrected infrared temperature and the thermocouple measurement was reduced by 79.2% compared with that before correction. Full article
(This article belongs to the Section Sensing and Imaging)
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30 pages, 1319 KB  
Review
Emerging Roles of Polyamines and Autophagy in Plant In Vitro Regeneration
by Mahboubeh Davoudi Pahnekolayi, Majid Babouyeh Darabi and Negin Samadi
Horticulturae 2026, 12(8), 923; https://doi.org/10.3390/horticulturae12080923 (registering DOI) - 27 Jul 2026
Abstract
Plant regeneration demonstrates the remarkable developmental plasticity of plants, enabling tissue repair, organ formation, and adaptation to environmental challenges through cellular reprogramming and redifferentiation. This capacity underpins numerous horticultural and biotechnological applications, including grafting, micropropagation, somatic embryogenesis, organogenesis, and genetic transformation. While regeneration [...] Read more.
Plant regeneration demonstrates the remarkable developmental plasticity of plants, enabling tissue repair, organ formation, and adaptation to environmental challenges through cellular reprogramming and redifferentiation. This capacity underpins numerous horticultural and biotechnological applications, including grafting, micropropagation, somatic embryogenesis, organogenesis, and genetic transformation. While regeneration has traditionally been explained by the coordinated actions of auxin and cytokinin together with key developmental regulators such as WUSCHEL, BABY BOOM, and WUSCHEL-related homeobox genes, recent studies indicate that regeneration is also influenced by stress signaling, metabolic reprogramming, reactive oxygen species, and epigenetic regulation. Among these regulatory components, polyamines have emerged as important modulators of cell division, differentiation, stress responses, and morphogenic competence during in vitro regeneration. Likewise, autophagy, a conserved intracellular recycling pathway, has gained increasing attention for its role in maintaining cellular homeostasis, facilitating metabolic adaptation, and supporting developmental transitions under tissue culture conditions. This review summarizes current knowledge on the independent roles of polyamines and autophagy in plant cell reprogramming and in vitro regeneration, with particular emphasis on wound responses, somatic embryogenesis, and organogenesis. In addition, it highlights common physiological processes through which these pathways may influence regeneration and identifies the limited understanding of their potential relationship as an important direction for future research. Full article
(This article belongs to the Special Issue Plant Tissue Culture: Advances and Perspectives)
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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
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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21 pages, 5538 KB  
Article
Human Amniotic Epithelial Stem Cells and Osteoblast Cells Behavior on Collagen Membranes for Bone Guided Regeneration
by Antonio Pérez-Pérez, Javier Gil, Isabela Bueno-Bianchi, Loreto Monsalve-Guil, Iván Ortiz-Garcia, Alvaro Jiménez-Guerra, Enrique Núñez-Márquez, Eugenio Velasco-Ortega, José Luis Rondón Romero, Victor Sánchez-Margalet and Jesús Moreno-Muñoz
Int. J. Mol. Sci. 2026, 27(15), 6660; https://doi.org/10.3390/ijms27156660 (registering DOI) - 26 Jul 2026
Abstract
Guided bone regeneration (GBR) heavily relies on barrier membranes, with collagen being the clinical standard material. Human amniotic epithelial cells (hAECs) represent a promising, non-controversial stem cell source with substantial osteogenic and immunomodulatory potential. This study aimed to comparatively evaluate the structural characteristics [...] Read more.
