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Citations to this article

Goblet cells need some stress
Malin E.V. Johansson, Gunnar C. Hansson
Malin E.V. Johansson, Gunnar C. Hansson
Published September 1, 2022
Citation Information: J Clin Invest. 2022;132(17):e162030. https://doi.org/10.1172/JCI162030.
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Commentary Article has an altmetric score of 1

Goblet cells need some stress

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Abstract

The intestinal tract is protected by epithelium-covering mucus, which is constantly renewed by goblet cells, a specialized type of epithelial cell. Mucus is largely composed of MUC2 mucin, an enormous molecule that poses a high demand on the endoplasmic reticulum (ER) for proper folding and protein assembly, creating a challenge for the secretory machinery in goblet cells. In this issue of the JCI, Grey et al. reveal that the ER resident protein and folding sensor ERN2 (also known as IRE1β) was instrumental for goblet cells to produce sufficient amounts of mucus to form a protective mucus layer. In the absence of ERN2, mucus production was reduced, impairing the mucus barrier, which allowed bacteria to penetrate and cause an epithelial cell stress response. This study emphasizes the importance of a controlled unfolded protein response (UPR) for goblet cell secretion.

Authors

Malin E.V. Johansson, Gunnar C. Hansson

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Total citations by year

Year: 2024 2023 2022 Total
Citations: 5 1 1 7
Citation information
This citation data is accumulated from CrossRef, which receives citation information from participating publishers, including this journal. Not all publishers participate in CrossRef, so this information is not comprehensive. Additionally, data may not reflect the most current citations to this article, and the data may differ from citation information available from other sources (for example, Google Scholar, Web of Science, and Scopus).

Citations to this article (7)

Title and authors Publication Year
Effects of Antibiotic Residues on Fish Gut Microbiome Dysbiosis and Mucosal Barrier-Related Pathogen Susceptibility in Zebrafish Experimental Model
Yang JH, Park JW, Kim HS, Lee S, Yerke AM, Jaiswal YS, Williams LL, Hwang S, Moon KH
Antibiotics 2024
Intestinal Mucosal Immune Barrier: A Powerful Firewall Against Severe Acute Pancreatitis-Associated Acute Lung Injury via the Gut-Lung Axis
Li F, Wang Z, Cao Y, Pei B, Luo X, Liu J, Ge P, Luo Y, Ma S, Chen H
Journal of inflammation research 2024
PIM1–HDAC2 axis modulates intestinal homeostasis through epigenetic modification
Yang J, Xiao Y, Zhao N, Pei G, Sun Y, Sun X, Yu K, Miao C, Liu R, Lv J, Chu H, Zhou L, Wang B, Yao Z, Wang Q
Acta pharmaceutica Sinica. B 2024
Astragalus polysaccharides-induced gut microbiota play a predominant role in enhancing of intestinal barrier function of broiler chickens
Yang J, Sun Y, Wang Q, Yu S, Li Y, Yao B, Yang X
Journal of Animal Science and Biotechnology 2024
IRE1β evolves to be a guardian of respiratory and gastrointestinal mucosa.
Luo H, Gong WY, Zhang YY, Liu YY, Chen Z, Feng XL, Jiao QB, Zhang XW
Heliyon 2024
New insights into the unfolded protein response (UPR)-anterior gradient 2 (AGR2) pathway in the regulation of intestinal barrier function in weaned piglets
Zhang F, Chen M, Liu X, Ji X, Li S, Jin E
Animal Nutrition 2023
Intestinal Stem Cells Damaged by Deoxycholic Acid via AHR Pathway Contributes to Mucosal Barrier Dysfunction in High-Fat Feeding Mice
Liu L, Xu J, Xu X, Mao T, Niu W, Wu X, Lu L, Zhou H
International journal of molecular sciences 2022

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