| Literature DB >> 27270669 |
Ge Li1, Binlin Wu1, Meliza G Ward1, Angie C N Chong2, Sushmita Mukherjee1, Shuibing Chen3, Mingming Hao4.
Abstract
Pancreatic islet dysfunction leading to insufficient glucose-stimulated insulin secretion triggers the clinical onset of diabetes. How islet dysfunction develops is not well understood at the cellular level, partly owing to the lack of approaches to study single islets longitudinally in vivo Here, we present a noninvasive, high-resolution system to quantitatively image real-time glucose metabolism from single islets in vivo, currently not available with any other method. In addition, this multifunctional system simultaneously reports islet function, proliferation, vasculature and macrophage infiltration in vivo from the same set of images. Applying our method to a longitudinal high-fat diet study revealed changes in islet function as well as alternations in islet microenvironment. More importantly, this label-free system enabled us to image real-time glucose metabolism directly from single human islets in vivo for the first time, opening the door to noninvasive longitudinal in vivo studies of healthy and diabetic human islets.Entities:
Keywords: Diabetes; Glucose metabolism; In vivo imaging; Multiphoton microscopy; NAD(P)H; Pancreatic islets
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Year: 2016 PMID: 27270669 PMCID: PMC4958299 DOI: 10.1242/jcs.190843
Source DB: PubMed Journal: J Cell Sci ISSN: 0021-9533 Impact factor: 5.285