Guided bone regeneration (GBR) heavily relies on barrier membranes, with collagen being the clinical standard material. Human amniotic epithelial cells (hAECs) represent a promising, non-controversial stem cell source with substantial osteogenic and immunomodulatory potential. This study aimed to comparatively evaluate the structural characteristics of three commercial collagen membranes (Biocollagen®, Derma®, and VantyColl®) and their influence on the biological behavior, viability, and osteogenic differentiation of hAECs and hFOB 1.19 human fetal osteoblasts. The microarchitecture was assessed via scanning electron microscopy (SEM). Biological response was evaluated over 14 days, using MTT assays, calcium and phosphorus quantification, alkaline phosphatase (ALP) activity, and quantitative real-time PCR (qRT-PCR) for osteogenic markers (Runx2, Osterix, ALP, and OPN). SEM revealed a dense lamellar structure for Biocollagen®, a fibrillar and oriented architecture for Derma®, and a highly porous network for VantyColl®. Both cell types adhered to and proliferated on all membranes. Derma® provided the best long-term proliferative support for both lineages. Conversely, VantyColl® induced robust early osteoblastic differentiation, marked by exceptional upregulation of Osterix (24.93-fold) and Runx2 (2.64-fold), though it exhibited diminished long-term hAEC viability. Ultimately, collagen membrane microarchitecture dictates cell fate; dense fibrillar networks (Derma®) favor sustained growth and late matrix maturation (OPN), whereas high-porosity scaffolds (VantyColl®) amplify early osteoinductive cascades. Full article
(This article belongs to the Special Issue Advanced Biomaterials for Tissue Regeneration)
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27 pages, 3979 KB  
Article
Enzyme Co-Immobilization on Precipitated Silica for Sustainable Lactobionic Acid Production
by Wiktoria Piątek-Gołda, Monika Osińska-Jaroszuk, Marcin Grąz, Jolanta Polak, Weronika Sofińska-Chmiel, Krzysztof Skrzypiec, Anna Olszewska and Justyna Sulej
Molecules 2026, 31(15), 2602; https://doi.org/10.3390/molecules31152602 - 25 Jul 2026
Abstract
Lactobionic acid (LBA) is a compound that, in the last decade, has become critically important due to its potential applications in the food, chemical, pharmaceutical, and cosmetic industries. Enzymatic biosynthesis in the presence of a redox mediator is one method of producing LBA [...] Read more.
Lactobionic acid (LBA) is a compound that, in the last decade, has become critically important due to its potential applications in the food, chemical, pharmaceutical, and cosmetic industries. Enzymatic biosynthesis in the presence of a redox mediator is one method of producing LBA biologically. Cellobiose dehydrogenase (CDH) oxidizes the lactose to lactobionic acid, while laccase (LAC) enables the regeneration of the redox mediator (ABTS), which acts as an electron acceptor for CDH. The aim of this study was to develop an effective immobilized enzymatic system for the production of LBA. Two enzymes were used in the experiment: CDH from Phanerodontia chrysosporium (PchCDH) and LAC from Cerrena unicolor (CuLAC), which were immobilized on precipitated silica (Sipernat 22) activated by APTES and PEI. The immobilization process increased enzyme stability, improved the efficiency of LBA synthesis, and reduced costs, particularly in the context of using Sipernat 22 silica, which is inexpensive and widely used across various industries. The co-immobilization of both enzymes on the carrier proved to be the most effective approach, achieving a 90% conversion of lactose to lactobionic acid after ten cycles of synthesis. Comprehensive biochemical characterization, including protein loading, catalytic activity, and optimal pH, is provided in the main text. Full article
28 pages, 8906 KB  
Article
The Flowery Stations Contest in Early Twentieth-Century Italy: Railway Gardens and the Case Study of Ripafratta (Tuscany)
by Athos Pedrelli, Marzia Vergine, Luigi De Bellis and Andrea Luvisi
Plants 2026, 15(15), 2282; https://doi.org/10.3390/plants15152282 - 25 Jul 2026
Abstract
Urban green areas are essential for human well-being, biodiversity, and environmental sustainability. Although railway renewal projects are celebrated today, Italy pioneered the Flowery Stations Contest (FSC) in the early twentieth century. This study provides the first comprehensive synthesis of the FSC experience (1911–1915), [...] Read more.
