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E. Pogurschi

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Open access Sep 2026

Development of Sustainable Fish-Based Products for Urban Food Systems Through Nutritional Optimization, Microbiological Safety, and Circular Valorization

Population growth in urban food systems has led to a decline in food resources and the emergence of social imbalances, while consumers’ shift toward a healthy and sustainable lifestyle, against the backdrop of a growing carbon footprint and negative health impacts, highlights the need to promote fish-based products as part of a balanced diet, alongside the implementation of circular strategies for utilizing byproducts from processing, which has led to increased interest in reformulating these products in accordance with the principles of the circular bioeconomy. Aquaculture and the agri-food industry generate a large amount of byproducts that are underutilized, even though they could be extremely useful as functional food ingredients. Recycling these streams into ingredients is an effective way to reduce food waste, make better use of resources, and lessen the environmental impact of food systems. In this context, by-products can be strategically incorporated into food reformulation processes, where their bioactive compounds simultaneously improve both the nutritional value and the technological function of foods. However, such approaches can only be effectively utilized if there is a coordinated framework that ensures food safety, supports scalable processing technologies, and complies with regulatory standards. This analysis takes an integrated approach to examine how specific processing strategies, quality control measures, and risk assessment protocols can work together to ensure nutritional optimization, guarantee food safety, and promote circular use. This paper also addresses how these interconnected systems contribute to maintaining public health and increasing consumer confidence, particularly in urban food systems. By highlighting these connections, the research offers a clearer operational perspective on applying circular economy principles to sustainable food production. Even with these opportunities, issues related to scalability, regulatory compliance, and the limited number of applied studies remain major challenges. In this context, this paper examines how the coordinated implementation of these mechanisms can contribute to public health, strengthen consumer confidence, and facilitate the transition to sustainable urban food systems. Finally, this paper offers a clearer operational perspective on how the principles of the circular economy can be effectively put into practice by harmonizing nutrition, safety, and value-added recovery.

Elena-Iuliana Flocea, Ioana Gucianu, M. Ciobanu et al. · 0 citations
Open access Jul 2026

Polyphenol-functionalized Fe3O4 nanomaterials for combating multidrug-resistant ESKAPE pathogens

Antimicrobial resistance among clinically significant Gram-negative ESKAPE pathogens continues to represent a major therapeutic challenge, underscoring the need for nanomaterial-based anti-infective platforms with robust biological performance. Polyphenol-functionalized magnetic nanoparticles may offer a promising strategy for overcoming multidrug resistance and biofilm-associated infections. Fe 3 O 4 nanoparticles functionalized with gallic acid, curcumin, or quercetin were synthesized by in situ alkaline co-precipitation and characterized using XRD, FTIR, TEM, DLS, zeta potential and TGA. Their antimicrobial, antibiofilm, anti-persister, quorum sensing and efflux pump inhibitory activities were evaluated against multidrug-resistant and extensively drug-resistant clinical isolates of Klebsiella pneumoniae, Acinetobacter baumannii and Pseudomonas aeruginosa . Cytocompatibility was assessed using MTT assays. Physicochemical and interfacial analyses confirmed the formation of polyphenol-coated Fe 3 O 4 nanomaterials, with preserved magnetite crystallinity, nanoscale dimensions, negative surface charge, and stable organic loading. In comparison with the corresponding free polyphenols, the nanoformulations exhibited an increase in antibacterial activity, with Fe 3 O 4 @gallic acid showing the most potent effect and a minimum inhibitory concentration of 16 μg/mL against A. baumannii . At sub-inhibitory concentrations, these materials significantly inhibited biofilm formation and diminished mature-biofilm biomass and metabolic activity by up to 78% and 85%, respectively. Notably, Fe 3 O 4 @gallic acid also decreased persister-cell burden by up to 5.0 log 10 CFU/mL, while gene-expression profiling suggested modulation of quorum-sensing and efflux-associated pathways. These findings highlight the potential of polyphenol-functionalized Fe 3 O 4 nanomaterials as promising candidates for localized antimicrobial interventions and antibiofilm surface engineering.

Lucian-Mihai Mercan, Andreea Pîndaru, Grațiela Grădişteanu Pircalabioru et al. · 0 citations

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