Background: Bipolar radiofrequency can be used surgically to excise and cauterize tissue simultaneously. It has potential for use in endoscopic sinus surgery (ESS). This study was performed to determine the extent and pattern of injury in the paranasal sinuses with bipolar radiofrequency and evaluate wound healing.
Methods: Eight rabbits underwent Coblation of maxillary sinus mucosa with biopsy immediately, on postoperative day (POD) 3, 7, 14, or 29. Maxillary mucosa was exposed through the nasal dorsum, and a Coblator PROciseXP wand used on a power setting of 7 for 2 seconds. Three of the rabbits also had Coblation of ethmoid mucosa over the lamina papyracea, after extending the maxillary ostomy, with biopsy immediately.
Results: Coblation resulted in immediate loss of surface respiratory epithelium and thermal-type injury to the underlying seromucinous glands. On POD 3, the site showed reepithelialization with squamous metaplastic epithelium. The seromucinous glands underwent coagulative necrosis. At POD 7, there was partial replacement of overlying epithelium by respiratory epithelium. The underlying seromucinous glands were lost and replaced by fibroblastic proliferation, with less fibrosis than the mechanically created ostomy site. The underlying bone had reactive, regenerative changes. On PODs 14 and 29, there was further regeneration of respiratory epithelium. Fibrosis was mild. Coblation resulted in gross violation of the bony wall in one maxillary sinus. There were no histological changes in the orbit.
Conclusion: Rabbit paranasal sinus mucosa heals appropriately after Coblation injury.
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http://dx.doi.org/10.2500/ajra.2009.23.3326 | DOI Listing |
Zh Nevrol Psikhiatr Im S S Korsakova
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Mental Health Research Center, Moscow, Russia.
Mental disorders are complex illnesses with multifactorial etiologies involving genetic and environmental components. This review focuses on cellular models derived from the olfactory epithelium as a promising tool to study the molecular mechanisms of some neuropsychiatric diseases. The authors consider cell lines allowing the identification of potential biomarkers and pathogenetic mechanisms of schizophrenia, bipolar disorder, and Alzheimer's disease.
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Institute of Biomedical Engineering, College of Electrical and Computer Engineering, National Yang Ming Chiao Tung University, Hsinchu 300093, Taiwan.
Organ-on-a-chip (OOC) devices mimic human organs, which can be used for many different applications, including drug development, environmental toxicology, disease models, and physiological assessment. Image data acquisition and analysis from these chips are crucial for advancing research in the field. In this study, we propose a label-free morphology imaging platform compatible with the small airway-on-a-chip system.
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Gut immunity is essential for maintaining intestinal health. Recent studies have identified that intracellular liquid-liquid phase separation (LLPS) may play a significant role in regulating gut immunity, however, the underlying mechanisms remain unclear. LLPS refers to droplet condensates formed through intracellular molecular interactions, which are crucial for the formation of membraneless organelles and biomolecules.
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Background: Using primary airway epithelial cells (AEC) is essential to mimic more closely different types and stages of lung disease in humans while reducing or even replacing animal experiments. Access to lung tissue remains limited because these samples are generally obtained from patients who undergo lung transplantation for end-stage lung disease or thoracic surgery for (mostly) lung cancer. We investigated whether forceps or cryo biopsies are a viable alternative source of AEC compared to the conventional technique.
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