Urban green areas are essential for human well-being, biodiversity, and environmental sustainability. Although railway renewal projects are celebrated today, Italy pioneered the Flowery Stations Contest (FSC) in the early twentieth century. This study provides the first comprehensive synthesis of the FSC experience (1911–1915), investigating its historical evolution, organizational features, and botanical aspects. A systematic review of 81 historical documents was conducted to reconstruct the contest’s framework. To evaluate long-term impact, we surveyed 90 historically top-ranked stations via satellite imagery and investigated the case study of Ripafratta station (a fraction of San Giuliano Terme, Pisa, Tuscany). Results show the FSC involved up to 291 stations, prioritizing esthetic decorum and hygiene against locomotive soot. Although organizers recommended 64% non-native genera, stationmasters favoured local biodiversity, increasing effectively employed native genera to 43%. Nowadays, 54% of surveyed stations retain their gardens, mainly located in rural areas, yet 82% of these are neglected following the decline of the resident stationmaster’s role. We conclude that the FSC established a significant physical and cultural legacy. Recovering its model of decentralized stewardship could offer a strategic framework for modern urban regeneration, transforming stations into multifunctional hubs while preserving regional floristic identity, in alignment with contemporary European sustainability models. Full article
(This article belongs to the Section Horticultural Science and Ornamental Plants)
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21 pages, 3965 KB  
Article
Optimization and Characterization of TSG-Enriched Polygonum multiflorum Extract and Its Dual Mechanism Against Androgenetic Alopecia via 5α-Reductase Inhibition and Wnt/β-Catenin Activation
by Te-Yang Huang, Min-Chieh Chang and Wen-Ta Su
Int. J. Mol. Sci. 2026, 27(15), 6648; https://doi.org/10.3390/ijms27156648 (registering DOI) - 25 Jul 2026
Abstract
This study aimed to optimize the extraction and purification of TSG-enriched Polygonum multiflorum extract and evaluate its therapeutic potential against androgenetic alopecia. P. multiflorum Thunb. has long been used in traditional Chinese medicine to promote hair growth and preserve hair pigmentation. Microwave-assisted extraction [...] Read more.
This study aimed to optimize the extraction and purification of TSG-enriched Polygonum multiflorum extract and evaluate its therapeutic potential against androgenetic alopecia. P. multiflorum Thunb. has long been used in traditional Chinese medicine to promote hair growth and preserve hair pigmentation. Microwave-assisted extraction (MAE) was optimized to obtain a 2,3,5,4′-tetrahydroxystilbene-2-O-β-D-glucoside (TSG)-enriched P. multiflorum extract (PME). The crude extract was further purified by medium-pressure liquid chromatography and semipreparative high-performance liquid chromatography. Phytochemical profiling by HPLC demonstrated a 3.75-fold increase in TSG content, from 22,770.0 ± 815 ppm to 85,387.5 ± 192 ppm, and the identity of the enriched TSG was confirmed by LC–MS and 1H NMR spectroscopy. PME exhibited potent dose-dependent inhibition of 5α-reductase activity, reaching 92.7% inhibition at 1 μg/mL, comparable to that of finasteride. In a testosterone (TES)-induced androgenetic alopecia (AGA) mouse model, PME markedly accelerated hair regrowth and increased both the number and size of hair follicles. Mechanistically, PME suppressed the conversion of TES to dihydrotestosterone (DHT) through 5α-reductase inhibition and promoted GSK3β inactivation, β-catenin stabilization, and nuclear translocation, indicating activation of the Wnt/β-catenin signaling pathway. Consequently, the expression of hair growth-related proteins, including Ki67 (1.98-fold), epidermal growth factor (EGF, 1.54-fold), insulin-like growth factor-1 (IGF-1, 1.21-fold), and vascular endothelial growth factor (VEGF, 1.34-fold), was significantly upregulated. These findings demonstrate, for the first time, that TSG-enriched PME obtained through optimized MAE and chromatographic purification promotes hair regeneration through a dual mechanism involving 5α-reductase inhibition and Wnt/β-catenin activation, highlighting its potential as a natural therapeutic candidate for androgenetic alopecia. Full article
(This article belongs to the Special Issue Pharmacological Effects of Bioactive Compounds Derived from Plants)
42 pages, 1530 KB  
Review
Redox Homeostasis, Metabolic Pathways and Plasticity in Uveal Melanoma Compared to Other Cancers
by Mihai Adrian Păsărică, Paul Filip Curcă, Christiana Diana Maria Dragosloveanu, Cosmin Ionuț Nisipașu and George Cristian Curcă
Cancers 2026, 18(15), 2402; https://doi.org/10.3390/cancers18152402 - 25 Jul 2026
Abstract
Background/Objectives: To date there is a lack of an integrative review literature on redox homeostasis, oxidative stress and the influence on metabolic pathways and plasticity in uveal melanoma (UM), since most literature findings are from cutaneous melanoma (CM), a genetically and behaviorally [...] Read more.
