Extracellular Vesicles

Displaying 1 - 21 of 21CSV
Reho, P., Kalia, V., Jackson, G. L., Wang, F., Eiten, E., Brennan, K., Brickman, A. M., Mayeux, R., Miller, G. W., Vardarajan, B. N., Baccarelli, A., & Wu, H. (2025). Preclinical Alzheimer’s disease shows alterations in circulating neuronal‐derived extracellular vesicle microRNAs in a multiethnic cohort. Alzheimer’s & Dementia, 21(3). Portico. https://doi.org/10.1002/alz.70050
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Holzhausen, E. A., Patterson, W. B., Wong, B. H., Kim, S., Kupsco, A., Howe, C. G., Bode, L., Goran, M. I., & Alderete, T. L. (2024). Associations between human milk EV-miRNAs and oligosaccharide concentrations in human milk. Frontiers in Immunology, 15. https://doi.org/10.3389/fimmu.2024.1463463
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Gaylord, A., Holzhausen, E. A., Chalifour, B., Patterson, W. B., Tung, P. W., Baccarelli, A. A., Goran, M. I., Alderete, T. L., & Kupsco, A. (2024). tRNA-derived RNAs in human milk extracellular vesicles and associations with breastfeeding variables and maternal diet. Epigenomics, 16(23–24), 1429–1441. https://doi.org/10.1080/17501911.2024.2430943
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Fowler, S. L., Behr, T. S., Turkes, E., O’Brien, D. P., Cauhy, P. M., Rawlinson, I., Edmonds, M., Foiani, M. S., Schaler, A., Crowley, G., Bez, S., Ficulle, E., Tsefou, E., Fischer, R., Geary, B., Gaur, P., Miller, C., D’Acunzo, P., Levy, E., … Ryskeldi-Falcon, B. (2024). Tau filaments are tethered within brain extracellular vesicles in Alzheimer’s disease. Nature Neuroscience. https://doi.org/10.1038/s41593-024-01801-5
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Tordoff, E., Allen, J., Elgart, K., Elsherbini, A., Kalia, V., Wu, H., Eren, E., Kapogiannis, D., Gololobova, O., Witwer, K., Volpert, O., & Eitan, E. (2024). A novel multiplexed immunoassay for surface‐exposed proteins in plasma extracellular vesicles. Journal of Extracellular Vesicles, 13(11). Portico. https://doi.org/10.1002/jev2.70007
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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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Dubey, S., Chen, Z., Jiang, Y. J., Talis, A., Molotkov, A., Ali, A., Mintz, A., & Momen-Heravi, F. (2024). Small extracellular vesicles (sEVs)-based gene delivery platform for cell-specific CRISPR/Cas9 genome editing. Theranostics, 14(7), 2777–2793. https://doi.org/10.7150/thno.92133
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González-Ruíz, J., A.Baccarelli, A., Cantu-de-Leon, D., & Prada, D. (2023). Air Pollution and Lung Cancer: Contributions of Extracellular Vesicles as Pathogenic Mechanisms and Clinical Utility. Current Environmental Health Reports, 10(4), 478–489. https://doi.org/10.1007/s40572-023-00421-8
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Gomes, P. A., Bodo, C., Nogueras-Ortiz, C., Samiotaki, M., Chen, M., Soares-Cunha, C., Silva, J. M., Coimbra, B., Stamatakis, G., Santos, L., Panayotou, G., Tzouanou, F., Waites, C. L., Gatsogiannis, C., Sousa, N., Kapogiannis, D., Costa-Silva, B., & Sotiropoulos, I. (2023). A novel isolation method for spontaneously released extracellular vesicles from brain tissue and its implications for stress-driven brain pathology. Cell Communication and Signaling, 21(1). https://doi.org/10.1186/s12964-023-01045-z
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Abinti, M., Favi, E., Alfieri, C. M., Zanoni, F., Armelloni, S., Ferraresso, M., Cantaluppi, V., & Castellano, G. (2023). Update on current and potential application of extracellular vesicles in kidney transplantation. American Journal of Transplantation, 23(11), 1673–1693. https://doi.org/10.1016/j.ajt.2023.07.010
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Kalia, V., Baccarelli, A. A., Happel, C., Hollander, J. A., Jukic, A. M., McAllister, K. A., Menon, R., Merrick, B. A., Milosavljevic, A., Ravichandran, L. V., Roth, M. E., Subramanian, A., Tyson, F. L., Worth, L., & Shaughnessy, D. T. (2023). Seminar: Extracellular Vesicles as Mediators of Environmental Stress in Human Disease. Environmental Health Perspectives, 131(10). https://doi.org/10.1289/ehp12980
