» Articles » PMID: 34190340

Intercellular Communication in the Islet of Langerhans in Health and Disease

Overview
Journal Compr Physiol
Specialty Physiology
Date 2021 Jun 30
PMID 34190340
Citations 14
Authors
Affiliations
Soon will be listed here.
Abstract

Blood glucose homeostasis requires proper function of pancreatic islets, which secrete insulin, glucagon, and somatostatin from the β-, α-, and δ-cells, respectively. Each islet cell type is equipped with intrinsic mechanisms for glucose sensing and secretory actions, but these intrinsic mechanisms alone cannot explain the observed secretory profiles from intact islets. Regulation of secretion involves interconnected mechanisms among and between islet cell types. Islet cells lose their normal functional signatures and secretory behaviors upon dispersal as compared to intact islets and in vivo. In dispersed islet cells, the glucose response of insulin secretion is attenuated from that seen from whole islets, coordinated oscillations in membrane potential and intracellular Ca activity, as well as the two-phase insulin secretion profile, are missing, and glucagon secretion displays higher basal secretion profile and a reverse glucose-dependent response from that of intact islets. These observations highlight the critical roles of intercellular communication within the pancreatic islet, and how these communication pathways are crucial for proper hormonal and nonhormonal secretion and glucose homeostasis. Further, misregulated secretions of islet secretory products that arise from defective intercellular islet communication are implicated in diabetes. Intercellular communication within the islet environment comprises multiple mechanisms, including electrical synapses from gap junctional coupling, paracrine interactions among neighboring cells, and direct cell-to-cell contacts in the form of juxtacrine signaling. In this article, we describe the various mechanisms that contribute to proper islet function for each islet cell type and how intercellular islet communications are coordinated among the same and different islet cell types. © 2021 American Physiological Society. Compr Physiol 11:2191-2225, 2021.

Citing Articles

Exploring new frontiers in type 1 diabetes through advanced mass-spectrometry-based molecular measurements.

Sarkar S, Zheng X, Clair G, Kwon Y, You Y, Swensen A Trends Mol Med. 2024; 30(12):1137-1151.

PMID: 39152082 PMC: 11631641. DOI: 10.1016/j.molmed.2024.07.009.


Coupling Microdroplet-Based Sample Preparation, Multiplexed Isobaric Labeling, and Nanoflow Peptide Fractionation for Deep Proteome Profiling of the Tissue Microenvironment.

Velickovic M, Fillmore T, Attah I, Posso C, Pino J, Zhao R Anal Chem. 2024; 96(32):12973-12982.

PMID: 39089681 PMC: 11325296. DOI: 10.1021/acs.analchem.4c00523.


Endothelial Cells Promote Pseudo-islet Function Through BTC-EGFR-JAK/STAT Signaling Pathways.

Wang L, Wan J, Xu Y, Huang Y, Wang D, Zhu D Ann Biomed Eng. 2024; 52(9):2610-2626.

PMID: 38829457 DOI: 10.1007/s10439-024-03548-3.


Illuminating the complete ß-cell mass of the human pancreas- signifying a new view on the islets of Langerhans.

Lehrstrand J, Davies W, Hahn M, Korsgren O, Alanentalo T, Ahlgren U Nat Commun. 2024; 15(1):3318.

PMID: 38632302 PMC: 11024155. DOI: 10.1038/s41467-024-47686-7.


An orally available compound suppresses glucagon hypersecretion and normalizes hyperglycemia in type 1 diabetes.

Asadi F, Gunawardana S, Dolle R, Piston D JCI Insight. 2024; 9(2).

PMID: 38258903 PMC: 10906223. DOI: 10.1172/jci.insight.172626.


References
1.
Yamagata K, Nammo T, Moriwaki M, Ihara A, Iizuka K, Yang Q . Overexpression of dominant-negative mutant hepatocyte nuclear fctor-1 alpha in pancreatic beta-cells causes abnormal islet architecture with decreased expression of E-cadherin, reduced beta-cell proliferation, and diabetes. Diabetes. 2002; 51(1):114-23. DOI: 10.2337/diabetes.51.1.114. View

2.
Westacott M, Farnsworth N, St Clair J, Poffenberger G, Heintz A, Ludin N . Age-Dependent Decline in the Coordinated [Ca] and Insulin Secretory Dynamics in Human Pancreatic Islets. Diabetes. 2017; 66(9):2436-2445. PMC: 5566297. DOI: 10.2337/db17-0137. View

3.
Song S, Kjems L, Ritzel R, McIntyre S, Johnson M, Veldhuis J . Pulsatile insulin secretion by human pancreatic islets. J Clin Endocrinol Metab. 2002; 87(1):213-21. DOI: 10.1210/jcem.87.1.8181. View

4.
Slucca M, Harmon J, Oseid E, Bryan J, Robertson R . ATP-sensitive K+ channel mediates the zinc switch-off signal for glucagon response during glucose deprivation. Diabetes. 2009; 59(1):128-34. PMC: 2797913. DOI: 10.2337/db09-1098. View

5.
Mundinger T, Taborsky Jr G . Early sympathetic islet neuropathy in autoimmune diabetes: lessons learned and opportunities for investigation. Diabetologia. 2016; 59(10):2058-67. PMC: 6214182. DOI: 10.1007/s00125-016-4026-0. View