Background/Objectives: To date there is a lack of an integrative review literature on redox homeostasis, oxidative stress and the influence on metabolic pathways and plasticity in uveal melanoma (UM), since most literature findings are from cutaneous melanoma (CM), a genetically and behaviorally distinct cancer. Furthermore, UM metabolic pathway comparison to other cancers could provide more insight into metastatic UM, a difficult-to-treat malignancy. Methods: A wide-ranging multi-step literature search of PubMed and Web of Science for redox balance, oxidative stress, antioxidants and metabolic plasticity in UM, with expanded search terms for connections with other cancers. Results: UM cells maintain redox homeostasis via several redox loops: glutathione, thioredoxin, peroxiredoxins, peroxisomal catalase and the mitochondrial antioxidative network. NADPH plays a key role in regenerating UM antioxidative capabilities. Key redox signaling pathways are the subject of ongoing research in UM: NRF2 signaling, AMPK, mTOR, MAPK, FoxO. These pathways are less studied versus CM and present behavior differences in UM. PON2, studied in CM, represents a literature gap in UM. Inside the tumoral microenvironment, UM presents high metabolic plasticity and easy switching from glycolysis to oxidative phosphorylation (OXPHOS). Thus, UM eschews the classic Warburg effect loop and instead presents high oxidative phosphorylation (OXPHOS) gene expression, which generates additional lactate, which in turn produces cascade reprogramming in the metabolic pathways and lactate metabolism particularities associated in experimental studies with immune-escape phenomena. Uveal melanoma’s OXPHOS capabilities confer survival advantages and subdivide tumoral populations into OXPHOS-high and OXPHOS-low variants. Glycolysis/OXPHOS metabolic plasticity is an ongoing research field in other cancers with common and different elements vs. UM: cutaneous melanoma, small cell lung carcinoma, pancreatic cancer, breast cancer, acute myeloid leukemia, prostate cancer, renal cell carcinoma and glioblastoma. Uveal melanoma cells are susceptible to deleterious effects of prooxidants, a metabolic vulnerability which helps to create genetic pleomorphism, selecting higher proliferation and dissemination variants. Conclusions: Uveal melanoma is an oncogenic mutation and mitochondrial metabolism-driven malignancy, with metabolic connections to other malignancies. Emerging understanding of redox homeostasis, redox pathway signaling, mitochondrial oxidative and oncogenic metabolism could lead to better understanding of therapeutic response and new therapeutic targets. This review novelly integrates the general and CM redox literature with the UM literature, painting a complex redox signaling and metabolic plasticity picture of UM. Full article
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28 pages, 3177 KB  
Review
Biodegradable Hydrogels for Pb2+ Removal from Water: Design Strategies, Mechanisms, and Future Perspectives
by Jianhui Guo, Yue Hu, Chang Ma, Wei Zhang, Youming Dong, Yida Niu, Sipei Liu, Yi Zhang and Cheng Li
Gels 2026, 12(8), 667; https://doi.org/10.3390/gels12080667 (registering DOI) - 25 Jul 2026
Abstract
Lead (Pb2+) pollution poses a severe threat to the ecological environment and human health due to its high toxicity, bioaccumulation, and refractory nature. Traditional treatment technologies for lead-contaminated wastewater, such as chemical precipitation, ion exchange, and membrane separation, often face limitations, [...] Read more.
