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Bloodstream infections (BSIs) pose a significant diagnostic challenge, largely due to the limitations of traditional methods such as blood cultures. These methods often yield low positive rates, have lengthy processing times that delay treatment, and are limited in detecting only a narrow range of pathogens. Such delays and inaccuracies can critically impede timely clinical interventions, potentially compromising patient outcomes. Next-generation sequencing (NGS) is a powerful tool for rapid, precise pathogen identification. While metagenomic NGS (mNGS) offers broad pathogen coverage, it is often costly and complex. Targeted NGS (tNGS), however, focuses on key regions of clinically relevant pathogens, reducing costs and simplifying workflows while maintaining high sensitivity, making it more practical for routine diagnostics. In this study, we introduce a novel approach combining a human cell-specific filtration membrane with a multiplex tNGS panel to overcome these challenges. The filtration membrane, designed with surface charge properties to be electrostatically attractive to leukocytes for the selective capture of specific cells, demonstrated high efficiency in removing host cells and nucleic acids, achieving over a 98% reduction in host DNA and thereby minimizing background interference in pathogen detection. Additionally, we developed an effective multiplex tNGS panel targeting over 330 clinically relevant pathogens and verified its consistency with mNGS and blood culture results, demonstrating a significant improvement in detection sensitivity. By integrating these two methods, we achieved a synergistic enhancement in diagnostic capability, boosting pathogen reads by 6- to 8-fold, which enabled reliable identification even in cases of low-abundance pathogens. This approach provides faster, more accurate, and more sensitive detection of BSIs, enabling earlier identification of infections. This facilitates timely and targeted treatment, ultimately improving patient outcomes in critical care settings. Given the unique properties of the filtration membrane and the strengths of the tNGS panel, this approach shows promising applications in prenatal and genetic health support, as well as in advancing early cancer screening strategies.
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http://dx.doi.org/10.3389/fmicb.2025.1538265 | DOI Listing |
Water Res
August 2025
Westlake Laboratory of Life Sciences and Biomedicine, Center for Infectious Disease Research, School of Life Sciences, Westlake University, Hangzhou 310024, China; Zhejiang Provincial Key Laboratory of Intelligent Low-Carbon Biosynthesis, Research Center for Industries of the Future, School of Engin
Livestock wastewater is a critical reservoir of antibiotic resistance genes (ARGs) that poses significant public health risks. This study comprehensively evaluated the seasonal dynamics and associated risks of ARGs in a full-scale livestock wastewater treatment plant using an integrated metagenomic and metatranscriptomic approach. The results showed that untreated livestock wastewater harbored high abundance (4.
View Article and Find Full Text PDFChem Asian J
September 2025
Interdisciplinary Research Centre for Membranes and Water Security, King Fahd University of Petroleum and Minerals, Dhahran, 31261, Saudi Arabia.
In this study, a silicon carbide (SiC) mixed-matrix membrane for oil-water separation was successfully fabricated within the nanofiltration range. Silicon carbide was synthesized using rice husk ash (RHA), an agricultural waste material, combined with polydimethylsiloxane (PDMS) and subsequently incorporated into a mixed matrix membrane for oil-water separation. Polysulfone (PSF) and polyvinylpyrrolidone (PVP) were employed as polymer supports for fabricating the SiC-based mixed matrix membrane, which was tested in a dead-end filtration setup.
View Article and Find Full Text PDFWater Res
August 2025
State Key Laboratory of Urban Water Resource and Environment, Harbin Institute of Technology, Harbin 150090, China.
Catalysts for heterogeneous advanced oxidation processes (AOPs) in water remediation face environmental sustainability challenges, due to the intensive production of catalysts and limited stability of catalysts while maintaining high efficiency. Herein, we design a biomimetic carbon catalyst (BCC) inspired by the diatom frustule valve structure, achieving high environmental sustainability while maintaining superior water decontamination performance by a non-radical direct electron transfer (DET) pathway through activating peracetic acid (PAA). Utilizing a hydrogen-bonding strategy, BCC features pillared layered hierarchical pores with an ultrahigh specific surface area of 2710.
View Article and Find Full Text PDFJ Environ Manage
September 2025
Shandong Provincial Key Laboratory of Water Pollution Control and Resource Reuse, Shandong Key Laboratory of Environmental Processes and Health, School of Environmental Science and Engineering, Shandong University, Qingdao, 266237, China. Electronic address:
Anaerobic self-forming dynamic membrane (AnSFDM) bioreactors have attracted increasing attention owing to their cost-effectiveness and lower carbon footprint. AnSFDM formation is the initial process of their operation and of pivotal importance for determining the basic characteristics of AnSFDMs. Nevertheless, the effect of operational parameters on the AnSFDM formation process has not been studied in a systematical and quantitative manner.
View Article and Find Full Text PDFInt J Biol Macromol
September 2025
School of Chemistry and Chemical Engineering, Guangdong Pharmaceutical University, China. Electronic address:
Ultraviolet (UV) radiation-induced photodamage remains a critical dermatological challenge, necessitating natural alternatives to synthetic photo-protectants. This study aimed to evaluate the anti-photodamage potential of fermented Sphagnum moss filtrate (SMFF) through integrated metabolomic, cellular and in vivo analyses. Untargeted metabolomics identified 933 metabolites, with fermentation significantly enriching taurine, glycine derivatives and phenolic acids while activating glycine/serine and taurine/hypotaurine metabolic pathways critical for redox homeostasis.
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