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31 pages, 8774 KB  
Article
Assessment of Co-Pyrolysis of a Cyanobacterium and Waste Textile Polymer: Investigating Kinetics, Thermodynamics, Reaction Mechanism and Synergism
by Kaustav Nath, Biswajit Debnath, Ranjana Chowdhury, Somil Thakur and Rajnish Kaur Calay
Clean Technol. 2026, 8(4), 112; https://doi.org/10.3390/cleantechnol8040112 (registering DOI) - 22 Jul 2026
Abstract
Algal cultivation has attracted significant attention due to CO2 biocapture and potential for biofuel generation. Enormous generation of waste polymer often poses an environmental problem due to non-biodegradability. This study comprehensively analyses the thermal degradation characteristics of blue–green alga, Leptolyngbya subtilis JUCHE1 [...] Read more.
Algal cultivation has attracted significant attention due to CO2 biocapture and potential for biofuel generation. Enormous generation of waste polymer often poses an environmental problem due to non-biodegradability. This study comprehensively analyses the thermal degradation characteristics of blue–green alga, Leptolyngbya subtilis JUCHE1 (LS) and waste textile polyester (WTP) and their mixtures (LS1P3 (1:3); LS1P1 (1:1); LS3P1 (3:1)) during co-pyrolysis. The interaction between LS and WTP during co-pyrolysis has been assessed through the verification of synergism using different blending ratio and through the comparison of the corresponding values of the Comprehensive Pyrolysis Index (CPI). The composite, LS1P3, exhibited the highest synergism and the maximum value of CPI. Isoconversional models (FWO, Starink, Bosewell and Tang) have been used to predict the activation energies (Ea). Thermodynamic parameters, namely, heat of reaction (ΔH), Gibbs free energy change (ΔG) and entropy change (ΔS), have also been determined for all. The average value of Ea for LS1P3 is also the lowest (96.015 kJ/mol) among all composites. The Master plot method identifies that there is a shift of reaction mechanism from phase boundary type (R2 and R3) for LS and WTP to a P2-type acceleratory reaction rate mechanism for LS1P3. The lowest average value of ΔH and the highest values of ΔG and ΔS for LS1P3 co-pyrolysis also support the least consumption of energy and the highest favorability under present conditions. The product yield distribution of co-pyrolysis in the isothermally operated conditions (450 °C) also establishes the superiority of LS1P3. Yields of pyro-oil and pyro-gas are the highest among all composites. The study ensures the future application prospects of co-pyrolysis of LS and WTP as a means for generation of energy resources (pyro-oil and pyro-gas) and chemicals (pyro-char). Full article
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33 pages, 5355 KB  
Article
Active Starch Films Incorporated with Citrus Essential Oils: Properties, Bioactivity, and Biodegradability
by Jasamim Moreira Lemos, José Elias Machado Lopes, José Hilton Gomes Rangel, Sebastião Pereira Protázio, Gricirene Sousa Correia, Samuel Filgueiras Rodrigues, Walter José Martinez Burgos, Paula Beatricy Weba Moreira, Kiany Sirley Brandão Cavalcante and Josilene Lima Serra Pereira
Polymers 2026, 18(14), 1794; https://doi.org/10.3390/polym18141794 (registering DOI) - 22 Jul 2026
Abstract
The demand for sustainable food preservation has driven the development of biodegradable alternatives to conventional, petroleum-based plastics. This study developed and evaluated bioactive starch-based films incorporated with citrus peel essential oils (lemon, orange, and tangerine) at concentrations ranging from 0.5% to 2% ( [...] Read more.