Lead (Pb2+) pollution poses a severe threat to the ecological environment and human health due to its high toxicity, bioaccumulation, and refractory nature. Traditional treatment technologies for lead-contaminated wastewater, such as chemical precipitation, ion exchange, and membrane separation, often face limitations, including secondary pollution, high costs, and high energy consumption. In contrast, adsorption has emerged as a promising alternative technology with advantages such as a simple process, high efficiency at low concentrations, and renewability. Biomass-based hydrogels and their composite systems, as novel green adsorbent materials, combine the abundant functional groups of natural biomass with the structural stability, high porosity, and recoverability of hydrogels through a three-dimensional cross-linked network, offering unique advantages for lead ion adsorption. Depending on their composition, these systems range from fully biodegradable pure biopolymer networks to partly biodegradable or biomass-containing composites incorporating inorganic, carbon-based, or metal–organic framework (MOF) materials. This paper systematically reviews the latest research progress on cellulose, lignin, sodium alginate, chitosan, starch-based hydrogels, and their composite systems for lead (Pb2+) adsorption. First, the structural characteristics, cross-linking mechanisms, and functional modification strategies of various biomass hydrogels are introduced. Then, the adsorption mechanisms of Pb2+, including multiple modes of action such as coordination complexation, ion exchange, electrostatic interaction, and physical adsorption, are systematically analyzed. The adsorption performance of different material systems is compared in detail. The regeneration and recycling performance, as well as the potential practical applications, of the materials are evaluated. On this basis, the main challenges in current research are summarised: balancing adsorption capacity and mechanical strength, achieving selective adsorption in actual wastewater, improving regeneration efficiency, and optimizing costs. In addition, future development directions for biomass hydrogel adsorbent materials are discussed, including the design of multi-functional composite materials, the development of intelligent, responsive hydrogels, engineering-scale-up, and life-cycle assessment. This review aims to provide a theoretical framework and technical roadmap for the rational design of high-performance, sustainable hydrogel adsorbents and to promote their engineering application for the treatment of lead-contaminated wastewater. Full article
(This article belongs to the Special Issue Gel-Related Materials: Challenges and Opportunities (3rd Edition))
20 pages, 1505 KB  
Review
Beyond Immunity: Macrophages as Regulators of Vertebrate Morphogenesis
by Goretti Moran, Cristina Duarte-Olivenza, Juan M. Hurle, Juan A. Montero and Carlos I. Lorda-Diez
Cells 2026, 15(15), 1330; https://doi.org/10.3390/cells15151330 - 24 Jul 2026
Viewed by 84
Abstract
Research over the last decades have demonstrated that macrophages, considered canonical players of the immune system, also perform many other important biological functions in adult organisms. These properties have stimulated extensive research, particularly given their importance in human pathologies, including cancer. However, despite [...] Read more.
