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A Novel in situ Approach to Studying Pancreatic Ducts in Mice
Eleonóra Gál1, Jurij Dolenšek2,3, Andraž Stožer2
1Department of Pharmacology and Pharmacotherapy, University of Szeged, Szeged, Hungary.
Insights
The pancreas tissue slice technique successfully visualizes pancreatic ductal epithelial cells (PDECs) and their function in situ. This method preserves tissue architecture, enabling detailed study of PDEC structure and calcium signaling.
Area of Science:
- Organ physiology
- Cell biology
- Histology
Background:
- Tissue slice techniques preserve organ architecture and cell interactions for in situ studies.
- Previous research successfully used tissue slices for pancreatic acinar and endocrine cells.
- Pancreatic ductal epithelial cells (PDECs) are crucial for pancreatic physiology, but their function in situ remains understudied.
Purpose of the Study:
- To adapt and apply the tissue slice technique for investigating the structure and function of pancreatic ductal epithelial cells (PDECs) in situ.
- To evaluate the suitability of the technique for studying PDEC interactions with other pancreatic cell types.
Main Methods:
- Preparation of pancreas tissue slices from C57BL/6 mice using agarose injection into the common bile duct.
- Morphological analysis via Giemsa staining and immunostaining for cystic fibrosis transmembrane conductance regulator (CFTR).
- Functional assessment using confocal calcium imaging of PDECs loaded with Oregon Green 488 BAPTA-1 dye after stimulation with chenodeoxycholic acid (CDCA).
Main Results:
- Giemsa staining confirmed agarose distribution and preservation of pancreatic tissue architecture.
- Strong CFTR expression was observed on the apical membranes of PDECs and acinar cells, but not islet cells.
- CDCA stimulation induced a significant, transient increase in intracellular calcium concentration in over 40 PDECs per slice.
Conclusions:
- The acutely-isolated pancreas tissue slice technique is effective for the structural and functional investigation of PDECs in situ.
- This method allows for the study of PDECs in relation to acinar and endocrine cells within their native tissue context.
- The technique holds promise as a preferred method for future research on pancreatic ductal function, adaptable to various experimental approaches.
Abstract:
Introduction: The tissue slice technique offers several benefits compared to isolated cells and cell clusters that help us understand the (patho)physiology of several organs in situ. The most prominent features are preserved architecture and function, with intact homotypic and heterotypic interactions between cells in slices. In the pancreas, this technique has been utilized successfully to study acinar and endocrine islet cells. However, it has never been used to investigate ductal function. Since pancreatic ductal epithelial cells (PDECs) play an essential role in the physiology of the pancreas, our aim was to use this technique to study PDEC structure and function in situ. Materials and methods: Eight- to sixteen weeks old C57BL/6 mice were used for preparation of pancreas tissue slices. Low melting point agarose was injected into the common bile duct and the whole organ was extracted. For morphological studies, pieces of tissue were embedded in agarose and cryosectioned to obtain 15 μm thick slices. In order to visualize pancreatic ducts, (i) the Giemsa dye was added to the agarose and visualized using light microscopy or (ii) immunostaining for the cystic fibrosis transmembrane conductance regulator (CFTR) was performed. For functional characterization, agarose-embedded tissue was immediately cut to 140 μm thick tissue slices that were loaded with the cell permeant form of the Oregon Green 488 BAPTA-1 dye and used for confocal calcium imaging. Results: Giemsa staining has shown that the injected agarose reaches the head and body of the pancreas to a greater extent than the tail, without disrupting the tissue architecture. Strong CFTR expression was detected at the apical membranes of PDECs and acinar cells, whereas islet cells were completely negative for CFTR. Stimulation with chenodeoxycholic acid (CDCA, 1 mM) resulted in a robust transient increase in intracellular calcium concentration that was readily visible in >40 ductal cells per slice. Conclusion: Our results confirm that the acutely-isolated pancreas tissue slice technique is suitable for structural and functional investigation of PDECs and their relationship with other cell types, such as acini and endocrine cells in situ. In combination with different genetic, pharmacological or dietary approaches it could become a method of choice in the foreseeable future.
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