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Selection of the correct targets for myelination and regulation of myelin sheath growth are essential for central nervous system (CNS) formation and function. Through a genetic screen in zebrafish and complementary analyses in mice, we find that loss of oligodendrocyte Neurofascin leads to mistargeting of myelin to cell bodies, without affecting targeting to axons. In addition, loss of Neurofascin reduces CNS myelination by impairing myelin sheath growth. Time-lapse imaging reveals that the distinct myelinating processes of individual oligodendrocytes can engage in target selection and sheath growth at the same time and that Neurofascin concomitantly regulates targeting and growth. Disruption to Caspr, the neuronal binding partner of oligodendrocyte Neurofascin, also impairs myelin sheath growth, likely reflecting its association in an adhesion complex at the axon-glial interface with Neurofascin. Caspr does not, however, affect myelin targeting, further indicating that Neurofascin independently regulates distinct aspects of CNS myelination by individual oligodendrocytes in vivo.
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http://dx.doi.org/10.1016/j.devcel.2019.10.016 | DOI Listing |
J Ethnopharmacol
September 2025
Ethnopharmacological Relevance: Fujian Tablet (FJT), a traditional Chinese herbal compound formulation developed under the theoretical framework of "nourishing the liver and kidney, replenishing essence and marrow" , has been clinically applied for over two decades to treat post-stroke neurological deficits. Preliminary studies demonstrated its efficacy in improving motor function and promoting cervical spinal cord neuroaxonal growth in a middle cerebral artery occlusion (MCAO) rat model. Building upon these findings, this study integrates metabolomic evidence of Foxo3a-GPX4 axis activation to systematically elucidate Fujian Tablet's neurorestorative mechanisms through three interconnected pathways: regulation of ferroptosis, promotion of oligodendrocyte proliferation, and remyelination.
View Article and Find Full Text PDFFront Plant Sci
August 2025
Rice Science Center, Kasetsart University, Nakhon Pathom, Thailand.
Introduction: Rice is mainly consumed by half of the world's population. The imminent climate change and population growth expected in the next 30 years will outpace the current rice production capacity, posing risks to food and nutrition security in developing nations. One simplified approach to address this challenge is to improve photosynthetic capacity by increasing chlorophyll content in leaves and stems.
View Article and Find Full Text PDFLangmuir
September 2025
Department of Chemical Engineering, McGill University, Montréal H3A 0C5, QC, Canada.
Measuring the transport dynamics of soluble molecules such as nutrients, growth factors, and therapeutics within cell aggregates is essential to understand the transport-limiting effects of 3D cell culture models. Traditional methods to study molecular transport within engineered tissues often face challenges related to access for delivery and sampling and require sacrificing the culture. Here, we introduce an accessible, device-innovation platform that allows spatially defined delivery into a living cell aggregate.
View Article and Find Full Text PDFCancer Diagn Progn
September 2025
Institute of Neuropathology, Eppendorf University Hospital, University of Hamburg, Hamburg, Germany.
Background/aim: Neurofibromatosis type 1 (NF1) is a genetic disorder characterized by the development of multiple tumors, including plexiform neurofibromas (PNFs), which often affect the craniofacial region and cause significant functional and aesthetic impairments. This report presents long-term surgical management of a patient with hemifacial diffuse PNF, complicated by the emergence of a rapidly enlarging midfacial tumor.
Case Report: The patient was treated for hemifacial invasive diffuse plexiform neurofibroma.
Planta
September 2025
School of Life and Environmental Sciences, University of Sydney, 380 Werombi Road, Brownlow Hill, Camden, NSW, 2570, Australia.
Nitrogen (N) deficiency in maize regulates carbon (C) metabolism by enhancing sugar and starch metabolism and related gene expression in both shoots and roots, while increasing root competition for assimilates causing carbohydrate accumulation in leaves and sheaths due reduced translocation to sink tissues. Soluble sugars are vital for plant development, with nitrogen (N) availability playing a key role in their distribution across plant organs, ultimately shaping growth patterns. However, the regulatory mechanisms governing carbon (C) assimilate allocation and utilization under different N forms remain unclear.
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