Astrocytes

Displaying 1 - 10 of 10CSV
Bosco, P., Akcan, U., Williams, D., Buchanan, H. M., Agalliu, D., & Sproul, A. A. (2024). Generating iAstrocytes From Human Induced Pluripotent Stem Cells by Combining Low‐Density Passaging of Neural Progenitor Cells and Transcription Factor NFIA Transdifferentiation. Current Protocols, 4(11). Portico. https://doi.org/10.1002/cpz1.70049
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Ardanaz, C. G., de la Cruz, A., Minhas, P. S., Hernández-Martín, N., Pozo, M. Á., Valdecantos, M. P., Valverde, Á. M., Villa-Valverde, P., Elizalde-Horcada, M., Puerta, E., Ramírez, M. J., Ortega, J. E., Urbiola, A., Ederra, C., Ariz, M., Ortiz-de-Solórzano, C., Fernández-Irigoyen, J., Santamaría, E., Karsenty, G., … Solas, M. (2024). Astrocytic GLUT1 reduction paradoxically improves central and peripheral glucose homeostasis. Science Advances, 10(42). https://doi.org/10.1126/sciadv.adp1115
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Tomasello, D. L., Barrasa, M. I., Mankus, D., Alarcon, K. I., Lytton-Jean, A. K. R., Liu, X. S., & Jaenisch, R. (2024). Mitochondrial dysfunction and increased reactive oxygen species production in MECP2 mutant astrocytes and their impact on neurons. Scientific Reports, 14(1). https://doi.org/10.1038/s41598-024-71040-y
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Paryani, F., Kwon, J.-S., Ng, C. W., Jakubiak, K., Madden, N., Ofori, K., Tang, A., Lu, H., Xia, S., Li, J., Mahajan, A., Davidson, S. M., Basile, A. O., McHugh, C., Vonsattel, J. P., Hickman, R., Zody, M. C., Housman, D. E., Goldman, J. E., … Al-Dalahmah, O. (2024). Multi-omic analysis of Huntington’s disease reveals a compensatory astrocyte state. Nature Communications, 15(1). https://doi.org/10.1038/s41467-024-50626-0
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İş, Ö., Wang, X., Reddy, J. S., Min, Y., Yilmaz, E., Bhattarai, P., Patel, T., Bergman, J., Quicksall, Z., Heckman, M. G., Tutor-New, F. Q., Can Demirdogen, B., White, L., Koga, S., Krause, V., Inoue, Y., Kanekiyo, T., Cosacak, M. I., Nelson, N., … Ertekin-Taner, N. (2024). Gliovascular transcriptional perturbations in Alzheimer’s disease reveal molecular mechanisms of blood brain barrier dysfunction. Nature Communications, 15(1). https://doi.org/10.1038/s41467-024-48926-6
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Yang, X., Zeng, Q., İnam, M. G., İnam, O., Lin, C.-S., & Tezel, G. (2024). cFLIP in the molecular regulation of astroglia-driven neuroinflammation in experimental glaucoma. Journal of Neuroinflammation, 21(1). https://doi.org/10.1186/s12974-024-03141-4
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Gordillo-Sampedro, S., Antounians, L., Wei, W., Mufteev, M., Lendemeijer, B., Kushner, S. A., de Vrij, F. M. S., Zani, A., & Ellis, J. (2024). iPSC-derived healthy human astrocytes selectively load miRNAs targeting neuronal genes into extracellular vesicles. Molecular and Cellular Neuroscience, 129, 103933. https://doi.org/10.1016/j.mcn.2024.103933
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Suazo, K. F., Mishra, V., Maity, S., Auger, S. A., Justyna, K., Petre, A. M., Ottoboni, L., Ongaro, J., Corti, S. P., Lotti, F., Przedborski, S., & Distefano, M. D. (2024). Improved synthesis and application of an alkyne-functionalized isoprenoid analogue to study the prenylomes of motor neurons, astrocytes and their stem cell progenitors. Bioorganic Chemistry, 147, 107365. https://doi.org/10.1016/j.bioorg.2024.107365
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Li Puma, D. D., Ripoli, C., Puliatti, G., Pastore, F., Lazzarino, G., Tavazzi, B., Arancio, O., Piacentini, R., & Grassi, C. (2022). Extracellular tau oligomers affect extracellular glutamate handling by astrocytes through downregulation of GLT‐1 expression and impairment of NKA1A2 function. Neuropathology and Applied Neurobiology, 48(5). Portico. https://doi.org/10.1111/nan.12811
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