Research over the last decades have demonstrated that macrophages, considered canonical players of the immune system, also perform many other important biological functions in adult organisms. These properties have stimulated extensive research, particularly given their importance in human pathologies, including cancer. However, despite significant advances in our understanding of macrophage functions in adult organisms and diseases, their roles in embryonic systems remain comparatively underexplored. Owing to their complex developmental origin and the lack of pronounced phenotypes in embryos subjected to either spontaneous or experimentally induced macrophage ablation, macrophages have often been considered as a largely passive scavenger population associated with programmed cell death during organ and tissue remodeling. Here, we highlight key findings regarding macrophage functions during vertebrate morphogenesis. We emphasize the differences in phenotypic outcomes following macrophage ablation in adult organisms, embryos, and models of organ regeneration. Currently, the remarkable plasticity of the macrophage lineage complicates the identification of specific trophic functions involved in organ morphogenesis. Developing new approaches that improve the efficiency of macrophage ablation models, along with implementing complementary gain-of-function strategies, will contribute to a deeper understanding of the role of macrophages during embryonic development. Full article
(This article belongs to the Section Tissues and Organs)
46 pages, 2974 KB  
Review
Past, Present, and Future of Plant-Derived Extracellular Vesicles in Biomedical Applications
by Yilixiati Wusiman, Xiaoxiao Qiu, Nazhakaiti Yusufujiang, Yipaerguli Paerhati, Alifeiye Aikebaier, Dilihuma Dilimulati, Alhar Baishan and Wenting Zhou
Pharmaceuticals 2026, 19(8), 1156; https://doi.org/10.3390/ph19081156 - 24 Jul 2026
Viewed by 88
Abstract
Plant-derived extracellular vesicles (PDEVs) have emerged as promising natural nanocarriers for biomedical applications owing to their distinctive ability to facilitate intercellular communication and transport bioactive molecules. In this review, we employ bibliometric analysis to identify research hotspots and trends, providing a comprehensive overview [...] Read more.
Plant-derived extracellular vesicles (PDEVs) have emerged as promising natural nanocarriers for biomedical applications owing to their distinctive ability to facilitate intercellular communication and transport bioactive molecules. In this review, we employ bibliometric analysis to identify research hotspots and trends, providing a comprehensive overview of these core themes. The bibliometric results reveal a sustained increase in annual publications in this field, with keyword analysis identifying drug delivery, cross-kingdom regulation, immunomodulation, engineering modification, and gut microbiota as five major research themes. The focus of research has evolved from early basic biological characteristics into engineered smart delivery platforms, with the application areas expanding from intestinal inflammation to neurological, metabolic, dermatological, and oncological diseases. This review systematically examines the core directions in this field. It compares the strengths and limitations of mainstream isolation methods and highlights the value of multi-omics integration, covering the molecular mechanisms of ferroptosis and gut microbiota regulation by PDEVs along with engineering strategies such as drug loading, surface modification, and membrane fusion. It also discusses the latest progress in frontier therapeutic applications of PDEVs, including cancer, inflammatory diseases, tissue regeneration and aesthetics, and neurological disorders. Finally, this review summarizes the key challenges confronting the field, including the lack of standardized protocols, production bottlenecks, and engineering obstacles. It also delineates future directions, including establishing international standardization definitions, advancing multi-omics and AI-driven mechanistic elucidation, developing scalable and efficient purification technologies, and executing systematic preclinical safety and pharmacokinetic evaluations to facilitate clinical translation. Full article
14 pages, 824 KB  
Article
Therapeutic Magnetic Resonance (TMR) in Regenerative Medicine: In Vitro Study to Support Future Clinical Applications
by Micaela Berni, Laura Caliogna, Elisa Lenta, Gloria Acquafredda, Chiara Valsecchi, Stefania Croce, Sara Bozzini, Patrizia Comoli, Mario Mosconi, Gianluigi Pasta, Maria Antonietta Avanzini and Mirko Belliato
J. Funct. Biomater. 2026, 17(8), 356; https://doi.org/10.3390/jfb17080356 (registering DOI) - 24 Jul 2026
Viewed by 65
Abstract
This in vitro study investigates the effects of therapeutic magnetic resonance (TMR®), a novel biophysical stimulation technology, on mesenchymal stromal cells (MSCs) to support its potential application in regenerative medicine. The role of pulsed electromagnetic fields in bone healing is already [...] Read more.
