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An intestinal zinc sensor regulates food intake and developmental growth

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Title: An intestinal zinc sensor regulates food intake and developmental growth
Authors: Redhai, S
Pilgrim, C
Gaspar, P
Van Giesen, L
Lopes, T
Riabinina, O
Grenier, T
Milona, A
Chanana, B
Swadling, J
Wang, Y-F
Dahalan, F
Yuan, M
Wilsch-Brauninger, M
Lin, W-H
Dennison, N
Capriotti, P
Lawniczak, M
Baines, R
Warnecke, T
Windbichler, N
Leulier, F
Bellono, N
Miguel-Aliaga, I
Item Type: Journal Article
Abstract: In cells, organs and whole organisms, nutrient sensing is key to maintaining homeostasis and adapting to a fluctuating environment1. In many animals, nutrient sensors are found within the enteroendocrine cells of the digestive system; however, less is known about nutrient sensing in their cellular siblings, the absorptive enterocytes1. Here we use a genetic screen in Drosophila melanogaster to identify Hodor, an ionotropic receptor in enterocytes that sustains larval development, particularly in nutrient-scarce conditions. Experiments in Xenopus oocytes and flies indicate that Hodor is a pH-sensitive, zinc-gated chloride channel that mediates a previously unrecognized dietary preference for zinc. Hodor controls systemic growth from a subset of enterocytes—interstitial cells—by promoting food intake and insulin/IGF signalling. Although Hodor sustains gut luminal acidity and restrains microbial loads, its effect on systemic growth results from the modulation of Tor signalling and lysosomal homeostasis within interstitial cells. Hodor-like genes are insect-specific, and may represent targets for the control of disease vectors. Indeed, CRISPR–Cas9 genome editing revealed that the single hodor orthologue in Anopheles gambiae is an essential gene. Our findings highlight the need to consider the instructive contributions of metals—and, more generally, micronutrients—to energy homeostasis.
Issue Date: 9-Apr-2020
Date of Acceptance: 18-Feb-2020
URI: http://hdl.handle.net/10044/1/77971
DOI: 10.1038/s41586-020-2111-5
ISSN: 0028-0836
Publisher: Nature Research
Start Page: 263
End Page: 268
Journal / Book Title: Nature
Volume: 580
Issue: 7802
Copyright Statement: © 2020 Springer Nature. The final publication is available at Springer via https://doi.org/10.1038/s41586-020-2111-5.
Sponsor/Funder: Biotechnology and Biological Sciences Research Council (BBSRC)
Genome Research Limited
Commission of the European Communities
Funder's Grant Number: BB/N000528/1
T222/S4061
787470
Keywords: Science & Technology
Multidisciplinary Sciences
Science & Technology - Other Topics
LYSOSOME-RELATED ORGANELLES
COUPLES NUTRITION
AMINO-ACIDS
DROSOPHILA
SECRETION
MTORC1
HOMEOSTASIS
METABOLISM
MECHANISM
SPECTRIN
Animals
Chloride Channels
Drosophila Proteins
Drosophila melanogaster
Eating
Enterocytes
Female
Food Preferences
Homeostasis
Insect Vectors
Insulin
Intestines
Ion Channel Gating
Larva
Lysosomes
Male
Oocytes
Receptor Protein-Tyrosine Kinases
Signal Transduction
Xenopus
Zinc
Intestines
Enterocytes
Oocytes
Lysosomes
Animals
Xenopus
Drosophila melanogaster
Zinc
Insulin
Receptor Protein-Tyrosine Kinases
Chloride Channels
Drosophila Proteins
Food Preferences
Insect Vectors
Signal Transduction
Ion Channel Gating
Larva
Homeostasis
Eating
Female
Male
General Science & Technology
Publication Status: Published
Online Publication Date: 2020-03-18
Appears in Collections:Institute of Clinical Sciences
Faculty of Medicine
Faculty of Natural Sciences