Microglia

Displaying 1 - 17 of 17CSV
Lish, A. M., Ashour, N., Pearse, R. V., Galle, P. C., Orme, G. A., Heuer, S. E., Benoit, C. R., Alexander, K. D., Grogan, E. F. L., Terzioglu, G., Scarpa, A., Stern, A. M., Seyfried, N., Menon, V., & Young-Pearse, T. L. (2025). Astrocyte induction of disease-associated microglia is suppressed by acute exposure to fAD neurons in human iPSC triple cultures. Cell Reports, 44(6), 115777. https://doi.org/10.1016/j.celrep.2025.115777
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Gholampour, M., Basu, M. K., Swerdlow, R. H., Zhuo, X., & Haeri, M. (2025). Cell‐specific protein expression in Alzheimer’s disease prefrontal cortex. Alzheimer’s & Dementia, 21(6). Portico. https://doi.org/10.1002/alz.70339
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Roy, N., Haq, I., Ngo, J. C., Bennett, D. A., Teich, A. F., De Jager, P. L., Olah, M., & Sher, F. (2024). Elevated expression of the retrotransposon LINE-1 drives Alzheimer’s disease-associated microglial dysfunction. Acta Neuropathologica, 148(1). https://doi.org/10.1007/s00401-024-02835-6
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Buonfiglioli, A., Kübler, R., Missall, R., De Jong, R., Chan, S., Haage, V., Wendt, S., Lin, A. J., Mattei, D., Graziani, M., Latour, B., Gigase, F., Chiu, R., Zhang, Y., Nygaard, H. B., De Jager, P. L., & De Witte, L. D. (2025). A microglia-containing cerebral organoid model to study early life immune challenges. Brain, Behavior, and Immunity, 123, 1127–1146. https://doi.org/10.1016/j.bbi.2024.11.008
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Tuddenham, J. F., Taga, M., Haage, V., Marshe, V. S., Roostaei, T., White, C., Lee, A. J., Fujita, M., Khairallah, A., Zhang, Y., Green, G., Hyman, B., Frosch, M., Hopp, S., Beach, T. G., Serrano, G. E., Corboy, J., Habib, N., Klein, H.-U., … De Jager, P. L. (2024). A cross-disease resource of living human microglia identifies disease-enriched subsets and tool compounds recapitulating microglial states. Nature Neuroscience, 27(12), 2521–2537. https://doi.org/10.1038/s41593-024-01764-7
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Saeki, K., Pan, R., Lee, E., Kurotaki, D., & Ozato, K. (2024). IRF8 defines the epigenetic landscape in postnatal microglia, thereby directing their transcriptome programs. Nature Immunology, 25(10), 1928–1942. https://doi.org/10.1038/s41590-024-01962-2
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Su, P., Yan, S., Chen, K., Huang, L., Wang, L., Lee, F. H. F., Zhou, H., Lai, T. K. Y., Jiang, A., Samsom, J., Wong, A. H. C., Yang, G., & Liu, F. (2024). EF1α-associated protein complexes affect dendritic spine plasticity by regulating microglial phagocytosis in Fmr1 knock-out mice. Molecular Psychiatry, 29(4), 1099–1113. https://doi.org/10.1038/s41380-023-02396-2
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Chintamen, S., Gaur, P., Vo, N., Bradshaw, E. M., Menon, V., & Kernie, S. G. (2024). Distinct microglial transcriptomic signatures within the hippocampus. PLOS ONE, 19(1), e0296280. https://doi.org/10.1371/journal.pone.0296280
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Kline-Schoder, A. R., Chintamen, S., Willner, M. J., DiBenedetto, M. R., Noel, R. L., Batts, A. J., Kwon, N., Zacharoulis, S., Wu, C.-C., Menon, V., Kernie, S. G., & Konofagou, E. E. (2023). Characterization of the responses of brain macrophages to focused ultrasound-mediated blood–brain barrier opening. Nature Biomedical Engineering, 8(5), 650–663. https://doi.org/10.1038/s41551-023-01107-0
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Rosito, M., Sanchini, C., Gosti, G., Moreno, M., De Panfilis, S., Giubettini, M., Debellis, D., Catalano, F., Peruzzi, G., Marotta, R., Indrieri, A., De Leonibus, E., De Stefano, M. E., Ragozzino, D., Ruocco, G., Di Angelantonio, S., & Bartolini, F. (2023). Microglia reactivity entails microtubule remodeling from acentrosomal to centrosomal arrays. Cell Reports, 42(2), 112104. https://doi.org/10.1016/j.celrep.2023.112104
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Xiang, X., Tang, X., Yu, Y., Xie, S., Liu, L., Chen, M., Zhang, R., Kang, X., Zheng, Y., Yang, G., Gan, S., & Zhu, S. (2022). Role of lipocalin-2 in surgery-induced cognitive decline in mice: a signal from neuron to microglia. Journal of Neuroinflammation, 19(1). https://doi.org/10.1186/s12974-022-02455-5
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Paolicelli, R. C., Sierra, A., Stevens, B., Tremblay, M.-E., Aguzzi, A., Ajami, B., Amit, I., Audinat, E., Bechmann, I., Bennett, M., Bennett, F., Bessis, A., Biber, K., Bilbo, S., Blurton-Jones, M., Boddeke, E., Brites, D., Brône, B., Brown, G. C., … Wyss-Coray, T. (2022). Microglia states and nomenclature: A field at its crossroads. Neuron, 110(21), 3458–3483. https://doi.org/10.1016/j.neuron.2022.10.020
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Beebe-Wang, N., Celik, S., Weinberger, E., Sturmfels, P., De Jager, P. L., Mostafavi, S., & Lee, S.-I. (2021). Unified AI framework to uncover deep interrelationships between gene expression and Alzheimer’s disease neuropathologies. Nature Communications, 12(1). https://doi.org/10.1038/s41467-021-25680-7
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Ma, Y., Yu, L., Olah, M., Smith, R. G., Pishva, E., Menon, V., Lunnon, K., Bennett, D. A., Klein, H., & De Jager, P. L. (2020). Epigenomic features related to microglia are associated with attenuated effect of APOE ε4 on Alzheimer’s disease risk in humans. Alzheimer’s & Dementia, 16(S2). Portico. https://doi.org/10.1002/alz.043533
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