This in vitro study investigates the effects of therapeutic magnetic resonance (TMR®), a novel biophysical stimulation technology, on mesenchymal stromal cells (MSCs) to support its potential application in regenerative medicine. The role of pulsed electromagnetic fields in bone healing is already established. We evaluated whether TMR® influences MSC proliferation, differentiation, and immunomodulatory properties in vitro. Bone marrow-derived MSCs (BM-MSCs) and adipose-derived MSCs (AD-MSCs) were cultured with or without TMR® exposure and assessed through flow cytometry, karyotype analysis, senescence assays, proliferation tests, gene expression analysis, and osteogenic differentiation assays. TMR® did not alter MSC phenotype, proliferation, senescence, or genomic stability, confirming its safety profile. Notably, treated MSCs showed enhanced osteogenic differentiation, with increased early expression of key osteogenic markers (RUNX2, ALP, and COL1A1) and greater collagen deposition compared to untreated controls. TMR® reduced peripheral blood mononuclear cell proliferation and MSC ROS production, suggesting anti-inflammatory and antioxidative effects. Overall, TMR® appears to be a safe, non-invasive stimulus able to promote osteogenic differentiation, supporting its potential clinical application in bone regeneration. Further in vitro studies and clinical trials are needed to confirm these findings. Full article
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30 pages, 3193 KB  
Review
Tooth Regeneration via the Scaffold–Cell–Growth Factor Triad: An Evolution in Regenerative Dentistry
by Maree Gould, Jithendra Ratnayake and Paul Cooper
Biologics 2026, 6(3), 22; https://doi.org/10.3390/biologics6030022 - 24 Jul 2026
Viewed by 184
Abstract
The tooth is a complex biological organ composed of multiple tissues, including enamel, dentine, cementum and pulp. However, dental disease and tooth loss due to periodontitis, caries, or trauma adversely affect most adults at some time in their lives. Tooth regeneration represents a [...] Read more.
The tooth is a complex biological organ composed of multiple tissues, including enamel, dentine, cementum and pulp. However, dental disease and tooth loss due to periodontitis, caries, or trauma adversely affect most adults at some time in their lives. Tooth regeneration represents a shift in the dental paradigm from removal to repair to regeneration. Tooth regeneration is an extension of the broader field of regenerative medicine, aiming to restore a tissue defect to its original form and function by using biological substitutes to replace lost teeth or tooth tissue, providing a viable alternative to currently available clinical treatments. A full array of cell sources has been trialled for endodontic regeneration, following the basic premise of tissue engineering, including cells–scaffold–bioactive molecules. Several reports have documented dental pulp-like tissue regeneration, either in vitro or following the transplantation of stem cells. Tooth regeneration follows two unique approaches: cell transplantation and cell homing. Cell transplantation has been the predominant approach, whereas cell homing aims to achieve tissue repair and regeneration of the injury site through the chemotaxis of host endogenous cells. This narrative review explores therapeutically viable tooth regeneration approaches by contrasting cell transplantation and cell-to-scaffold methodologies focussing on the cell–scaffold–bioactive molecule triad. Full article
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34 pages, 2888 KB  
Review
Metal-Loaded ZSM-5 Catalysts for Biomass Pyrolysis Denitrogenation: Nitrogen Migration, Catalyst Deactivation, and Sulfur Resistance
by Qing Xu, Yanxu Chen, Shengxian Xian, Yujian Wu, Haowei Li, Zongliang Zhang and Baokang Chen
Catalysts 2026, 16(8), 671; https://doi.org/10.3390/catal16080671 - 24 Jul 2026
Viewed by 186
Abstract
Thermochemical conversion of nitrogen- and sulfur-rich biomass-derived wastes, such as sewage sludge, algae, and agricultural residues, is a promising route for renewable fuel production and waste valorization. However, fuel-bound nitrogen can be released as NH3, HCN, and HNCO, while sulfur species [...] Read more.
