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A Method for Mouse Pancreatic Islet Isolation and Intracellular cAMP Determination
Published on: June 25, 2014
Differences in aggregation properties and levels of the neural cell adhesion molecule (NCAM) between islet cell types
D G Rouiller1, V Cirulli, P A Halban
1Laboratoires de Recherche Louis Jeantet, Centre Médical Universitaire, Geneva, Switzerland.
Insights
Cellular organization in rat islets involves specific aggregation properties. Differences in calcium dependency and neural cell adhesion molecule (NCAM) levels explain the nonrandom distribution of B-cells, non-B-cells, and RIN cells in culture.
Area of Science:
- Cell Biology
- Endocrinology
- Biochemistry
Background:
- Rat islets of Langerhans exhibit a core of B-cells surrounded by other cell types.
- In culture, primary islet and insulinoma (RIN2A) cells form aggregates with distinct layering: B-cells centrally, non-B-cells surrounding them, and RIN cells as the outermost layer.
Purpose of the Study:
- To investigate the molecular mechanisms behind the nonrandom cellular organization observed in cultured islet and RIN2A cells.
- To understand the aggregation properties of primary B-cells, non-B-cells, and RIN cells.
Main Methods:
- Separation of primary islet cells into B-cells and non-B-cells using autofluorescence-activated cell sorting (FACS).
- Short-term aggregation assays were performed with and without calcium to assess cell-cell adhesion.
- Flow cytometry and immunoblotting were used to measure the surface density and molecular form of neural cell adhesion molecule (NCAM).
Main Results:
- Primary B-cell aggregation was significantly higher in the presence of calcium compared to its absence.
- Non-B-cell and RIN cell aggregation showed only a slight decrease in the absence of calcium.
- Non-B-cells and RIN cells exhibited significantly higher surface density of Ca2(+)-independent neural CAM (NCAM) compared to B-cells.
Conclusions:
- Differences in calcium-dependent aggregation and NCAM levels exist among islet B-cells, non-B-cells, and RIN cells.
- These distinct aggregation specificities likely contribute to the observed concentric segregation of cell types in culture.
- The findings suggest a role for NCAM in the nonrandom cellular organization within rat islets.
Abstract:
Cells within rat islets of Langerhans are typically organized as a core of B-cells, surrounded by the other cell types. When mixed in culture, primary islet cells and insulinoma (RIN2A) cells form aggregates where B-cells are centrally located, surrounded by non-B-cells, while RIN-cells segregate as the outermost layer. To gain insight into the molecular basis underlying this nonrandom cellular organization, the aggregation properties of the three cell populations were studied. Isolated islet cells were separated into B-cells and non-B-cells by autofluorescence-activated cell sorting (FACS). In a short-term aggregation assay, primary B-cell aggregation in the absence of calcium was only 19 +/- 3.7%, compared to the 67 +/- 2.9% seen in the presence of calcium (mean +/- SEM; P less than 0.001; n = 7). By contrast, non-B-cell aggregation and RIN cell aggregation in the absence of calcium (62 +/- 2 and 66 +/- 2%, respectively) were only slightly less than with calcium (70 +/- 3 and 76 +/- 3%). The surface density of the Ca2(+)-independent neural CAM (NCAM) was therefore measured by flow cytometry and found to be 2.64 +/- 0.82-fold higher in non-B-cells, compared to that in B-cells (P less than 0.01; n = 3). Even higher levels were found on RIN cells. In the three cell types, NCAM-140 was the only molecular form detected by immunoblotting. In conclusion, differences in the calcium dependency of aggregation and in the levels of NCAM are demonstrated among islet B-cells, non-B-cells, and RIN cells. Because cell-cell adhesion is crucial for the maintenance of adult tissue, these aggregation specificities might contribute to the concentric segregation of islet cell types in culture and to the nonrandom distribution of cells within rat islets.
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