The demand for sustainable food preservation has driven the development of biodegradable alternatives to conventional, petroleum-based plastics. This study developed and evaluated bioactive starch-based films incorporated with citrus peel essential oils (lemon, orange, and tangerine) at concentrations ranging from 0.5% to 2% (w/w). The physical, chemical, mechanical, and antimicrobial properties of all film formulations containing 0.5–2% (w/w) essential oils were evaluated. Based on the experimental design, only the selected formulations containing 1 and 2% essential oils were subjected to structural and thermal characterization (XRD, SEM, FTIR, and TGA/DTG), transparency measurements, soil biodegradation, and phytotoxicity assays. FTIR spectroscopy revealed that oil incorporation did not alter the characteristic chemical bands of starch, indicating predominantly physical interactions. The essential oils modulated the physical and mechanical performance of the films. The films containing lemon and tangerine essential oils exhibited superior antimicrobial activity against foodborne pathogens. Furthermore, soil biodegradation was concentration-dependent, with mass loss exceeding 50% within 15 days, while phytotoxicity tests confirmed the environmental safety of the degraded residues. These findings demonstrate that the developed citrus-infused starch films hold great promise as active biodegradable packaging to extend the shelf life of bakery products and mitigate plastic waste. Full article
(This article belongs to the Special Issue Application and Degradation of Polymeric Materials in Agriculture)
33 pages, 1741 KB  
Review
Machine Learning-Driven Advances in Perovskite Materials and Solar Cells
by Jun Ren, Xiangshun Geng, Shangjian Liu, Qinghua Liu, Shuoying Li and Tian-Ling Ren
Nanomaterials 2026, 16(14), 898; https://doi.org/10.3390/nano16140898 (registering DOI) - 22 Jul 2026
Abstract
Driven by advances in renewable energy technologies, research on perovskite optoelectronics has advanced rapidly across material exploration, device engineering, and intelligent integrated systems. Conventional trial-and-error experiments face inherent constraints in precisely regulating perovskite chemical compositions and microstructures, as well as in mitigating degradation [...] Read more.
Driven by advances in renewable energy technologies, research on perovskite optoelectronics has advanced rapidly across material exploration, device engineering, and intelligent integrated systems. Conventional trial-and-error experiments face inherent constraints in precisely regulating perovskite chemical compositions and microstructures, as well as in mitigating degradation in perovskite solar cells (PSCs). Artificial intelligence (AI) and the Internet of Things (IoT) have emerged as powerful tools for material discovery, synthetic condition design, and the prediction of perovskite fundamental properties and device outputs. This review systematically summarizes recent advances in machine learning (ML) implementations for PSC research, covering molecular-scale material screening, synthetic parameter optimization, performance forecasting, device architecture design, and system performance evaluation. We further elaborate on key obstacles hindering ML-assisted perovskite development, including insufficient operational stability, barriers to large-scale fabrication, and limited computational efficiency. Last, we outline promising research avenues and highlight the transformative capacity of ML to advance high-performance, manufacturable perovskite optoelectronic devices. Full article
(This article belongs to the Special Issue Advances in Nanophotonics and Metasurface)
31 pages, 1327 KB  
Review
Hyaluronic Acid-Based Biomaterials for Soft Tissue Repair and Wound Healing: Clinical Evidence and Emerging Applications
by Bogdan Mircea Măciuceanu Zărnescu, Diana Cristina Pîrvulescu (Bunea), Adelina-Gabriela Niculescu, Alexandru Scafa Udriște, Alexandru Mihai Grumezescu and Sebastian Vâlcea
Gels 2026, 12(7), 655; https://doi.org/10.3390/gels12070655 - 22 Jul 2026
Abstract
Hyaluronic acid (HA) is a glycosaminoglycan that is found within the body and has both structural and signaling functions in the extracellular matrix. HA is biocompatible and biodegradable; it has a high water content and binds directly to certain cell-surface proteins. Due to [...] Read more.
