Literature DB >> 26499436

3-D imaging of islets in obesity: formation of the islet-duct complex and neurovascular remodeling in young hyperphagic mice.

H-J Chien1,2,3, S-J Peng1,2,3, T-E Hua1,2,3, C-H Kuo4,5, J-H Juang4,6, S-C Tang1,2,3.   

Abstract

BACKGROUND: Obesity and insulin resistance lead to islet hyperplasia. However, how the islet remodeling influences the pancreatic environment and the associated neurovascular networks is largely unknown. The lack of information is primarily due to the difficulty of global visualization of the hyperplasic islet (>200 μm) and the neurovascular environment with high definition.
METHODS: We modulated the pancreatic optical property to achieve 3-dimensional (3-D) whole-islet histology and to integrate transmitted light microscopy (which provides the ground-truth tissue information) with confocal fluorescence imaging. The new optical and imaging conditions were used to globally examine the hyperplastic islets of the young (2 months) obese db/db and ob/ob mice, which otherwise cannot be easily portrayed by the standard microtome-based histology. The voxel-based islet micrographs were digitally processed for stereo projection and qualitative and quantitative analyses of the islet tissue networks.
RESULTS: Paired staining and imaging of the pancreatic islets, ducts and neurovascular networks reveal the unexpected formation of the 'neuro-insular-ductal complex' in the young obese mice. The complex consists of the peri- and/or intra-islet ducts and prominent peri-ductal sympathetic nerves; the latter contributes to a marked increase in islet sympathetic innervation. In vascular characterization, we identify a decreased perivascular density of the ob/ob islet pericytes, which adapt to ensheathing the dilated microvessels with hypertrophic processes.
CONCLUSIONS: Modulation of pancreatic optical property enables 3-D panoramic examination of islets in the young hyperphagic mice to reveal the formation of the islet-duct complex and neurovascular remodeling. On the basis of the morphological proximity of the remodeled tissue networks, we propose a reactive islet microenvironment consisting of the endocrine cells, ductal epithelium and neurovascular tissues in response to the metabolic challenge that is experienced early in life.

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Year:  2015        PMID: 26499436     DOI: 10.1038/ijo.2015.224

Source DB:  PubMed          Journal:  Int J Obes (Lond)        ISSN: 0307-0565            Impact factor:   5.095


  53 in total

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5.  3-D imaging and illustration of the perfusive mouse islet sympathetic innervation and its remodelling in injury.

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7.  Islet injury induces neurotrophin expression in pancreatic cells and reactive gliosis of peri-islet Schwann cells.

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8.  The leptin-deficient (ob/ob) mouse: a new animal model of peripheral neuropathy of type 2 diabetes and obesity.

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2.  Pancreatic neuro-insular network in young mice revealed by 3D panoramic histology.

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3.  Human pancreatic neuro-insular network in health and fatty infiltration.

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4.  Immune regulation of islet homeostasis and adaptation.

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Review 5.  Pancreas Optical Clearing and 3-D Microscopy in Health and Diabetes.

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6.  Leptin Receptor Expression in Mouse Intracranial Perivascular Cells.

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7.  Lymphatic vessel remodeling and invasion in pancreatic cancer progression.

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Journal:  EBioMedicine       Date:  2019-09-05       Impact factor: 8.143

  7 in total

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