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More sustainable materials have been becoming an important concern of worldwide scientists, and cellulosic materials are one alternative in water decontamination. An efficient strategy to improve removal capacity is functionalizing or incorporating nanomaterials in cellulose-based materials. The new hybrid cDAC/ZnONPs was produced by green synthesis of zinc oxide nanoparticles (ZnONPs), promoting the in situ reduction and immobilization on the cationic dialdehyde cellulose microfibers (cDAC) surface to remove Congo red dye from water. cDAC/ZnONPs was characterized by scanning electron microscopy (SEM-EDS) and infrared spectroscopy (FTIR), which showed efficient nanoparticles reduction. Adsorption efficiency on cationic cellulose surface was investigated by pH, contact time, initial concentration, and dye selectivity tests. The material followed the H isotherm model, which resulted in a maximum adsorption capacity of 1091.16 mg/g. Herein, was developed an efficient and ecologically correct new adsorbent, highly effective in Congo red dye adsorption even at high concentrations, suitable for the remediation of contaminated industrial effluents.
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http://dx.doi.org/10.1016/j.ijbiomac.2024.134063 | DOI Listing |
Environ Monit Assess
September 2025
Department of Civil Engineering, Faculty of Engineering, Karpagam Academy of Higher Education, Pollachi Main Road, Eachanari Post, Coimbatore, Tamil Nadu, 641021, India.
Synthetic dyes, such as Congo red (CR), pose serious threats to human health and aquatic ecosystems because of their carcinogenicity and resistance to degradation, necessitating the development of efficient and eco-friendly remediation strategies. In this study, silver nanoparticles (AgNPs) were synthesized via a green method using Ocimum sanctum (holy basil) leaf extract and applied for CR dye removal from aqueous solutions. The adsorption process was optimized using response surface methodology (RSM) based on Box-Behnken design (BBD), evaluating the influence of key parameters including pH, AgNP dosage, initial dye concentration, contact time, and temperature.
View Article and Find Full Text PDFJ Histotechnol
September 2025
Department of Pathology, Peking University Third Hospital, Beijing, China.
Amyloidosis encompasses a spectrum of rare disorders characterized by extracellular amyloid deposition. Achieving an accurate early diagnosis of systemic amyloidosis necessitates biopsy-specific pathological evaluation. Formalin-fixed, paraffin-embedded liver biopsy specimens were examined using Congo red staining, electron microscopy, immunohistochemistry (IHC), immunofluorescence, and Congo red-assisted laser microdissection with mass spectrometry (LMD/MS).
View Article and Find Full Text PDFBiotech Histochem
September 2025
Laboratory of Veterinary Pathology, School of Veterinary Medicine, Azabu University, Kanagawa, Japan.
Amyloidosis is caused by the extracellular deposition of amyloid fibrils with a β-pleated sheet structure. Diagnosis typically relies on Congo red or Thioflavine T staining. Recently, DAPI (4',6-Diamidino-2-Phenylindole), which is a common nuclear fluorochrome, has been reported to stain amyloid.
View Article and Find Full Text PDFNeurology
October 2025
Department of Neurology, Mayo Clinic, Rochester, MN.
Monoclonal gammopathy-associated myopathies (MGAMs) are rare yet treatable myopathies that occur in association with monoclonal gammopathies. These myopathies include light chain (AL) amyloidosis myopathy, sporadic late-onset nemaline myopathy (SLONM), scleromyxedema with associated myopathy, and newly reported monoclonal gammopathy-associated glycogen storage myopathy (MGGSM), including the vacuolar myopathy with monoclonal gammopathy and stiffness. All these 4 distinct subtypes of MGAMs typically present in patients aged 40 or older, frequently with a subacute onset of rapidly progressive proximal and axial muscle weakness.
View Article and Find Full Text PDFmSphere
September 2025
Department of Chemistry, Michigan State University, East Lansing, Michigan, USA.
The structural role of β-1,6-glucan has remained under-investigated in filamentous fungi compared to other fungal cell wall polymers, and previous studies have shown that the cell wall of the mycelium of did not contain β-1,6-glucans. In contrast, the current solid-state NMR investigations showed that the conidial cell wall contained a low amount of β-1,6-glucan. ssNMR comparisons of the and β-1,6-glucans showed they are structurally similar.
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