Hyaluronic acid (HA) is a glycosaminoglycan that is found within the body and has both structural and signaling functions in the extracellular matrix. HA is biocompatible and biodegradable; it has a high water content and binds directly to certain cell-surface proteins. Due to these characteristics, it is considered a promising component for the design of biomaterials for regenerative wound healing. This review covers the most recent findings on the use of HA-based biomaterials in soft tissue repair, while also incorporating earlier, foundational studies relevant to the field, focusing on HA’s characteristics, cellular interactions, design, and preclinical and clinical results. The physicochemical characteristics of HA and their influence on cellular responses and tissue regeneration are discussed to show how material properties can be adjusted for specific therapeutic purposes. There have been great advances in chemically modified composite scaffolds and HA matrices, which offer better mechanical stability and controlled degradation. At the same time, new delivery systems have been built using HA, from nanoparticles to gene delivery platforms and growth factors, and these have given the material an active role as a therapeutic agent rather than just a passive one. This narrative review covers the clinical evidence for the effectiveness of commercial products for acute and diabetic wounds, as well as burns and chronic wounds, and discusses where their use is indicated. In the end, the current limitations of the research and future applications and directions are discussed. Full article
(This article belongs to the Special Issue Regenerating and Repairing Gels)
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53 pages, 20152 KB  
Article
Phytochemical Dynamics and Antimicrobial Efficacy of Dandelion (Taraxacum officinale L.) from Central Plateau of Moldova, Romania
by Maria-Virginia Tanasa (Acretei), Ticuta Negreanu-Pirjol, Verginica Schröder, Laura Adriana Bucur, Bogdan-Stefan Negreanu-Pirjol, Florentina Nicoleta Roncea, Antoanela Popescu, Ioana Cristina Marinas, Diana-Madalina Gaboreanu, Dan Razvan Popoviciu, Simona Margareta Coman and Natalia Rosoiu
Molecules 2026, 31(14), 2549; https://doi.org/10.3390/molecules31142549 - 22 Jul 2026
Abstract
The therapeutic use of Taraxacum officinale L. remains a challenge due to its chemical profile shifting dramatically, markedly with seasonal variation and processing techniques. To address this, the paper evaluated how the plant organ, harvest season, and extraction technique as ultrasound-assisted extraction (UAE) [...] Read more.
The therapeutic use of Taraxacum officinale L. remains a challenge due to its chemical profile shifting dramatically, markedly with seasonal variation and processing techniques. To address this, the paper evaluated how the plant organ, harvest season, and extraction technique as ultrasound-assisted extraction (UAE) and solid–liquid extraction in a Soxhlet system (both using hydroalcoholic solvent concentrations of 70:30 (v/v) ethanol) and conventional cold maceration, at solvent concentration 50:50 (v/v) ethanol, respectively 70:30 (v/v) ethanol, could have impact both metabolite yield and biological activity. The findings show that a single, uniform extraction protocol is inefficient; instead, the data support a dual-harvest approach of vegetal product. Autumn harvests are ideal for extracting tannins and anthocyanins, while spring harvests maximize flavonoids, ascorbic acid, and carotenoids. In terms of methodology, UAE, with 70:30 (v/v) ethanol, consistently outperforms other approaches because it prevents thermal degradation of Soxhlet extraction and improves the recovery of intermediate-polarity compounds. As a result, UAE extracts showed the strongest antimicrobial action, particularly against Gram-positive bacteria such as Staphylococcus aureus, and notable effectiveness against Pseudomonas aeruginosa. In addition, brine shrimp lethality screening confirmed the safety of all extracts (LC50 > 1000 µg/mL). Notably, the root extracts induced a specific, non-lethal delay in larval development, likely tied to their unique bitter principles. This research provides a practical framework for tailoring harvest and extraction parameters to target specific compounds for clinical and nutraceutical use. Full article
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14 pages, 866 KB  
Proceeding Paper
Aging Behavior and Wear Metal Evolution of Low-Viscosity SAE 0W20 Engine Oil During the First Service Interval
by Atanasi Tashev, Yordan Stoyanov and Penko Mitev
Eng. Proc. 2026, 150(1), 55; https://doi.org/10.3390/engproc2026150055 - 22 Jul 2026
Abstract
The present study investigates the physicochemical degradation and wear metal evolution of low-viscosity SAE 0W-20 engine oil during the first service interval of a modern gasoline internal combustion engine. Two oil samples were analyzed: fresh lubricant and used oil collected after approximately 13,000 [...] Read more.