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Li, G., Chen, T., Dahlman, J., Eniola‐Adefeso, L., Ghiran, I. C., Kurre, P., Lam, W. A., Lang, J. K., Marbán, E., Martín, P., Momma, S., Moos, M., Nelson, D. J., Raffai, R. L., Ren, X., Sluijter, J. P. G., Stott, S. L., Vunjak‐Novakovic, G., Walker, N. D., … Sundd, P. (2023). Current challenges and future directions for engineering extracellular vesicles for heart, lung, blood and sleep diseases. Journal of Extracellular Vesicles, 12(2). Portico. https://doi.org/10.1002/jev2.12305
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Mighty, J., Rubio-Navarro, A., Shi, C., Zhou, J., Flores-Bellver, M., Heissel, S., Onwumere, O., Einbond, L., Gharbaran, R., Casper, D. S., Benito-Martin, A., & Redenti, S. (2023). Extracellular vesicles of human diabetic retinopathy retinal tissue and urine of diabetic retinopathy patients are enriched for the junction plakoglo bin protein. Frontiers in Endocrinology, 13. https://doi.org/10.3389/fendo.2022.1077644
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Eckhardt, C. M., Gambazza, S., Bloomquist, T. R., De Hoff, P., Vuppala, A., Vokonas, P. S., Litonjua, A. A., Sparrow, D., Parvez, F., Laurent, L. C., Schwartz, J., Baccarelli, A. A., & Wu, H. (2023). Extracellular Vesicle-Encapsulated microRNAs as Novel Biomarkers of Lung Health. American Journal of Respiratory and Critical Care Medicine, 207(1), 50–59. https://doi.org/10.1164/rccm.202109-2208oc
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Li, Y., Wu, Y., Federzoni, E. A., Wang, X., Dharmawan, A., Hu, X., Wang, H., Hawley, R. J., Stevens, S., Sykes, M., & Yang, Y.-G. (2022). CD47 cross-dressing by extracellular vesicles expressing CD47 inhibits phagocytosis without transmitting cell death signals. ELife, 11. CLOCKSS. https://doi.org/10.7554/elife.73677
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Gomes, P., Tzouanou, F., Skolariki, K., Vamvaka-Iakovou, A., Noguera-Ortiz, C., Tsirtsaki, K., Waites, C. L., Vlamos, P., Sousa, N., Costa-Silva, B., Kapogiannis, D., & Sotiropoulos, I. (2022). Extracellular vesicles and Alzheimer’s disease in the novel era of Precision Medicine: implications for disease progression, diagnosis and treatment. Experimental Neurology, 358, 114183. https://doi.org/10.1016/j.expneurol.2022.114183
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Eckhardt, C. M., Baccarelli, A. A., & Wu, H. (2022). Environmental Exposures and Extracellular Vesicles: Indicators of Systemic Effects and Human Disease. Current Environmental Health Reports, 9(3), 465–476. https://doi.org/10.1007/s40572-022-00357-5
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Bozack, A. K., Colicino, E., Rodosthenous, R. S., Bloomquist, T. R., Baccarelli, A. A., Wright, R. O., Wright, R. J., & Lee, A. G. (2022). Breast Milk-Derived Extracellular Vesicle Mirnas are Associated with Maternal Asthma and Atopy. Epigenomics, 14(12), 727–739. https://doi.org/10.2217/epi-2022-0090
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Gabrielli, M., Prada, I., Joshi, P., Falcicchia, C., D’Arrigo, G., Rutigliano, G., Battocchio, E., Zenatelli, R., Tozzi, F., Radeghieri, A., Arancio, O., Origlia, N., & Verderio, C. (2022). Microglial large extracellular vesicles propagate early synaptic dysfunction in Alzheimer’s disease. Brain, 145(8), 2849–2868. https://doi.org/10.1093/brain/awac083
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Kupsco, A., Lee, J. J., Prada, D., Valvi, D., Hu, L., Petersen, M. S., Coull, B. A., Weihe, P., Grandjean, P., & Baccarelli, A. A. (2022). Marine pollutant exposures and human milk extracellular vesicle-microRNAs in a mother-infant cohort from the Faroe Islands. Environment International, 158, 106986. https://doi.org/10.1016/j.envint.2021.106986
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