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Published on: January 28, 2017
Dual origin, development, and fate of bovine pancreatic islets
Claudia Merkwitz1, Paul Lochhead, Jan Böttger
1Institute of Anatomy, Faculty of Medicine, University of Leipzig, Leipzig, Germany.
Insights
Bovine pancreatic development reveals two distinct islet types: perilobular giant islets and intralobular small islets. Giant islets regress, while small islets persist, impacting pancreatic islet transplantation therapy.
Area of Science:
- Developmental Biology
- Endocrinology
- Histology
Background:
- Endocrine cells appear early in bovine pancreatic development within primitive epithelial cords.
- Initially, endocrine cells are interspersed with exocrine precursor cells.
Purpose of the Study:
- To investigate the distinct histogenesis, architecture, and fate of endocrine cell populations in developing bovine pancreas.
- To differentiate between perilobular giant islets and intralobular small islets.
Main Methods:
- Histological examination of bovine fetal pancreata (crown rump length ≥ 11 cm).
- Comparative analysis of islet morphology, cellular composition, and relationship with nerves.
- Observation of antenatal and postnatal changes in islet populations.
Main Results:
- Two distinct islet types emerge: 'perilobular giant islets' and 'intralobular small islets', originating from ductal tree ends.
- Giant islets are characterized by insulin-synthesizing cells and undergo regression involving hemorrhage and fibrosis.
- Small islets comprise mixed endocrine cells, persist in adult cattle, and show different morphological and neural associations.
Conclusions:
- Bovine pancreatic ductal precursor cells can generate islet populations with differing histomorphology, composition, and fates.
- The distinct developmental trajectories and regression of giant islets are critical considerations for pancreatic islet transplantation therapies.
Abstract:
Endocrine cells are evident at an early stage in bovine pancreatic development when the pancreas still consists of primitive epithelial cords. At this stage, the endocrine cells are interspersed between the precursor cells destined to form the ductulo-acinar trees of later exocrine lobules. We here demonstrate that, in bovine fetuses of crown rump length ≥ 11 cm, the endocrine cells become increasingly segregated from the developing exocrine pancreas by assembly into two units that differ in histogenesis, architecture, and fate. Small numbers of 'perilobular giant islets' are distinguishable from larger numbers of 'intralobular small islets'. The two types of islets arise in parallel from the ends of the ductal tree. Aside from differences in number, location, and size, the giant and small islets differ in cellular composition (predominantly insulin-synthesising cells vs. mixtures of endocrine cells), morphology (epithelial trabeculae with gyriform and rosette-like appearance vs. compact circular arrangements of endocrine cells), and in their relationships to intrapancreatic ganglia and nerves. A further difference becomes apparent during the antenatal period; while the 'interlobular small islets' persist in the pancreata of calves and adult cattle, the perilobular giant islets are subject to regression, characterised by involution of the parenchyma, extensive haemorrhage, leukocyte infiltration (myeloid and T-cells) and progressive fibrotic replacement. In conclusion, epithelial precursor cells of the ductolo-acinar tree may give rise to populations of pancreatic islets with different histomorphology, cellular composition and fates. This should be taken into account when using these cells for the generation of pancreatic islets for transplantation therapy.
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