The present study investigates the physicochemical degradation and wear metal evolution of low-viscosity SAE 0W-20 engine oil during the first service interval of a modern gasoline internal combustion engine. Two oil samples were analyzed: fresh lubricant and used oil collected after approximately 13,000 km of vehicle operation. The analysis included determination of kinematic viscosity at 100 °C (ASTM D445), total base number (ASTM D2896), FT-IR spectroscopic indicators of chemical degradation (ASTM E2412), and elemental analysis of wear and additive metals using ICP-OES (ASTM D5185). The results show a viscosity reduction from 8.5 to 7.01 mm2/s and a decrease in the alkalinity reserve to 3.7 mgKOH/g, indicating progressive lubricant aging. FT-IR analysis revealed moderate oxidation, nitration, and sulfation processes, while elemental analysis identified Cu, Fe, and Al as the dominant wear metals. The observed changes correspond primarily to normal oil aging and engine running-in processes. The results demonstrate the effectiveness of combined oil analysis techniques for monitoring lubricant degradation and early engine wear. Full article
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30 pages, 7400 KB  
Article
Synthesis, Characterization, and Photocatalytic Performance of Rare-Earth-Modified ZnO Nanoflowers for Degradation of 2,5-Diphenyl-1,3-oxazole and 2-(4-Biphenyl)-5-phenyl-1,3,4-oxadiazole
by Nina Kaneva, Dobrina Ivanova, Trajce Trajkov, Veronika Mihaylova, Nicola Scaramuzza and Georgi B. Hadjichristov
Catalysts 2026, 16(7), 661; https://doi.org/10.3390/catal16070661 - 22 Jul 2026
Abstract
The photocatalytic degradation of the 2,5-diphenyl-1,3-oxazole (PPO) and 2-(4-biphenyl)-5-phenyl-1,3,4-oxadiazole (PBD), which are laser dyes and scintillator compounds, was investigated under ultraviolet (UV) light irradiation using pure and rare-earth (Sm3+, Eu3+, and Gd3+)-modified zinc oxide (ZnO) hierarchical flower-like [...] Read more.
The photocatalytic degradation of the 2,5-diphenyl-1,3-oxazole (PPO) and 2-(4-biphenyl)-5-phenyl-1,3,4-oxadiazole (PBD), which are laser dyes and scintillator compounds, was investigated under ultraviolet (UV) light irradiation using pure and rare-earth (Sm3+, Eu3+, and Gd3+)-modified zinc oxide (ZnO) hierarchical flower-like microstructures. The synthesized photocatalysts (powder) were characterized by scanning electron microscopy (SEM), energy-dispersive X-ray spectroscopy (EDS), and X-ray diffraction (XRD), confirming the formation of flower-like ZnO structures and successful modification by the oxides Sm2O3, Eu2O3, and Gd2O3. Residual concentrations of Zn2+, Gd3+, Sm3+, and Eu3+ in the treated aqueous solutions were determined by ICP-MS to evaluate catalyst stability, while chemical oxygen demand (COD) analysis was used to assess mineralization efficiency. For both PPO and PBD, the photocatalytic activity followed the order ZnO < ZnO/Gd2O3 < ZnO/Sm2O3 < ZnO/Eu2O3, which can be attributed to the enhanced charge separation and reduced electron–hole recombination caused by rare-earth ions, with Eu3+ providing the most effective electron trapping. PPO showed faster degradation than PBD, mainly due to the structure of the PBD molecule, which is more rigid and conjugated, owing to its higher resistance to oxidative degradation. Full article
(This article belongs to the Special Issue Novel Catalytic Techniques for Reducing Organic Pollutants)
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21 pages, 3286 KB  
Article
Preparation of Quercetin-Loaded Lipid Nanoparticle-Embedded Hydrogels and Stability Studies
by Chatchapong Tangjidapichai, Sarin Tadtong, Chuda Chittasupho and Weerasak Samee
Molecules 2026, 31(14), 2539; https://doi.org/10.3390/molecules31142539 - 22 Jul 2026
Abstract
Quercetin, a plant-derived flavonoid with potent antioxidant and anti-inflammatory properties, is limited for topical use by its poor aqueous solubility, low bioavailability, and chemical instability. This research developed and validated a formulation-driven strategy to stabilize quercetin by encapsulating it in lipid nanoparticles (QLNs) [...] Read more.
