Nature Metabolism

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Zuhra, K., Petrosino, M., Janickova, L., Petric, J., Ascenção, K., Vignane, T., Khalaf, M., Philipp, T. M., Ravani, S., Anand, A., Martins, V., Santos, S., Erdemir, S., Malkondu, S., Sitek, B., Kelestemur, T., Kieronska-Rudek, A., Majtan, T., Filgueira, L., … Szabo, C. (2025). Regulation of mammalian cellular metabolism by endogenous cyanide production. Nature Metabolism, 7(3), 531–555. https://doi.org/10.1038/s42255-025-01225-w
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Brestoff, J. R., Singh, K. K., Aquilano, K., Becker, L. B., Berridge, M. V., Boilard, E., Caicedo, A., Crewe, C., Enríquez, J. A., Gao, J., Gustafsson, Å. B., Hayakawa, K., Khoury, M., Lee, Y.-S., Lettieri-Barbato, D., Luz-Crawford, P., McBride, H. M., McCully, J. D., Nakai, R., … Zheng, M. (2025). Recommendations for mitochondria transfer and transplantation nomenclature and characterization. Nature Metabolism, 7(1), 53–67. https://doi.org/10.1038/s42255-024-01200-x
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Gurtan, A. M., Khalid, S., Koch, C., Khan, M. Z., Lamarche, L. B., Splawski, I., Dolan, E., Carrion, A. M., Zessis, R., Clement, M. E., Chen, Z., Lindsley, L. D., Chiu, Y.-H., Streeper, R. S., Denning, D. P., Goldfine, A. B., Doyon, B., Abbasi, A., Harrow, J. L., … Saleheen, D. (2024). Identification and characterization of human GDF15 knockouts. Nature Metabolism, 6(10), 1913–1921. https://doi.org/10.1038/s42255-024-01135-3
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Sukka, S. R., Ampomah, P. B., Darville, L. N. F., Ngai, D., Wang, X., Kuriakose, G., Xiao, Y., Shi, J., Koomen, J. M., McCusker, R. H., & Tabas, I. (2024). Efferocytosis drives a tryptophan metabolism pathway in macrophages to promote tissue resolution. Nature Metabolism, 6(9), 1736–1755. https://doi.org/10.1038/s42255-024-01115-7
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Sivanand, S., Gultekin, Y., Winter, P. S., Vermeulen, S. Y., Tchourine, K. M., Abbott, K. L., Danai, L. V., Gourgue, F., Do, B. T., Crowder, K., Kunchok, T., Lau, A. N., Darnell, A. M., Jefferson, A., Morita, S., Duda, D. G., Aguirre, A. J., Wolpin, B. M., Henning, N., … Vander Heiden, M. G. (2024). Cancer tissue of origin constrains the growth and metabolism of metastases. Nature Metabolism, 6(9), 1668–1681. https://doi.org/10.1038/s42255-024-01105-9
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Kwak, S. H., Srinivasan, S., Chen, L., Todd, J., Mercader, J. M., Jensen, E. T., Divers, J., Mottl, A. K., Pihoker, C., Gandica, R. G., Laffel, L. M., Isganaitis, E., Haymond, M. W., Levitsky, L. L., Pollin, T. I., Florez, J. C., & Flannick, J. (2024). Genetic architecture and biology of youth-onset type 2 diabetes. Nature Metabolism, 6(2), 226–237. https://doi.org/10.1038/s42255-023-00970-0
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Columbia Affiliation
Ngai, D., Schilperoort, M., & Tabas, I. (2023). Efferocytosis-induced lactate enables the proliferation of pro-resolving macrophages to mediate tissue repair. Nature Metabolism, 5(12), 2206–2219. https://doi.org/10.1038/s42255-023-00921-9
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Kagan, V. E., Tyurina, Y. Y., Mikulska-Ruminska, K., Damschroder, D., Vieira Neto, E., Lasorsa, A., Kapralov, A. A., Tyurin, V. A., Amoscato, A. A., Samovich, S. N., Souryavong, A. B., Dar, H. H., Ramim, A., Liang, Z., Lazcano, P., Ji, J., Schmidtke, M. W., Kiselyov, K., Korkmaz, A., … Greenberg, M. L. (2023). Anomalous peroxidase activity of cytochrome c is the primary pathogenic target in Barth syndrome. Nature Metabolism, 5(12), 2184–2205. https://doi.org/10.1038/s42255-023-00926-4
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Monzel, A. S., Enríquez, J. A., & Picard, M. (2023). Multifaceted mitochondria: moving mitochondrial science beyond function and dysfunction. Nature Metabolism, 5(4), 546–562. https://doi.org/10.1038/s42255-023-00783-1
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Schilperoort, M., Ngai, D., Katerelos, M., Power, D. A., & Tabas, I. (2023). PFKFB2-mediated glycolysis promotes lactate-driven continual efferocytosis by macrophages. Nature Metabolism, 5(3), 431–444. https://doi.org/10.1038/s42255-023-00736-8
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Schneeberger, M., Brice, N. L., Pellegrino, K., Parolari, L., Shaked, J. T., Page, K. J., Marchildon, F., Barrows, D. W., Carroll, T. S., Topilko, T., Mulligan, V. M., Newman, R., Doyle, K., Bürli, R., Barker, D. F., Glen, A., Ortuño, M. J., Nectow, A. R., Renier, N., … Friedman, J. M. (2022). Pharmacological targeting of glutamatergic neurons within the brainstem for weight reduction. Nature Metabolism, 4(11), 1495–1513. https://doi.org/10.1038/s42255-022-00677-8
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Li, Z., Ji, B. W., Dixit, P. D., Tchourine, K., Lien, E. C., Hosios, A. M., Abbott, K. L., Rutter, J. C., Westermark, A. M., Gorodetsky, E. F., Sullivan, L. B., Vander Heiden, M. G., & Vitkup, D. (2022). Cancer cells depend on environmental lipids for proliferation when electron acceptors are limited. Nature Metabolism, 4(6), 711–723. https://doi.org/10.1038/s42255-022-00588-8
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Ampomah, P. B., Cai, B., Sukka, S. R., Gerlach, B. D., Yurdagul, A., Wang, X., Kuriakose, G., Darville, L. N. F., Sun, Y., Sidoli, S., Koomen, J. M., Tall, A. R., & Tabas, I. (2022). Macrophages use apoptotic cell-derived methionine and DNMT3A during efferocytosis to promote tissue resolution. Nature Metabolism, 4(4), 444–457. https://doi.org/10.1038/s42255-022-00551-7
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