Hostname: page-component-7bb8b95d7b-s9k8s Total loading time: 0 Render date: 2024-10-06T03:21:16.187Z Has data issue: false hasContentIssue false

Aspects of gut development

Published online by Cambridge University Press:  11 October 2007

Charles Shaw-Smith
Affiliation:
Department of Gastroenterology, Royal Postgraduate Medical School, Hammersmith Hospital, London, W12 ONN
Nicholas A. Wright
Affiliation:
Department of Histopathology, Royal Postgraduate Medical School, Hammersmith Hospital, London, W12 ONN
Rights & Permissions [Opens in a new window]

Abstract

Image of the first page of this content. For PDF version, please use the ‘Save PDF’ preceeding this image.'
Type
Regulatory Factors in the Control of Development and Maturation
Copyright
Copyright © The Nutrition Society 1996

References

Chen, W. S., Manova, K., Weinstein, D. C., Duncan, S. A., Plump, A. S., Prezioso, V. R., Bachvarova, R. F., Darnell, J. E. Jr (1994). Disruption of the HNF-4 gene, expressed in visceral endoderm leads to cell death in embryonic ectoderm and impaired gastrulation of mouse embyros. Genes and Development 8, 24662477.CrossRefGoogle Scholar
Crossman, M. W., Hauft, S. M. & Gordon, J. I. (1994). The mouse ileal lipid-binding protein gene: a model for studying axial patterning during gut morphogenesis. Journal of Cell Biology 126, 15471564.CrossRefGoogle ScholarPubMed
Duncan, S. A., Manova, K., Chen, W. S., Hoodless, P., Weinstein, D. C., Bachvarova, R. F., Darnell, J. E. Jr (1994). Expression of transcription factor HNF-4 in the extraembryonic endoderm, gut, and nephrogenic tissue of the developing mouse embryo: HNF-4 is a marker for primary endoderm in the implanting blastocyst. Proceedings of the National Academy of Sciences, USA 91, 75987602.CrossRefGoogle ScholarPubMed
Duprey, P., Chowdhury, K., Dressler, G. R., Balling, R., Simon, D., Guenet, J. L. & Gruss, P. (1988). A mouse gene homologous to the Drosophila gene caudal is expressed in epithelial cells from the embryonic intestine. Genes and Development 2, 16471654.CrossRefGoogle Scholar
Flatz, G. (1992). Lactase deficiency: biologic and medical aspects of the polymorphism. In The Genetic Basis of Common Disease, chapt. 15 King, R. A., Rotter, J. I. & Motulsky, A. G., editors] London: Oxford University Press.Google Scholar
Gehring, W. J., Affolter, M. & Burglin, T. (1994). Homeodomain proteins. Annual Review of Biochemistry 63, 487526.CrossRefGoogle ScholarPubMed
Henning, S. J. (1981). Postnatal development: coordination of feeding, digestion, and metabolism. American Journal of Physiology 241, G199G214.Google ScholarPubMed
Hermiston, M. L., Simon, T. C., Crossman, M. W. & Gordon, J. I. (1994). Model systems for studying cell fate specification and differentiation in the gut epithelium. In Physiology of the Gastrointestinal Tract, chapt. 12 3rd ed.Johnson, L. R., editors] New York: Raven Press.Google Scholar
Hoppler, S. & Bienz, M. (1994). Specification of a single cell type by a Drosophila homeotic gene. Cell 76, 689702.CrossRefGoogle ScholarPubMed
Hu, Y., Kazenwadel, J. & James, R. (1993). Isolation and characterization of the murine homeobox gene Cdx-1. Regulation of expression in intestinal epithelial cells. Journal of Biological Chemistry 268, 2721427225.CrossRefGoogle ScholarPubMed
Immergluck, K., Lawrence, P. A. & Bienz, M. (1990). Induction across germ layers in Drosophila mediated by a genetic cascade. Cell 62, 261268.CrossRefGoogle ScholarPubMed
James, R., Erber, T. & Kazenwadel, J. (1994). The structure of the murine homeobox gene cdx-2. Expression in embryonic and adult intestinal epithelium. Journal of Biological Chemistry 269, 1522915237.CrossRefGoogle ScholarPubMed
James, R. & Kazenwadel, J. (1991). Homeobox gene expression in the intestinal epithelium of adult mice. Journal of Biological Chemistry 266, 32463251.CrossRefGoogle ScholarPubMed