Quercetin, a plant-derived flavonoid with potent antioxidant and anti-inflammatory properties, is limited for topical use by its poor aqueous solubility, low bioavailability, and chemical instability. This research developed and validated a formulation-driven strategy to stabilize quercetin by encapsulating it in lipid nanoparticles (QLNs) and embedding these in a Carbopol hydrogel, providing comprehensive physicochemical and functional stability data. A fully validated HPLC-PDA assay was used to quantify quercetin in the nanoparticle–hydrogel matrix. In vitro bioactivity testing showed notable antioxidant activity (DPPH IC50 6.84 ± 0.12 µg/mL; ABTS IC50 4.04 ± 0.08 µg/mL; FRAP 301.46 ± 3.68 µg/mL) and an anti-inflammatory effect in LPS-stimulated RAW264.7 macrophages (1 µM quercetin reduced NO from 50.72 ± 2.00 µM to 41.57 ± 3.12 µM, p < 0.05). Forced degradation mapping across acidic, basic, oxidative, and photolytic conditions defined degradation pathways (complete loss in 1 N NaOH at 24 h; greater retention in 1 N HCl, 3% H2O2, and UV-254). QLN–hydrogel formulations remained physically and chemically stable through heating–cooling cycles and 180-day storage at multiple temperatures, retaining >90% quercetin and preserving antioxidant and anti-inflammatory activities (<10% reduction). These results establish a robust, application-ready approach for maintaining quercetin’s chemical integrity and bioactivity in topical formulations. Full article
(This article belongs to the Special Issue Phenolic Compounds: Chemistry and Health Benefits)
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0 pages, 922 KB  
Proceeding Paper
HVAC Duct Contamination and Its Impact on Energy Efficiency and Indoor Air Quality: Evaluation and Ranking of Inspection Methods Using Multi-Criteria Analysis
by Kristina Mashonova, Tanya Titova and Rosen Kosturkov
Eng. Proc. 2026, 150(1), 44; https://doi.org/10.3390/engproc2026150044 - 21 Jul 2026
Abstract
Air duct contamination in HVAC systems degrades indoor air quality and reduces energy efficiency by increasing aerodynamic resistance, pressure drop, and electricity consumption. This study systematically analyzes contamination causes and their effects on indoor health, system performance, and energy use. It examines physical, [...] Read more.
Air duct contamination in HVAC systems degrades indoor air quality and reduces energy efficiency by increasing aerodynamic resistance, pressure drop, and electricity consumption. This study systematically analyzes contamination causes and their effects on indoor health, system performance, and energy use. It examines physical, biological, and chemical pollutants and their accumulation mechanisms. Emphasis is placed on inspection and diagnostic methods to guide effective monitoring strategies. Ten methods were evaluated using five criteria: reliability, applicability, speed, cost efficiency, and diagnostic value. Optical camera inspection with image processing and pressure drop measurement ranked highest, highlighting the importance of continuous monitoring for preventive maintenance and energy optimization. Full article
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26 pages, 11443 KB  
Review
State-of-the-Art on the Feasibility Assessment of Recycling of Oil Refinery Wastes in Cement Composites with Particular Emphasis on Spent FCC Catalysts
by Paweł Niewiadomski, Martyna Nieświec, Michał Cisiński and Łukasz Sadowski
Buildings 2026, 16(14), 2903; https://doi.org/10.3390/buildings16142903 - 21 Jul 2026
Abstract
Currently, the significance of oil refinery industry is unquestionable because of the increasing demand for petrochemical products, such as fuels, monomers, and organic chemicals. Despite this, apart from high greenhouse gas emissions, numerous oil and natural gas refining processes are distinctly associated with [...] Read more.
