DNA, Mitochondrial

Displaying 1 - 15 of 15CSV
Tung, P. W., Thaker, V. V., Gallagher, D., & Kupsco, A. (2024). Mitochondrial Health Markers and Obesity-Related Health in Human Population Studies: A Narrative Review of Recent Literature. Current Obesity Reports, 13(4), 724–738. https://doi.org/10.1007/s13679-024-00588-7
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Hidalgo‐Gutierrez, A., Shintaku, J., Ramon, J., Barriocanal‐Casado, E., Pesini, A., Saneto, R. P., Garrabou, G., Milisenda, J. C., Matas‐Garcia, A., Gort, L., Ugarteburu, O., Gu, Y., Koganti, L., Wang, T., Tadesse, S., Meneri, M., Sciacco, M., Wang, S., Tanji, K., … Hirano, M. (2024). Guanylate Kinase 1 Deficiency: A Novel and Potentially Treatable Mitochondrial DNA Depletion/Deletions Disease. Annals of Neurology, 96(6), 1209–1224. Portico. https://doi.org/10.1002/ana.27071
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Reddam, A., Bloomquist, T. R., Covell, L. T., Hu, H., Oberfield, S. E., Gallagher, D., Miller, R. L., Goldsmith, J., Rundle, A. G., Baccarelli, A. A., Herbstman, J. B., & Kupsco, A. (2024). Inverse associations of cord blood mitochondrial DNA copy number with childhood adiposity. Obesity, 32(5), 989–998. Portico. https://doi.org/10.1002/oby.24005
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Caicedo, A., Benavides-Almeida, A., Haro-Vinueza, A., Peña-Cisneros, J., Pérez-Meza, Á. A., Michelson, J., Peñaherrera, S., & Picard, M. (2024). Decoding the nature and complexity of extracellular mtDNA: Types and implications for health and disease. Mitochondrion, 75, 101848. https://doi.org/10.1016/j.mito.2024.101848
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Qi, R., Sammler, E., Gonzalez-Hunt, C. P., Barraza, I., Pena, N., Rouanet, J. P., Naaldijk, Y., Goodson, S., Fuzzati, M., Blandini, F., Erickson, K. I., Weinstein, A. M., Lutz, M. W., Kwok, J. B., Halliday, G. M., Dzamko, N., Padmanabhan, S., Alcalay, R. N., Waters, C., … Sanders, L. H. (2023). A blood-based marker of mitochondrial DNA damage in Parkinson’s disease. Science Translational Medicine, 15(711). https://doi.org/10.1126/scitranslmed.abo1557
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Smith, A. R., Hinojosa Briseño, A., Picard, M., & Cardenas, A. (2023). The prenatal environment and its influence on maternal and child mitochondrial DNA copy number and methylation: A review of the literature. Environmental Research, 227, 115798. https://doi.org/10.1016/j.envres.2023.115798
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Kupsco, A., Bloomquist, T. R., Hu, H., Reddam, A., Tang, D., Goldsmith, J., Rundle, A. G., Baccarelli, A. A., & Herbstman, J. B. (2023). Mitochondrial DNA copy number dynamics and associations with the prenatal environment from birth through adolescence in a population of Dominican and African American children. Mitochondrion, 69, 140–146. https://doi.org/10.1016/j.mito.2023.02.008
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Oppong, R. F., Terracciano, A., Picard, M., Qian, Y., Butler, T. J., Tanaka, T., Moore, A. Z., Simonsick, E. M., Opsahl-Ong, K., Coletta, C., Sutin, A. R., Gorospe, M., Resnick, S. M., Cucca, F., Scholz, S. W., Traynor, B. J., Schlessinger, D., Ferrucci, L., & Ding, J. (2022). Personality traits are consistently associated with blood mitochondrial DNA copy number estimated from genome sequences in two genetic cohort studies. ELife, 11. CLOCKSS. https://doi.org/10.7554/elife.77806
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Karan, K. R., Trumpff, C., Cross, M., Engelstad, K. M., Marsland, A. L., McGuire, P. J., Hirano, M., & Picard, M. (2022). Leukocyte cytokine responses in adult patients with mitochondrial DNA defects. Journal of Molecular Medicine, 100(6), 963–971. https://doi.org/10.1007/s00109-022-02206-2
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Willcox, J. A. L., Geiger, J. T., Morton, S. U., McKean, D., Quiat, D., Gorham, J. M., Tai, A. C., DePalma, S., Bernstein, D., Brueckner, M., Chung, W. K., Giardini, A., Goldmuntz, E., Kaltman, J. R., Kim, R., Newburger, J. W., Shen, Y., Srivastava, D., Tristani-Firouzi, M., … Seidman, C. E. (2022). Neither cardiac mitochondrial DNA variation nor copy number contribute to congenital heart disease risk. The American Journal of Human Genetics, 109(5), 961–966. https://doi.org/10.1016/j.ajhg.2022.03.011
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Brunst, K. J., Hsu, H.-H. L., Zhang, L., Zhang, X., Carroll, K. N., Just, A., Coull, B. A., Kloog, I., Wright, R. O., Baccarelli, A. A., & Wright, R. J. (2022). Prenatal particulate matter exposure and mitochondrial mutational load at the maternal-fetal interface: Effect modification by genetic ancestry. Mitochondrion, 62, 102–110. https://doi.org/10.1016/j.mito.2021.11.003
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Longchamps, R. J., Yang, S. Y., Castellani, C. A., Shi, W., Lane, J., Grove, M. L., Bartz, T. M., Sarnowski, C., Liu, C., Burrows, K., Guyatt, A. L., Gaunt, T. R., Kacprowski, T., Yang, J., De Jager, P. L., Yu, L., Bergman, A., Xia, R., Fornage, M., … Arking, D. E. (2021). Genome-wide analysis of mitochondrial DNA copy number reveals loci implicated in nucleotide metabolism, platelet activation, and megakaryocyte proliferation. Human Genetics, 141(1), 127–146. https://doi.org/10.1007/s00439-021-02394-w
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