Literature DB >> 24100070

The ductal origin of structural and functional heterogeneity between pancreatic islets.

Claudia Merkwitz1, Orest W Blaschuk, Angela Schulz, Paul Lochhead, Jaroslawna Meister, Angela Ehrlich, Albert M Ricken.   

Abstract

Islets form in the pancreas after the first endocrine cells have arisen as either single cells or small cell clusters in the epithelial cords. These cords constitute the developing pancreas in one of its earliest recognizable stages. Islet formation begins at the time the cords transform into a branching ductal system, continues while the ductal system expands, and finally stops before the exocrine tissue of ducts and acini reaches its final expansion. Thus, islets continuously arise from founder cells located in the branching and ramifying ducts. Islets arising from proximal duct cells locate between the exocrine lobules, develop strong autonomic and sensory innervations, and pass their blood to efferent veins (insulo-venous efferent system). Islets arising from cells of more distal ducts locate within the exocrine lobules, respond to nerve impulses ending at neighbouring blood vessels, and pass their blood to the surrounding acini (insulo-acinar portal system). Consequently, the section of the ductal system from which an islet arises determines to a large extent its future neighbouring tissue, architecture, properties, and functions. We note that islets interlobular in position are frequently found in rodents (rats and mice), whereas intralobularly-located, peripheral duct islets prevail in humans and cattle. Also, we expound on bovine foetal Laguesse islets as a prominent foetal type of type 1 interlobular neuro-insular complexes, similar to neuro-insular associations frequently found in rodents. Finally, we consider the probable physiological and pathophysiological implications of the different islet positions within and between species.
Copyright © 2013 Elsevier GmbH. All rights reserved.

Entities:  

Keywords:  CK; E-cadherin; EP-CAM; GCG; GHRL; GLP-1; HE; HNF1β; INS; N-CAM; N-cadherin; NGN-3; NIC; PC; PDX-1; PHHI; PPY; R-cadherin; SOX9; SRY (sex-determining region Y)-box 9; SST; T1D; TGF-β; cytokeratin; ed; embryonic day; embryonic week; epithelial cell adhesion molecule; epithelial-cadherin; ew; ghrelin; glucagon; glucagon-like peptide-1; haematoxylin and eosin; hepatocyte nuclear factor 1 beta; insulin; neural cell adhesion molecule; neural-cadherin; neuro-insular complex; neurogenin-3; pancreatic and duodenal homeobox-1; pancreatic polypeptide; pcd; persistent hyperinsulinaemic hypoglycaemia of infancy; post coitum day; postpartum; pp; prohormone convertase; retinal-cadherin; somatostatin; transforming growth factor-ß; type 1 diabetes

Mesh:

Year:  2013        PMID: 24100070     DOI: 10.1016/j.proghi.2013.09.001

Source DB:  PubMed          Journal:  Prog Histochem Cytochem        ISSN: 0079-6336


  9 in total

1.  Single Cell Peptide Heterogeneity of Rat Islets of Langerhans.

Authors:  Erik T Jansson; Troy J Comi; Stanislav S Rubakhin; Jonathan V Sweedler
Journal:  ACS Chem Biol       Date:  2016-07-29       Impact factor: 5.100

2.  Insulin-positive, Glut2-low cells present within mouse pancreas exhibit lineage plasticity and are enriched within extra-islet endocrine cell clusters.

Authors:  Christine A Beamish; Brenda J Strutt; Edith J Arany; David J Hill
Journal:  Islets       Date:  2016-03-24       Impact factor: 2.694

3.  Epigenetic Erasing and Pancreatic Differentiation of Dermal Fibroblasts into Insulin-Producing Cells are Boosted by the Use of Low-Stiffness Substrate.

Authors:  Georgia Pennarossa; Rosaria Santoro; Elena F M Manzoni; Maurizio Pesce; Fulvio Gandolfi; Tiziana A L Brevini
Journal:  Stem Cell Rev Rep       Date:  2018-06       Impact factor: 5.739

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

Authors:  Huixia Ren; Yanjun Li; Chengsheng Han; Yi Yu; Bowen Shi; Xiaohong Peng; Tianming Zhang; Shufang Wu; Xiaojing Yang; Sneppen Kim; Liangyi Chen; Chao Tang
Journal:  Nat Commun       Date:  2022-06-28       Impact factor: 17.694

5.  Compliant 3D microenvironment improves β-cell cluster insulin expression through mechanosensing and β-catenin signaling.

Authors:  Crystal E Nyitray; Miquella G Chavez; Tejal A Desai
Journal:  Tissue Eng Part A       Date:  2014-02-24       Impact factor: 3.845

6.  Progenitor cell niches in the human pancreatic duct system and associated pancreatic duct glands: an anatomical and immunophenotyping study.

Authors:  Guido Carpino; Anastasia Renzi; Vincenzo Cardinale; Antonio Franchitto; Paolo Onori; Diletta Overi; Massimo Rossi; Pasquale Bartolomeo Berloco; Domenico Alvaro; Lola M Reid; Eugenio Gaudio
Journal:  J Anat       Date:  2015-11-27       Impact factor: 2.610

Review 7.  Structural similarities and differences between the human and the mouse pancreas.

Authors:  Jurij Dolenšek; Marjan Slak Rupnik; Andraž Stožer
Journal:  Islets       Date:  2015       Impact factor: 2.694

8.  Islet Regeneration and Pancreatic Duct Glands in Human and Experimental Diabetes.

Authors:  Diletta Overi; Guido Carpino; Marta Moretti; Antonio Franchitto; Lorenzo Nevi; Paolo Onori; Enrico De Smaele; Luca Federici; Daniele Santorelli; Marella Maroder; Lola M Reid; Vincenzo Cardinale; Domenico Alvaro; Eugenio Gaudio
Journal:  Front Cell Dev Biol       Date:  2022-02-04

9.  Tumor-insular Complex in Neoadjuvant Treated Pancreatic Ductal Adenocarcinoma Is Associated With Higher Residual Tumor.

Authors:  Iván A González; Liang-I Kang; Gregory A Williams; Jingxia Liu; David G DeNardo; William G Hawkins; Deyali Chatterjee
Journal:  Am J Surg Pathol       Date:  2020-06       Impact factor: 6.298

  9 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.