The New Biology of Gastrointestinal Hormones
- 1 October 1998
- journal article
- research article
- Published by American Physiological Society in Physiological Reviews
- Vol. 78 (4) , 1087-1108
- https://doi.org/10.1152/physrev.1998.78.4.1087
Abstract
Rehfeld, Jens F. The New Biology of Gastrointestinal Hormones. Physiol. Rev. 78: 1087–1108, 1998. — The classic concept of gastrointestinal endocrinology is that of a few peptides released to the circulation from endocrine cells, which are interspersed among other mucosal cells in the upper gastrointestinal tract. Today more than 30 peptide hormone genes are known to be expressed throughout the digestive tract, which makes the gut the largest endocrine organ in the body. Moreover, development in cell and molecular biology now makes it feasible to describe a new biology for gastrointestinal hormones based on five characteristics. 1) The structural homology groups the hormones into families, each of which is assumed to originate from a common ancestral gene. 2) The individual hormone gene is often expressed in multiple bioactive peptides due to tandem genes encoding different hormonal peptides, alternative splicing of the primary transcript, or differentiated processing of the primary translation product. By these mechanisms, more than 100 different hormonally active peptides are produced in the gastrointestinal tract. 3) In addition, gut hormone genes are widely expressed, also outside the gut. Some are expressed only in neuroendocrine cells, whereas others are expressed in a multitude of different cells, including cancer cells. 4) The different cell types often express different products of the same gene, “cell-specific expression.” 5) Finally, gastrointestinal hormone-producing cells release the peptides in different ways, so the same peptide may act as an acute blood-borne hormone, as a local growth factor, as a neurotransmitter, and as a fertility factor. The new biology suggests that gastrointestinal hormones should be conceived as intercellular messengers of general physiological impact rather than as local regulators of the upper digestive tract.Keywords
This publication has 230 references indexed in Scilit:
- Molecular structure and genetic mapping of the mouse gastrin geneFEBS Letters, 1996
- A distal Sp 1-element is necessary for maximal activity of the human gastrin gene promoterFEBS Letters, 1995
- Ileal expression of gastrin and cholecystokininFEBS Letters, 1994
- Inhibition of gastrin-stimulated growth of gastrointestinal tumour cells by octreotide and the gastrin/cholecystokinin receptor antagonists, proglumide and lorglumideEuropean Journal Of Cancer, 1992
- The 108-kDa peptidylglycine α-amidating monooxygenase precursor contains two separable enzymatic activities involved in peptide amidationBiochemical and Biophysical Research Communications, 1990
- Posttranslational attenuation of peptide gene expressionFEBS Letters, 1990
- Isolation of a novel 38 residue-hypothalamic polypeptide which stimulates adenylate cyclase in pituitary cellsBiochemical and Biophysical Research Communications, 1989
- Truncated glucagon‐like peptide I, an insulin‐releasing hormone from the distal gutFEBS Letters, 1987
- Autocrine Secretion and Malignant Transformation of CellsNew England Journal of Medicine, 1980
- Characterization of a gastrin releasing peptide from porcine non-antral gastric tissueBiochemical and Biophysical Research Communications, 1979