Intestinal Mucosa

Displaying 1 - 11 of 11CSV
Prochera, A., Muppirala, A. N., Kuziel, G. A., Soualhi, S., Shepherd, A., Sun, L., Issac, B., Rosenberg, H. J., Karim, F., Perez, K., Smith, K. H., Archibald, T. H., Rakoff-Nahoum, S., Hagen, S. J., & Rao, M. (2025). Enteric glia regulate Paneth cell secretion and intestinal microbial ecology. ELife, 13. CLOCKSS. https://doi.org/10.7554/elife.97144
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Columbia Affiliation
Kato, R., Yamamoto, T., Ogata, H., Miyata, K., Hayashi, S., Gershon, M. D., & Kadowaki, M. (2024). Indigenous gut microbiota constitutively drive release of ciliary neurotrophic factor from mucosal enteric glia to maintain the homeostasis of enteric neural circuits. Frontiers in Immunology, 15. https://doi.org/10.3389/fimmu.2024.1372670
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Araujo, L. P., Edwards, M., Irie, K., Huang, Y., Kawano, Y., Tran, A., De Michele, S., Bhagat, G., Wang, H. H., & Ivanov, I. I. (2024). Context-dependent role of group 3 innate lymphoid cells in mucosal protection. Science Immunology, 9(98). https://doi.org/10.1126/sciimmunol.ade7530
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Fu, J., Hsiao, T., Waffarn, E., Meng, W., Long, K. D., Frangaj, K., Jones, R., Gorur, A., Shtewe, A., Li, M., Muntnich, C. B., Rogers, K., Jiao, W., Velasco, M., Matsumoto, R., Kubota, M., Wells, S., Danzl, N., Ravella, S., … Sykes, M. (2024). Dynamic establishment and maintenance of the human intestinal B cell population and repertoire following transplantation in a pediatric-dominated cohort. Frontiers in Immunology, 15. https://doi.org/10.3389/fimmu.2024.1375486
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Malagola, E., Vasciaveo, A., Ochiai, Y., Kim, W., Zheng, B., Zanella, L., Wang, A. L. E., Middelhoff, M., Nienhüser, H., Deng, L., Wu, F., Waterbury, Q. T., Belin, B., LaBella, J., Zamechek, L. B., Wong, M. H., Li, L., Guha, C., Cheng, C.-W., … Wang, T. C. (2024). Isthmus progenitor cells contribute to homeostatic cellular turnover and support regeneration following intestinal injury. Cell, 187(12), 3056-3071.e17. https://doi.org/10.1016/j.cell.2024.05.004
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Kraiczy, J., McCarthy, N., Malagola, E., Tie, G., Madha, S., Boffelli, D., Wagner, D. E., Wang, T. C., & Shivdasani, R. A. (2023). Graded BMP signaling within intestinal crypt architecture directs self-organization of the Wnt-secreting stem cell niche. Cell Stem Cell, 30(4), 433-449.e8. https://doi.org/10.1016/j.stem.2023.03.004
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Lemmetyinen, T. T., Viitala, E. W., Wartiovaara, L., Kaprio, T., Hagström, J., Haglund, C., Katajisto, P., Wang, T. C., Domènech-Moreno, E., & Ollila, S. (2023). Fibroblast-derived EGF ligand neuregulin 1 induces fetal-like reprogramming of the intestinal epithelium without supporting tumorigenic growth. Disease Models & Mechanisms, 16(4). https://doi.org/10.1242/dmm.049692
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Das, S., Feng, Q., Balasubramanian, I., Lin, X., Liu, H., Pellón-Cardenas, O., Yu, S., Zhang, X., Liu, Y., Wei, Z., Bonder, E. M., Verzi, M. P., Hsu, W., Zhang, L., Wang, T. C., & Gao, N. (2022). Colonic healing requires Wnt produced by epithelium as well as Tagln+ and Acta2+ stromal cells. Development, 149(1). https://doi.org/10.1242/dev.199587
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Capdevila, C., Trifas, M., Miller, J., Anderson, T., Sims, P. A., & Yan, K. S. (2021). Cellular origins and lineage relationships of the intestinal epithelium. American Journal of Physiology-Gastrointestinal and Liver Physiology, 321(4), G413–G425. https://doi.org/10.1152/ajpgi.00188.2021
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