Currently, the significance of oil refinery industry is unquestionable because of the increasing demand for petrochemical products, such as fuels, monomers, and organic chemicals. Despite this, apart from high greenhouse gas emissions, numerous oil and natural gas refining processes are distinctly associated with the generation of a considerable amount of Oil Refinery Wastes (ORWs) in different forms, which need proper disposal and valorization. Nonetheless, at present, solid ORWs are mainly sent to landfills. Such a procedure, apart from high disposal costs, results in significant environmental pollution related to the release of chemical contaminants to soil and water environment. Consequently, these pollutants might poison natural flora and digestive systems of animals, thereby contributing to the general degradation of useful land and a serious health risk. To cope with that issue, ORW recycling in cement-based materials might be considered a reliable course of action, as the hardened concrete is capable to bind contaminants that ORW comprises. This article focuses on actual literature knowledge, limitations, and chances in the scope of a comprehensive approach to sustainable management of ORWs through their utilization in cementitious composites. The special emphasis was placed on presenting the impact provided by the addition of ORWs on the numerous performances of cementitious mixes and hardened concrete. The environmental and economic aspects were also discussed, particularly in the scope of CO2 emission reductions and cost savings. Finally, the proposal for future tests, including investigating the correlation between valorization of ORWs and toxicity of ORW-blended composites, were proposed. Full article
(This article belongs to the Section Building Materials, and Repair & Renovation)
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27 pages, 4300 KB  
Review
Antibiotics in the Environment: Occurrence, Enhanced Removal Strategies and Future Prospects
by Yinglu Tao, Wenjun Xie, Lei Xu, Cailing Shi, Xiangrui Wang, Gaoqi Li and Chufei Yu
Toxics 2026, 14(7), 637; https://doi.org/10.3390/toxics14070637 - 21 Jul 2026
Abstract
The widespread occurrence of antibiotics in the environment threatens public health and ecosystem safety. This review summarizes the global occurrence of antibiotic contamination across the different environmental media, i.e., water systems, solid wastes, and soils, and provides a comprehensive analysis of physical, chemical, [...] Read more.
The widespread occurrence of antibiotics in the environment threatens public health and ecosystem safety. This review summarizes the global occurrence of antibiotic contamination across the different environmental media, i.e., water systems, solid wastes, and soils, and provides a comprehensive analysis of physical, chemical, and biological removal methods, including their mechanisms, application advantages and disadvantages. It is deduced that physical methods aid in antibiotic enrichment, which leads to residual accumulation and fails to achieve complete degradation. In comparison, chemical methods are more efficient and rapid, but they are largely limited by high costs and secondary pollution. Biological methods, despite being appealing due to their low costs and environmental friendliness, may generate and spread antibiotic-resistant bacteria. To overcome the disadvantages of these conventional treatment methods, this review emphasizes the significant potential of integrated antibiotic removal systems, such as coupled advanced oxidation processes (AOPs), physical methods combined with AOPs and chemical methods combined with biological methods, which could achieve superior treatment performance. Future research should focus on optimizing and simplifying coupled systems and developing innovative treatment methods to enhance removal efficiency, reduce operational costs, and minimize secondary toxicity, thereby enabling effective antibiotic pollution remediation. This review summarizes the global state of antibiotic residues and stresses the importance of combined treatment methods for enhancing antibiotic degradation and removal, providing the valuable insights for green and efficient antibiotic treatment. Full article
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30 pages, 7173 KB  
Review
Degradation and Regeneration of Soil Structure in Intensified Paddy Fields: Plant–Soil Interactions, Ecological Effects, and Restoration Pathways
by Meng Fang, Jiahao Shen, Gan Liu, Chirui Zhang and Zhong Tang
Plants 2026, 15(14), 2225; https://doi.org/10.3390/plants15142225 - 21 Jul 2026
Abstract
Intensified paddy production plays a crucial role in sustaining rice productivity and food security; however, long-term high-frequency puddling, heavy machinery operations under wet soil conditions, simplified cropping systems, and insufficient organic matter inputs have progressively degraded the physical structure of paddy soils. Such [...] Read more.
