In vivo imaging of murine endocrine islets of Langerhans with extended-focus optical coherence microscopy.
Details
Serval ID
serval:BIB_C52233803C1E
Type
Article: article from journal or magazin.
Collection
Publications
Institution
Title
In vivo imaging of murine endocrine islets of Langerhans with extended-focus optical coherence microscopy.
Journal
Diabetologia
ISSN
1432-0428 (Electronic)
ISSN-L
0012-186X
Publication state
Published
Issued date
08/2009
Peer-reviewed
Oui
Volume
52
Number
8
Pages
1599-1607
Language
english
Notes
Publication types: Journal Article ; Research Support, N.I.H., Extramural ; Research Support, Non-U.S. Gov't
Publication Status: ppublish
Publication Status: ppublish
Abstract
Structural and functional imaging of the islets of Langerhans and the insulin-secreting beta cells represents a significant challenge and a long-lasting objective in diabetes research. In vivo microscopy offers a valuable insight into beta cell function but has severe limitations regarding sample labelling, imaging speed and depth, and was primarily performed on isolated islets lacking native innervations and vascularisation. This article introduces extended-focus optical coherence microscopy (xfOCM) to image murine pancreatic islets in their natural environment in situ, i.e. in vivo and in a label-free condition.
Ex vivo measurements on excised pancreases were performed and validated by standard immunohistochemistry to investigate the structures that can be observed with xfOCM. The influence of streptozotocin on the signature of the islets was investigated in a second step. Finally, xfOCM was applied to make measurements of the murine pancreas in situ and in vivo.
xfOCM circumvents the fundamental physical limit that trades lateral resolution for depth of field, and achieves fast volumetric imaging with high resolution in all three dimensions. It allows label-free visualisation of pancreatic lobules, ducts, blood vessels and individual islets of Langerhans ex vivo and in vivo, and detects streptozotocin-induced islet destruction.
Our results demonstrate the potential value of xfOCM in high-resolution in vivo studies to assess islet structure and function in animal models of diabetes, aiming towards its use in longitudinal studies of diabetes progression and islet transplants.
Ex vivo measurements on excised pancreases were performed and validated by standard immunohistochemistry to investigate the structures that can be observed with xfOCM. The influence of streptozotocin on the signature of the islets was investigated in a second step. Finally, xfOCM was applied to make measurements of the murine pancreas in situ and in vivo.
xfOCM circumvents the fundamental physical limit that trades lateral resolution for depth of field, and achieves fast volumetric imaging with high resolution in all three dimensions. It allows label-free visualisation of pancreatic lobules, ducts, blood vessels and individual islets of Langerhans ex vivo and in vivo, and detects streptozotocin-induced islet destruction.
Our results demonstrate the potential value of xfOCM in high-resolution in vivo studies to assess islet structure and function in animal models of diabetes, aiming towards its use in longitudinal studies of diabetes progression and islet transplants.
Keywords
Animals, Diabetes Mellitus, Experimental/pathology, Female, Image Processing, Computer-Assisted, Immunohistochemistry, Insulin/metabolism, Insulin Secretion, Insulin-Secreting Cells/cytology, Insulin-Secreting Cells/metabolism, Insulin-Secreting Cells/pathology, Islets of Langerhans/anatomy & histology, Islets of Langerhans/cytology, Islets of Langerhans/pathology, Male, Mice, Mice, Inbred C57BL, Mice, Inbred ICR, Sensitivity and Specificity, Streptozocin, Tomography, Optical Coherence/methods
Pubmed
Web of science
Open Access
Yes
Create date
22/10/2014 7:03
Last modification date
01/03/2024 16:42