Kuo, C. J., Conley, P. B., Chen, L., Sladek, F. M., Darnell, J. E. Jr & Crabtree, G. R. (1992). A transcriptional hierarchy involved in mammalian cell-type specification. Nature 355, 457461.CrossRefGoogle ScholarPubMed
Leeper, L. L. & Henning, S. J. (1990). Development and tissue distribution of sucrase–isomaltase mRNA in rats. American Journal of Physiology 258, G52G58.Google ScholarPubMed
Lloyd, M., Mevissen, G., Fischer, M., Olsen, W., Goodspeed, D., Genini, M., Boll, W., Semenza, G. & Mantei, N. (1992). Regulation of intestinal lactase in adult hypolactasia. Journal of Clinical hnestigaiion 89, 524529.Google ScholarPubMed
McGinnis, W. & Krumlauf, R. (1992). Homeobox genes and axial patterning. Cell 68, 283302.CrossRefGoogle ScholarPubMed
Maiuri, L., Rossi, M., Raia, V., Garipoli, V., Hughes, L. A., Swallow, D., Noren, O., Sjostrom, H. & Auricchio, S. (1994). Mosaic regulation of lactase in human adult-type hypolactasia. Gastroenterology 107, 5460.CrossRefGoogle ScholarPubMed
Reuter, R., Panganiban, G. E., Hoffmann, F. M. & Scott, M. P. (1990). Homeotic genes regulate the spatial expression of putative growth factors in the visceral mesoderm of Drosophila embryos. Development 110, 10311040.CrossRefGoogle ScholarPubMed
Roth, K. A., Cohn, S. M., Rubin, D. C., Trahair, J. F., Neutra, M. R. & Gordon, J. I. (1992). Regulation of gene expression in gastric epithelial cell populations of fetal, neonatal, and adult transgenic mice. American Journal of Physiology 263, G186G197.Google ScholarPubMed
Rubin, D. C. (1992). Spatial analysis of transcriptional activation in fetal rat jejunal and ileal gut epithelium. American Journal of Physiology 263, G853G863.Google ScholarPubMed
Rubin, D. C., Swietlicki, E., Roth, K. A. & Gordon, J. I. (1992). Use of fetal intestinal isografts from normal and transgenic mice to study the programming of positional information along the duodenal-to-colonic axis. Journal of Biological Chemistry 267, 1512215133.CrossRefGoogle Scholar
Sahi, T., Isokoski, M., Jussila, J., Launiala, K. & Pyorala, K. (1973). Recessive inheritance of adult-type lactose malabsorption. Lancet ii, 823826.CrossRefGoogle Scholar
Schmidt, G. H., Winton, D. J. & Ponder, B. A. (1988). Development of the pattern of cell renewal in the crypt–villus unit of chimaeric mouse small intestine. Development 103, 785790.CrossRefGoogle ScholarPubMed
St Johnston, R. D. & Gelbart, W. M. (1987). Decapentaplegic transcripts are localized along the dorsal–ventral axis of the Drosophila embyro. EMBO Journal 6, 27852791.CrossRefGoogle Scholar
Suh, E., Chen, L., Taylor, J. & Traber, P. G. (1994). A homeodomain protein related to caudal regulates intestine-specific gene transcription. Molecular and Cellular Biology 14, 73407351.Google ScholarPubMed
Traber, P. G., Wu, G. D. & Wang, W. (1992). Novel DNA-binding proteins regulate intestine-specific transcription of the sucrase–isomaltase gene. Molecular and Cellular Biology 12, 36143627.CrossRefGoogle ScholarPubMed
Tremml, G. & Bienz, M. (1989). Homeotic gene expression in the visceral mesoderm of Drosophila embryos. EMBO Journal 8, 26772685.CrossRefGoogle ScholarPubMed
Troelsen, J. T., Mehlum, A., Olsen, J., Spodsberg, N., Hansen, G. H., Prydz, H., Noren, O. & Sjostrom, H. (1994). 1 kb of the lactase-phlorizin hydrolase promoter directs post-weaning decline and small intestinal-specific expression in transgenic mice. FEBS Letters 342, 291296.CrossRefGoogle ScholarPubMed
Wu, G. D., Wang, W. & Traber, P. G. (1992). Isolation and characterization of the human sucrase–isomaltase gene and demonstration of intestine-specific transcriptional elements. Journal of Biological Chemistry 267, 78637870.CrossRefGoogle ScholarPubMed