» Articles » PMID: 28421183

Organ-to-Organ Communication: A Gastrointestinal Tract Perspective

Overview
Specialty Cell Biology
Date 2017 Apr 20
PMID 28421183
Citations 17
Authors
Affiliations
Soon will be listed here.
Abstract

The long-term maintenance of an organism's homeostasis and health relies on the accurate regulation of organ-organ communication. Recently, there has been growing interest in using the gastrointestinal tract to elucidate the regulatory programs that underlie the complex interactions between organs. Data obtained in this field have dramatically improved our understanding of how organ-organ communication contributes to the regulation of various aspects of the intestine, including its metabolic and physiological status. However, although research uncovering regulatory programs associated with interorgan communication has provided key insights, the underlying mechanisms have not been extensively explored. In this review, we highlight recent findings describing gut-neighbor and neighbor-neighbor communication models in adults and larvae, respectively, with a special focus on how a range of critical strategies concerning continuous interorgan communication and adjustment can be used to manipulate different aspects of biological processes. Given the high degree of similarity between the and mammalian intestinal epithelia, it can be anticipated that further analyses of the gastrointestinal tract will facilitate the discovery of similar mechanisms underlying organ-organ communication in other mammalian organs, such as the human intestine.

Citing Articles

Pervasive tissue-, genetic background-, and allele-specific gene expression effects in Drosophila melanogaster.

Glaser-Schmitt A, Lemoine M, Kaltenpoth M, Parsch J PLoS Genet. 2024; 20(8):e1011257.

PMID: 39178312 PMC: 11376557. DOI: 10.1371/journal.pgen.1011257.


A nutrient responsive lipase mediates gut-brain communication to regulate insulin secretion in Drosophila.

Singh A, Abhilasha K, Acharya K, Liu H, Nirala N, Parthibane V Nat Commun. 2024; 15(1):4410.

PMID: 38782979 PMC: 11116528. DOI: 10.1038/s41467-024-48851-8.


Markers and mechanisms of death in .

Tower J Front Aging. 2023; 4:1292040.

PMID: 38149028 PMC: 10749947. DOI: 10.3389/fragi.2023.1292040.


as a model to study innate immune memory.

Arch M, Vidal M, Koiffman R, Melkie S, Cardona P Front Microbiol. 2022; 13:991678.

PMID: 36338030 PMC: 9630750. DOI: 10.3389/fmicb.2022.991678.


Endocrine cybernetics: neuropeptides as molecular switches in behavioural decisions.

Nassel D, Zandawala M Open Biol. 2022; 12(7):220174.

PMID: 35892199 PMC: 9326288. DOI: 10.1098/rsob.220174.


References
1.
Parisi F, Riccardo S, Zola S, Lora C, Grifoni D, Brown L . dMyc expression in the fat body affects DILP2 release and increases the expression of the fat desaturase Desat1 resulting in organismal growth. Dev Biol. 2013; 379(1):64-75. PMC: 3712331. DOI: 10.1016/j.ydbio.2013.04.008. View

2.
Olds W, Xu T . Regulation of food intake by mechanosensory ion channels in enteric neurons. Elife. 2014; 3. PMC: 4225495. DOI: 10.7554/eLife.04402. View

3.
Zeng X, Chauhan C, Hou S . Stem cells in the Drosophila digestive system. Adv Exp Med Biol. 2013; 786:63-78. PMC: 7571253. DOI: 10.1007/978-94-007-6621-1_5. View

4.
Schoofs A, Huckesfeld S, Surendran S, Pankratz M . Serotonergic pathways in the Drosophila larval enteric nervous system. J Insect Physiol. 2014; 69:118-25. DOI: 10.1016/j.jinsphys.2014.05.022. View

5.
Demontis F, Perrimon N . FOXO/4E-BP signaling in Drosophila muscles regulates organism-wide proteostasis during aging. Cell. 2010; 143(5):813-25. PMC: 3066043. DOI: 10.1016/j.cell.2010.10.007. View