Reka Lorincz, Christopher H Emfinger, Andrea Walcher, Michael Giolai, Claudia Krautgasser, Maria S Remedi, Colin G Nichols, Dirk Meyer
{"title":"斑马鱼胚胎胰腺β细胞胞内Ca2+动态的体内监测。","authors":"Reka Lorincz, Christopher H Emfinger, Andrea Walcher, Michael Giolai, Claudia Krautgasser, Maria S Remedi, Colin G Nichols, Dirk Meyer","doi":"10.1080/19382014.2018.1540234","DOIUrl":null,"url":null,"abstract":"<p><p>Assessing the response of pancreatic islet cells to glucose stimulation is important for understanding β-cell function. Zebrafish are a promising model for studies of metabolism in general, including stimulus-secretion coupling in the pancreas. We used transgenic zebrafish embryos expressing a genetically-encoded Ca<sup>2+</sup> sensor in pancreatic β-cells to monitor a key step in glucose induced insulin secretion; the elevations of intracellular [Ca<sup>2+</sup>]<sub>i</sub>. In vivo and ex vivo analyses of [Ca<sup>2+</sup>]<sub>i</sub> demonstrate that β-cell responsiveness to glucose is well established in late embryogenesis and that embryonic β-cells also respond to free fatty acid and amino acid challenges. In vivo imaging of whole embryos further shows that indirect glucose administration, for example by yolk injection, results in a slow and asynchronous induction of β-cell [Ca<sup>2+</sup>]<sub>i</sub> responses, while intravenous glucose injections cause immediate and islet-wide synchronized [Ca<sup>2+</sup>]<sub>i</sub> fluctuations. Finally, we demonstrate that embryos with disrupted mutation of the Ca<sub>V</sub>1.2 channel gene cacna1c are hyperglycemic and that this phenotype is associated with glucose-independent [Ca<sup>2+</sup>]<sub>i</sub> fluctuation in β-cells. The data reveal a novel central role of cacna1c in β-cell specific stimulus-secretion coupling in zebrafish and demonstrate that the novel approach we propose - to monitor the [Ca<sup>2+</sup>]<sub>i</sub> dynamics in embryonic β-cells in vivo - will help to expand the understanding of β-cell physiological functions in healthy and diseased states.</p>","PeriodicalId":14671,"journal":{"name":"Islets","volume":"10 6","pages":"221-238"},"PeriodicalIF":1.9000,"publicationDate":"2018-01-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://sci-hub-pdf.com/10.1080/19382014.2018.1540234","citationCount":"13","resultStr":"{\"title\":\"In vivo monitoring of intracellular Ca<sup>2+</sup> dynamics in the pancreatic β-cells of zebrafish embryos.\",\"authors\":\"Reka Lorincz, Christopher H Emfinger, Andrea Walcher, Michael Giolai, Claudia Krautgasser, Maria S Remedi, Colin G Nichols, Dirk Meyer\",\"doi\":\"10.1080/19382014.2018.1540234\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p>Assessing the response of pancreatic islet cells to glucose stimulation is important for understanding β-cell function. Zebrafish are a promising model for studies of metabolism in general, including stimulus-secretion coupling in the pancreas. We used transgenic zebrafish embryos expressing a genetically-encoded Ca<sup>2+</sup> sensor in pancreatic β-cells to monitor a key step in glucose induced insulin secretion; the elevations of intracellular [Ca<sup>2+</sup>]<sub>i</sub>. In vivo and ex vivo analyses of [Ca<sup>2+</sup>]<sub>i</sub> demonstrate that β-cell responsiveness to glucose is well established in late embryogenesis and that embryonic β-cells also respond to free fatty acid and amino acid challenges. In vivo imaging of whole embryos further shows that indirect glucose administration, for example by yolk injection, results in a slow and asynchronous induction of β-cell [Ca<sup>2+</sup>]<sub>i</sub> responses, while intravenous glucose injections cause immediate and islet-wide synchronized [Ca<sup>2+</sup>]<sub>i</sub> fluctuations. Finally, we demonstrate that embryos with disrupted mutation of the Ca<sub>V</sub>1.2 channel gene cacna1c are hyperglycemic and that this phenotype is associated with glucose-independent [Ca<sup>2+</sup>]<sub>i</sub> fluctuation in β-cells. 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In vivo monitoring of intracellular Ca2+ dynamics in the pancreatic β-cells of zebrafish embryos.
Assessing the response of pancreatic islet cells to glucose stimulation is important for understanding β-cell function. Zebrafish are a promising model for studies of metabolism in general, including stimulus-secretion coupling in the pancreas. We used transgenic zebrafish embryos expressing a genetically-encoded Ca2+ sensor in pancreatic β-cells to monitor a key step in glucose induced insulin secretion; the elevations of intracellular [Ca2+]i. In vivo and ex vivo analyses of [Ca2+]i demonstrate that β-cell responsiveness to glucose is well established in late embryogenesis and that embryonic β-cells also respond to free fatty acid and amino acid challenges. In vivo imaging of whole embryos further shows that indirect glucose administration, for example by yolk injection, results in a slow and asynchronous induction of β-cell [Ca2+]i responses, while intravenous glucose injections cause immediate and islet-wide synchronized [Ca2+]i fluctuations. Finally, we demonstrate that embryos with disrupted mutation of the CaV1.2 channel gene cacna1c are hyperglycemic and that this phenotype is associated with glucose-independent [Ca2+]i fluctuation in β-cells. The data reveal a novel central role of cacna1c in β-cell specific stimulus-secretion coupling in zebrafish and demonstrate that the novel approach we propose - to monitor the [Ca2+]i dynamics in embryonic β-cells in vivo - will help to expand the understanding of β-cell physiological functions in healthy and diseased states.
期刊介绍:
Islets is the first international, peer-reviewed research journal dedicated to islet biology. Islets publishes high-quality clinical and experimental research into the physiology and pathology of the islets of Langerhans. In addition to original research manuscripts, Islets is the leading source for cutting-edge Perspectives, Reviews and Commentaries.
Our goal is to foster communication and a rapid exchange of information through timely publication of important results using print as well as electronic formats.