SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling.
SEL1L, a component of the endoplasmic reticulum associated degradation (ERAD) pathway, has been reported to regulate the (i) differentiation of the pancreatic endocrine and exocrine tissue during the second transition of mouse embryonic development, (ii) neural stem cell self-renewal and lineage com...
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doaj-93326e4812c142f3befeb8a58717c4fd2020-11-24T21:52:05ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01811e7945810.1371/journal.pone.0079458SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling.Giuseppe R DiaferiaVincenzo CirulliIda BiunnoSEL1L, a component of the endoplasmic reticulum associated degradation (ERAD) pathway, has been reported to regulate the (i) differentiation of the pancreatic endocrine and exocrine tissue during the second transition of mouse embryonic development, (ii) neural stem cell self-renewal and lineage commitment and (iii) cell cycle progression through regulation of genes related to cell-matrix interaction. Here we show that in the pancreas the expression of SEL1L is developmentally regulated, such that it is readily detected in developing islet cells and in nascent acinar clusters adjacent to basement membranes, and becomes progressively restricted to the islets of Langherans in post-natal life. This peculiar expression pattern and the presence of two inverse RGD motifs in the fibronectin type II domain of SEL1L protein indicate a possible interaction with cell adhesion molecules to regulate islets architecture. Co-immunoprecipitation studies revealed SEL1L and ß1-integrin interaction and, down-modulation of SEL1L in pancreatic ß-cells, negatively influences both cell adhesion on selected matrix components and cell proliferation likely due to altered ERK signaling. Furthermore, the absence of SEL1L protein strongly inhibits glucose-stimulated insulin secretion in isolated mouse pancreatic islets unveiling an important role of SEL1L in insulin trafficking. This phenotype can be rescued by the ectopic expression of the ß1-integrin subunit confirming the close interaction of these two proteins in regulating the cross-talk between extracellular matrix and insulin signalling to create a favourable micro-environment for ß-cell development and function.http://europepmc.org/articles/PMC3854660?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Giuseppe R Diaferia Vincenzo Cirulli Ida Biunno |
spellingShingle |
Giuseppe R Diaferia Vincenzo Cirulli Ida Biunno SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. PLoS ONE |
author_facet |
Giuseppe R Diaferia Vincenzo Cirulli Ida Biunno |
author_sort |
Giuseppe R Diaferia |
title |
SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. |
title_short |
SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. |
title_full |
SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. |
title_fullStr |
SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. |
title_full_unstemmed |
SEL1L regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. |
title_sort |
sel1l regulates adhesion, proliferation and secretion of insulin by affecting integrin signaling. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2013-01-01 |
description |
SEL1L, a component of the endoplasmic reticulum associated degradation (ERAD) pathway, has been reported to regulate the (i) differentiation of the pancreatic endocrine and exocrine tissue during the second transition of mouse embryonic development, (ii) neural stem cell self-renewal and lineage commitment and (iii) cell cycle progression through regulation of genes related to cell-matrix interaction. Here we show that in the pancreas the expression of SEL1L is developmentally regulated, such that it is readily detected in developing islet cells and in nascent acinar clusters adjacent to basement membranes, and becomes progressively restricted to the islets of Langherans in post-natal life. This peculiar expression pattern and the presence of two inverse RGD motifs in the fibronectin type II domain of SEL1L protein indicate a possible interaction with cell adhesion molecules to regulate islets architecture. Co-immunoprecipitation studies revealed SEL1L and ß1-integrin interaction and, down-modulation of SEL1L in pancreatic ß-cells, negatively influences both cell adhesion on selected matrix components and cell proliferation likely due to altered ERK signaling. Furthermore, the absence of SEL1L protein strongly inhibits glucose-stimulated insulin secretion in isolated mouse pancreatic islets unveiling an important role of SEL1L in insulin trafficking. This phenotype can be rescued by the ectopic expression of the ß1-integrin subunit confirming the close interaction of these two proteins in regulating the cross-talk between extracellular matrix and insulin signalling to create a favourable micro-environment for ß-cell development and function. |
url |
http://europepmc.org/articles/PMC3854660?pdf=render |
work_keys_str_mv |
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