Literature DB >> 42665

An experimental investigation into the possible origin of pancreatic islet cells from rhombencephalic neurectoderm.

A Andrew, B Kramer.   

Abstract

To determine whether or not any pancreatic islet cell type arises from rhombencephalic levels of neurectoderm, lengths of presumptive rhombencephalon (containing potential neural crest) of Black Australorp chick embryos at 6- to 9-somite stages were replaced isotopically and isochronically by neural tube of Japanese quail embryos. Some transplants included mesencephalic regions. In some cases various levels of the rhombencephalon were deleted and not replaced. The quail nuclear marker was detected in cranial ganglia in operated embryos sacrificed at 3 3/4 days of incubation and in enteric ganglia and cells accompanying some pancreatic nerves, in embryos killed at 7 days of incubation. This provided evidence of normal migration of crest cells from the grafts. Dopa was administered to the younger embryos, which were submitted to the formaldehyde-induced fluorescence procedure to demonstrate APUD (Amine Precursor Uptake and Decarboxylation) cells. No pancreatic APUD cells exhibited the quail nuclear marker. In 9- to 11-day embryos, A and B cells were identified by specific light and electron microscopic features. None showed the quail marker. The marker was also absent from those D cells seen and from cells of an as yet unidentified type, but not enough of these were found to warrant a conclusion. All islet cell types were found in embryos from which various levels of the rhombencephalon had been deleted. It is concluded that at least A and B islet cells are not derived from the rhombencephalic neurectoderm and probably not from mesencephalic levels. Their most likely origin remains the endoderm, which was the accepted source until recently.

Entities:  

Mesh:

Year:  1979        PMID: 42665

Source DB:  PubMed          Journal:  J Embryol Exp Morphol        ISSN: 0022-0752


  7 in total

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Authors:  Hsun Teresa Ku
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2.  Ultrastructure of the neuro-insular complexes in the pancreas of sand rats (Psammomys obesus).

Authors:  S Donev; P Petkov; G Marquié; J Duhault
Journal:  Acta Diabetol Lat       Date:  1983 Oct-Dec

3.  Transformation of catecholaminergic precursors into glucagon (A) cells in mouse embryonic pancreas.

Authors:  G Teitelman; T H Joh; D J Reis
Journal:  Proc Natl Acad Sci U S A       Date:  1981-08       Impact factor: 11.205

4.  Temporal changes in pancreatic islet composition in C57BL/6J-db/db (diabetes) mice.

Authors:  D A Gapp; E H Leiter; D L Coleman; R W Schwizer
Journal:  Diabetologia       Date:  1983-11       Impact factor: 10.122

5.  Do neural crest cells in the pancreas differentiate into somatostatin-containing cells?

Authors:  J Fontaine-Pérus; C Le Lièvre; M P Dubois
Journal:  Cell Tissue Res       Date:  1980       Impact factor: 5.249

Review 6.  Fetal Leydig cell origin and development.

Authors:  S L Griswold; R R Behringer
Journal:  Sex Dev       Date:  2009-04-01       Impact factor: 1.824

Review 7.  Helminth Sensing at the Intestinal Epithelial Barrier-A Taste of Things to Come.

Authors:  Aduragbemi A Faniyi; Kevin J Wijanarko; James Tollitt; John J Worthington
Journal:  Front Immunol       Date:  2020-07-30       Impact factor: 7.561

  7 in total

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