Intensified paddy production plays a crucial role in sustaining rice productivity and food security; however, long-term high-frequency puddling, heavy machinery operations under wet soil conditions, simplified cropping systems, and insufficient organic matter inputs have progressively degraded the physical structure of paddy soils. Such structural degradation not only weakens soil water movement, nutrient supply, and aeration but also restricts rice root penetration, alters rhizosphere processes, and disrupts plant–soil feedbacks. Previous studies have largely focused on individual aspects such as soil compaction, amendment-based improvement, water management, or root responses, whereas an integrated understanding of the multi-source drivers, functional consequences, and restoration pathways of soil structural degradation in intensified paddy fields remains limited. Following the overarching theme of soil degradation and regeneration, this review systematically synthesizes the indicator framework, formation mechanisms, degradation typology, ecological consequences, and regulation strategies of paddy soil structural degradation. We further clarify the transition of degraded paddy soils from single physical constraints to the coupled decline of physical, chemical, and biological functions, and compare the agronomic performance, environmental implications, implementation feasibility, and trade-offs of different restoration pathways. Existing evidence indicates that soil structural degradation in paddy fields can impair root-zone pore connectivity, rhizosphere oxygen supply, nutrient acquisition, microbial-mediated carbon and nitrogen cycling, and greenhouse gas regulation, thereby affecting rice growth, yield stability, and the ecological sustainability of paddy systems. Accordingly, the restoration of degraded paddy soils should move beyond short-term loosening or single-factor amendment toward integrated regeneration strategies that maintain soil structural health, reconstruct plough-layer functions, enhance root–soil interactions, and promote the synergistic recovery of pore networks, aggregates, organic carbon, and microbial processes. This review provides a theoretical basis and research reference for the precise restoration of soil structural constraints and the sustainable management of plant–soil systems in intensified paddy fields. Full article
(This article belongs to the Section Plant–Soil Interactions)
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50 pages, 3126 KB  
Review
Redefining Stability in Cultural Heritage Through Polymer Design: From Conservation Strategies to Plastic Degradation
by Elisabetta Ranucci and Jenny Alongi
Polymers 2026, 18(14), 1783; https://doi.org/10.3390/polym18141783 - 21 Jul 2026
Abstract
Polymers play a central and multifaceted role in cultural heritage science, serving both as functional materials in conservation treatments, such as cleaning, consolidation, adhesion and protection, and as constituents of a wide range of historical artefacts, including paper and canvas, waterlogged wooden wrecks, [...] Read more.
Polymers play a central and multifaceted role in cultural heritage science, serving both as functional materials in conservation treatments, such as cleaning, consolidation, adhesion and protection, and as constituents of a wide range of historical artefacts, including paper and canvas, waterlogged wooden wrecks, musical instruments, and modern plastics used in art. Although numerous studies have examined the use of polymers in archaeology and cultural heritage conservation, most have focused on specific polymers, individual conservation treatments, or categories of artefacts. A comprehensive and integrated assessment of the multifunctional role of polymers, both as conservation materials and as constituents of heritage objects, remains lacking. The aim of this review is to provide a critical and comprehensive overview of natural and synthetic polymers in cultural heritage science, examining their applications in conservation treatments, their long-term stability and aging, and the challenges and opportunities associated with their preservation and sustainable use. This review examines the main classes of natural and synthetic polymers used in conservation, evaluating their mechanisms of action, performance, limitations, and long-term behavior across different applications. It also examines the chemical decomposition pathways and the resulting degradation phenomena occurring in polymeric materials, both as conservation products and as constituents of cultural artefacts, together with current stabilization strategies aimed at mitigating aging and deterioration. This review provides a critical appraisal of current challenges and future perspectives in cultural heritage conservation, highlighting emerging trends and research directions for the development of more effective, sustainable, and compatible polymer-based solutions for cultural heritage conservation. Full article
(This article belongs to the Section Polymer Chemistry)
31 pages, 2208 KB  
Review
Beyond Permanent Genome Editing: Molecular Delivery Strategies for RNA Editing and Epigenome-Editing Therapeutics
by Wajid Zaman and Asma Ayaz
Int. J. Mol. Sci. 2026, 27(14), 6467; https://doi.org/10.3390/ijms27146467 - 21 Jul 2026
Abstract
Reversible genetic medicines are emerging as controllable alternatives to permanent genome editing by enabling programmable modulation of RNA sequence, transcript abundance, chromatin state, and gene expression without irreversible genomic alteration. However, reversibility is not a single binary property: transient editor exposure, decay of [...] Read more.
