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Antibiotics such as tetracyclines (TCs) have become a major threat to ecosystem safety and human health, as their abuse has caused the occurrence and proliferation of antibiotic-resistant bacteria and genes. Currently, there is still a lack of convenient in situ methods for the detection and monitoring of TC pollution in actual water systems. This research reports a paper chip based on the complexation of iron-based metal organic frameworks (Fe-MOFs) and TCs for rapid and in situ visual detection of representative oxytetracycline (OTC) pollution in water environments. The optimized complexation sample NH-MIL-101(Fe)- 350 obtained by calcination at 350 °C exhibited the highest catalytic activity and was then used for paper chip fabrication by printing and surface modification. Notably, the paper chip demonstrated a detection limit as low as 17.11 nmol L and good practicability in reclaimed water, aquaculture wastewater, and surface water systems, with OTC recovery rates of 90.6-111.4%. More importantly, the presence of dissolved oxygen (9.13-12.7 mg L), chemical oxygen demand (0.52-12.1 mg L), humic acid (< 10 mg L), Ca, Cl, and HPO (< 0.5 mol L) had negligible interference on the detection of TCs by the paper chip. Therefore, this work has developed a promising method for rapid and in situ visual monitoring of TC pollution in actual water environments.
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http://dx.doi.org/10.1016/j.jhazmat.2023.131946 | DOI Listing |
Food Res Int
November 2025
Medical School of Nantong University, Nantong 226001, China. Electronic address:
Food nutrition and safety are fundamental to the food industry, and the development of appropriate research models is crucial. Unlike traditional animal models, the innovative organoid/organ-on-a-chip model possess distinct human-like characteristics and genomic stability, which have garnered significant attention in food research. In this review, we conduct a comparative analysis between organoids and traditional animal and 2D cell models.
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November 2025
Key Laboratory of Environmental Related Diseases and One Health, Xianning Medical College, Hubei University of Science and Technology, Xianning 437100, China. Electronic address:
This study aimed to investigate the protective mechanism of Osmanthus fragrans water extract (OSF) against liver injury induced by dibutyl phthalate (DBP). We utilized liver organoids and liver organ chip technology to replicate the liver microenvironment in vivo. Metabolomic analysis revealed that DBP induced oxidative stress and lipid metabolism disorders; however, following intervention with OSF, the associated abnormal metabolites were significantly reduced.
View Article and Find Full Text PDFJ Virol Methods
September 2025
Department of Pathogenic Organism Biology, Henan University of Chinese Medicine, Zhengzhou, Henan, China. Electronic address:
Despite advances in antiretroviral therapy, HIV-1 persistence and immune dysregulation remain unresolved challenges. Here, we demonstrate that curcumin, a low-toxicity natural compound, can inhibit HIV-1 through simultaneous inhibition of the PI3K/AKT and JAK/STAT pathways, leading to downregulation of the viral co-receptor CCR5 and the immune checkpoint transcription factor FOXP3. Using CHIP and EMSA experiments, we found that curcumin disrupts the binding of FOXP3 to the CCR5 promoter, thereby reducing viral entry.
View Article and Find Full Text PDFMater Today Bio
October 2025
Department of Orthopedic Surgery, The First Affiliated Hospital of Chongqing Medical University, Chongqing, China.
Organ-on-a-chip (OoC) systems can simulate the key functions of human organs, combining microfluidics, cell culture, and biomaterials. 3D printing can be integrated into these technologies to facilitate the construction of OoC models. The high precision and layer-by-layer fabrication process of 3D printing not only enables the creation of complex structures for the microfluidic chip but also improves the cellular microenvironment within the chip by harnessing bioinks for 3D bioprinting.
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October 2025
Department of Biochemistry, Research Institute for Basic Medical Science, School of Medicine, CHA University, 335 Pangyo-ro, Bundang-gu, Seongnam-si, Gyeonggi-do, Republic of Korea.
Microfluidic platforms have emerged as powerful tools for investigating complex interactions between cells and their microenvironment. Conventional cancer models often fail to accurately replicate the complexities of the tumor microenvironment. In contrast, cancer-metastasis-on-a-chip models integrate the benefits of three-dimensional cell cultures with microfluidic technology, providing more physiologically relevant platforms for studying cancer biology and improving precision of drug screening.
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