Literature DB >> 27539300

Fluorescent protein vectors for pancreatic islet cell identification in live-cell imaging.

Hongyan Shuai1, Yunjian Xu1, Qian Yu1, Erik Gylfe1, Anders Tengholm2.   

Abstract

The islets of Langerhans contain different types of endocrine cells, which are crucial for glucose homeostasis. β- and α-cells that release insulin and glucagon, respectively, are most abundant, whereas somatostatin-producing δ-cells and particularly pancreatic polypeptide-releasing PP-cells are more scarce. Studies of islet cell function are hampered by difficulties to identify the different cell types, especially in live-cell imaging experiments when immunostaining is unsuitable. The aim of the present study was to create a set of vectors for fluorescent protein expression with cell-type-specific promoters and evaluate their applicability in functional islet imaging. We constructed six adenoviral vectors for expression of red and green fluorescent proteins controlled by the insulin, preproglucagon, somatostatin, or pancreatic polypeptide promoters. After transduction of mouse and human islets or dispersed islet cells, a majority of the fluorescent cells also immunostained for the appropriate hormone. Recordings of the sub-plasma membrane Ca(2+) and cAMP concentrations with a fluorescent indicator and a protein biosensor, respectively, showed that labeled cells respond to glucose and other modulators of secretion and revealed a striking variability in Ca(2+) signaling among α-cells. The measurements allowed comparison of the phase relationship of Ca(2+) oscillations between different types of cells within intact islets. We conclude that the fluorescent protein vectors allow easy identification of specific islet cell types and can be used in live-cell imaging together with organic dyes and genetically encoded biosensors. This approach will facilitate studies of normal islet physiology and help to clarify molecular defects and disturbed cell interactions in diabetic islets.

Entities:  

Keywords:  Ca2+; Glucagon; Insulin; Islets; PP-cell; Pancreatic polypeptide; Somatostatin; cAMP; α-cell; β-cell; δ-cell

Mesh:

Substances:

Year:  2016        PMID: 27539300      PMCID: PMC5026721          DOI: 10.1007/s00424-016-1864-z

Source DB:  PubMed          Journal:  Pflugers Arch        ISSN: 0031-6768            Impact factor:   3.657


  56 in total

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Journal:  Endocrinology       Date:  2005-08-04       Impact factor: 4.736

4.  Ablation of islet endocrine cells by targeted expression of hormone-promoter-driven toxigenes.

Authors:  P L Herrera; J Huarte; R Zufferey; A Nichols; B Mermillod; J Philippe; P Muniesa; F Sanvito; L Orci; J D Vassalli
Journal:  Proc Natl Acad Sci U S A       Date:  1994-12-20       Impact factor: 11.205

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Authors:  Magalie A Ravier; Martin Güldenagel; Anne Charollais; Asllan Gjinovci; Dorothée Caille; Goran Söhl; Claes B Wollheim; Klaus Willecke; Jean-Claude Henquin; Paolo Meda
Journal:  Diabetes       Date:  2005-06       Impact factor: 9.461

6.  Conversion of adult pancreatic alpha-cells to beta-cells after extreme beta-cell loss.

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7.  The ghrelin cell: a novel developmentally regulated islet cell in the human pancreas.

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Journal:  Regul Pept       Date:  2002-07-15

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Authors:  S O'Rahilly; R C Turner; D R Matthews
Journal:  N Engl J Med       Date:  1988-05-12       Impact factor: 91.245

9.  Glucose- and hormone-induced cAMP oscillations in α- and β-cells within intact pancreatic islets.

Authors:  Geng Tian; Stellan Sandler; Erik Gylfe; Anders Tengholm
Journal:  Diabetes       Date:  2011-03-28       Impact factor: 9.461

10.  EphA4 Receptor Forward Signaling Inhibits Glucagon Secretion From α-Cells.

Authors:  Troy Hutchens; David W Piston
Journal:  Diabetes       Date:  2015-08-06       Impact factor: 9.461

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  15 in total

1.  Pancreatic α and β cells are globally phase-locked.

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2.  Culture, differentiation, and transduction of mouse E12.5 pancreatic spheres: an in vitro model for the secondary transition of pancreas development.

Authors:  Lukas Huijbregts; Virginie Aiello; Andrea Soggia; Philippe Ravassard; Latif Rachdi; Raphaël Scharfmann; Olivier Albagli
Journal:  Islets       Date:  2021-03-01       Impact factor: 2.694

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Authors:  Xiao-Qing Dai; Joan Camunas-Soler; Linford J B Briant; Theodore Dos Santos; Aliya F Spigelman; Emily M Walker; Rafael Arrojo E Drigo; Austin Bautista; Robert C Jones; Dana Avrahami; James Lyon; Aifang Nie; Nancy Smith; Yongneng Zhang; Janyne Johnson; Jocelyn E Manning Fox; Evangelos D Michelakis; Peter E Light; Klaus H Kaestner; Seung K Kim; Patrik Rorsman; Roland W Stein; Stephen R Quake; Patrick E MacDonald
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4.  Targeting the Pancreatic α-Cell to Prevent Hypoglycemia in Type 1 Diabetes.

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Review 5.  The Human Islet: Mini-Organ With Mega-Impact.

Authors:  John T Walker; Diane C Saunders; Marcela Brissova; Alvin C Powers
Journal:  Endocr Rev       Date:  2021-09-28       Impact factor: 25.261

6.  Functional identification of islet cell types by electrophysiological fingerprinting.

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7.  TALK-1 reduces delta-cell endoplasmic reticulum and cytoplasmic calcium levels limiting somatostatin secretion.

Authors:  Nicholas C Vierra; Matthew T Dickerson; Kelli L Jordan; Prasanna K Dadi; Ketaki A Katdare; Molly K Altman; Sarah C Milian; David A Jacobson
Journal:  Mol Metab       Date:  2018-01-31       Impact factor: 7.422

8.  Vitamin-D-Binding Protein Contributes to the Maintenance of α Cell Function and Glucagon Secretion.

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Journal:  Cell Rep       Date:  2020-06-16       Impact factor: 9.423

9.  Paracrine control of α-cell glucagon exocytosis is compromised in human type-2 diabetes.

Authors:  Muhmmad Omar-Hmeadi; Per-Eric Lund; Nikhil R Gandasi; Anders Tengholm; Sebastian Barg
Journal:  Nat Commun       Date:  2020-04-20       Impact factor: 14.919

10.  δ-cells and β-cells are electrically coupled and regulate α-cell activity via somatostatin.

Authors:  L J B Briant; T M Reinbothe; I Spiliotis; C Miranda; B Rodriguez; P Rorsman
Journal:  J Physiol       Date:  2017-11-02       Impact factor: 5.182

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