Reversible genetic medicines are emerging as controllable alternatives to permanent genome editing by enabling programmable modulation of RNA sequence, transcript abundance, chromatin state, and gene expression without irreversible genomic alteration. However, reversibility is not a single binary property: transient editor exposure, decay of the molecular effect, recovery of cellular function, and clinical capacity to stop, redose, or counteract treatment may diverge. This review therefore distinguishes mechanistic, functional, and clinical reversibility while examining targeted delivery systems for RNA-editing and epigenome-editing therapeutics. Key payloads include ADAR-recruiting oligonucleotides, CRISPR-Cas13 RNA editors, guide RNAs, chemically modified RNAs, editor-encoding mRNAs, dCas9 transcriptional regulators, DNA methylation editors, histone-modifying systems, and CRISPRoff-like platforms. We evaluate extracellular and intracellular delivery barriers, including nuclease degradation, immune recognition, renal clearance, liver uptake, cellular entry, endosomal escape, cytoplasmic release, nuclear localization, chromatin access, editing-window duration, off-target activity, immunogenicity, repeat-dosing feasibility, manufacturing, quality control, potency assays, and regulatory translation. Overall, delivery systems for reversible genetic medicines should be judged by tissue selectivity, functional editing, duration of action, reversibility after treatment withdrawal, safety, manufacturability, and clinical controllability. Full article
(This article belongs to the Special Issue CRISPR/Cas Systems and Genome Editing—3rd Edition)
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13 pages, 7843 KB  
Article
Degradation, Osmosis and the Emergence of Basic Functionalities in Abiotic Synthetic Life-like Chemical Systems
by Chenyu Lin and Juan Pérez-Mercader
Life 2026, 16(7), 1204; https://doi.org/10.3390/life16071204 - 21 Jul 2026
Abstract
Autonomous and interconnected multiscale out-of-equilibrium processes, including chemical and physical feedbacks, occur at the micron and lower scales during the heterotrophic synthesis of simple abiotic protocells, such as the ones developed in our group, with primitive life-like properties. These processes provide a solution [...] Read more.
Autonomous and interconnected multiscale out-of-equilibrium processes, including chemical and physical feedbacks, occur at the micron and lower scales during the heterotrophic synthesis of simple abiotic protocells, such as the ones developed in our group, with primitive life-like properties. These processes provide a solution to the autopoiesis and concentration problems in life’s origin. They also underlie the emergence of whole-vesicle functionalities like chemotaxis and self-reproduction involving dissipation and degradation which are integrated into our life-like abiotic systems. Such abiotic systems can be considered simple examples in the ontological classification of “life beyond biochemistry” (LBB), as they are based on carbon chemistry and, by design, do not use any biochemical compounds to integrate the basic system-level properties of natural life. This contribution analyzes a class of highly-out-of-equilibrium LBB systems we call “phoenix” and connects degradation pathways due to the presence of oxygenic species to enabling basic functionalities in these simple life beyond biochemistry systems such as protocell self-reproduction and the mechano-chemical squirting out into the medium of a fraction of their partially reacted lumen that enables heritable variation in our systems. We conclude that degradation within the lumen of mature micelles turning into vesicles may also be considered as a driving force for chemical evolution due to the number of new proximate reaction pathways it can open up. Full article
(This article belongs to the Special Issue The 15th Anniversary of Life—Alternatives to RNA World)
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