Thermochemical conversion of nitrogen- and sulfur-rich biomass-derived wastes, such as sewage sludge, algae, and agricultural residues, is a promising route for renewable fuel production and waste valorization. However, fuel-bound nitrogen can be released as NH3, HCN, and HNCO, while sulfur species such as H2S, SO2, and COS accelerate catalyst deactivation and generate NOx/SOx precursors. Metal-loaded ZSM-5 catalysts are attractive for clean catalytic pyrolysis because they combine the MFI pore confinement and tunable Brønsted/Lewis acidity of ZSM-5 with the hydrogen transfer, dehydrogenation, cracking, redox, and sulfur-tolerance functions of metal species. This review critically summarizes recent advances in metal-loaded ZSM-5 catalysts for catalytic denitrogenation of biomass-derived solid wastes. The formation and migration of NH3, HCN, HNCO, tar-N, and char-N are first discussed to clarify the chemical basis of fuel-N conversion. The effects of ZSM-5 pore structure, acid-site distribution, Si/Al ratio, hierarchical porosity, and synergy on adsorption, diffusion, C-N bond cleavage, heterocyclic-N ring-opening, aromatization, and nitrogen redistribution are then analyzed. Catalyst deactivation under realistic pyrolysis atmospheres is also highlighted, including coke deposition, metal sintering, framework dealumination, mineral poisoning, and H2S/SO2/COS-induced sulfur poisoning. Finally, future directions are proposed for designing multifunctional ZSM-5-based catalysts integrating denitrogenation activity, sulfur resistance, coke resistance, regenerability, and quantitative nitrogen/sulfur mass balance. Full article
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15 pages, 1778 KB  
Article
Leukocyte-Rich Platelet-Rich Plasma Improves Cartilage Repair After High Tibial Osteotomy: A Second-Look Arthroscopic Study
by Jesse Chieh-Szu Yang, Yu-Hung Tian, En-Rung Chiang and Yu-Ping Su
Biomedicines 2026, 14(8), 1664; https://doi.org/10.3390/biomedicines14081664 - 24 Jul 2026
Viewed by 191
Abstract
Background: High tibial osteotomy (HTO) is commonly performed to manage medial compartment knee osteoarthritis by correcting mechanical alignment; however, the role of adjunctive regenerative therapies remains uncertain. Methods: This retrospective study compared leukocyte-rich platelet-rich plasma (LR-PRP) with leukocyte-poor PRP (LP-PRP) in [...] Read more.
Background: High tibial osteotomy (HTO) is commonly performed to manage medial compartment knee osteoarthritis by correcting mechanical alignment; however, the role of adjunctive regenerative therapies remains uncertain. Methods: This retrospective study compared leukocyte-rich platelet-rich plasma (LR-PRP) with leukocyte-poor PRP (LP-PRP) in patients undergoing HTO. Forty patients were allocated into three groups: HTO alone (n = 10), HTO with LR-PRP (n = 20), and HTO with LP-PRP (n = 10). Clinical outcomes were assessed preoperatively and at 12 months using the Visual Analog Scale, Oxford Knee Score, and Western Ontario and McMaster Universities Osteoarthritis Index. Cartilage repair appearance was evaluated through second-look arthroscopy using the ICRS grading and Koshino staging systems. Multivariable analysis of covariance (ANCOVA), adjusting for baseline imbalances, was employed to evaluate postoperative outcomes. Results: All groups demonstrated significant improvements in pain and function (p < 0.05), with no significant differences among groups. However, Group B exhibited a greater shift toward lower ICRS grades than Group A (p < 0.05), whereas no significant difference was found between Groups C and A. Arthroscopic findings revealed more complete defect coverage and improved structural integrity in the LR-PRP group. Conclusions: These findings demonstrate a clear discrepancy exists between clinical and structural outcomes; while HTO drives substantial and comparable short-term functional improvements across all cohorts, adjunctive LR-PRP is positively associated with a significantly enhanced arthroscopic cartilage repair appearance compared to LP-PRP or HTO alone. Further prospective studies are needed to validate these findings and elucidate the underlying biological mechanisms. Full article
(This article belongs to the Section Molecular and Translational Medicine)
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