Literature DB >> 20184923

Metabolic effects and mechanism of action of the chromogranin A-derived peptide pancreastatin.

Víctor Sánchez-Margalet1, Carmen González-Yanes, Souad Najib, José Santos-Alvarez.   

Abstract

Pancreastatin is one of the regulatory peptides derived from intracellular and/or extracellular processing of chromogranin A, the soluble acidic protein present in the secretory granules of the neuroendocrine system. While the intracellular functions of chromogranin A include formation and maturation of the secretory granule, the major extracellular functions are generation of biologically active peptides with demonstrated autocrine, paracrine or endocrine activities. In this review, we will focus on the metabolic function of one of these peptides, pancreastatin, and the mechanisms underlying its effects. Many different reported effects have implicated PST in the modulation of energy metabolism, with a general counterregulatory effect to that of insulin. Pancreastatin induces glycogenolysis in liver and lipolysis in adipocytes. Metabolic effects have been confirmed in humans. Moreover, naturally occurring human variants have been found, one of which (Gly297Ser) occurs in the functionally important carboxy-terminus of the peptide, and substantially increases the peptide's potency to inhibit cellular glucose uptake. Thus, qualitative hereditary alterations in pancreastatin's primary structure may give rise to interindividual differences in glucose and lipid metabolism. Pancreastatin activates a receptor signaling system that belongs to the seven-spanning transmembrane receptor coupled to a Gq-PLCbeta-calcium-PKC signaling pathway. Increased pancreastatin plasma levels, correlating with catecholamines levels, have been found in insulin resistance states, such as gestational diabetes or essential hypertension. Pancreastatin plays important physiological role in potentiating the metabolic effects of catecholamines, and may also play a pathophysiological role in insulin resistance states with increased sympathetic activity. Copyright 2010 Elsevier B.V. All rights reserved.

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Year:  2010        PMID: 20184923     DOI: 10.1016/j.regpep.2010.02.005

Source DB:  PubMed          Journal:  Regul Pept        ISSN: 0167-0115


  17 in total

1.  Catestatin (chromogranin A(352-372)) and novel effects on mobilization of fat from adipose tissue through regulation of adrenergic and leptin signaling.

Authors:  Gautam K Bandyopadhyay; Christine U Vu; Stefano Gentile; Howon Lee; Nilima Biswas; Nai-Wen Chi; Daniel T O'Connor; Sushil K Mahata
Journal:  J Biol Chem       Date:  2012-04-25       Impact factor: 5.157

Review 2.  The extended granin family: structure, function, and biomedical implications.

Authors:  Alessandro Bartolomucci; Roberta Possenti; Sushil K Mahata; Reiner Fischer-Colbrie; Y Peng Loh; Stephen R J Salton
Journal:  Endocr Rev       Date:  2011-08-23       Impact factor: 19.871

3.  Pancreastatin predicts survival in neuroendocrine tumors.

Authors:  Scott K Sherman; Jessica E Maxwell; M Sue O'Dorisio; Thomas M O'Dorisio; James R Howe
Journal:  Ann Surg Oncol       Date:  2014-04-22       Impact factor: 5.344

Review 4.  Chromogranin A and derived peptides in health and disease.

Authors:  Y Peng Loh; Yong Cheng; Sushil K Mahata; Angelo Corti; Bruno Tota
Journal:  J Mol Neurosci       Date:  2012-03-03       Impact factor: 3.444

5.  Naturally occurring variants of the dysglycemic peptide pancreastatin: differential potencies for multiple cellular functions and structure-function correlation.

Authors:  Prasanna K R Allu; Venkat R Chirasani; Dhiman Ghosh; Anitha Mani; Amal K Bera; Samir K Maji; Sanjib Senapati; Ajit S Mullasari; Nitish R Mahapatra
Journal:  J Biol Chem       Date:  2013-12-12       Impact factor: 5.157

6.  Muscle injury, impaired muscle function and insulin resistance in Chromogranin A-knockout mice.

Authors:  Kechun Tang; Teresa Pasqua; Angshuman Biswas; Sumana Mahata; Jennifer Tang; Alisa Tang; Gautam K Bandyopadhyay; Amiya P Sinha-Hikim; Nai-Wen Chi; Nicholas J G Webster; Angelo Corti; Sushil K Mahata
Journal:  J Endocrinol       Date:  2016-10-31       Impact factor: 4.286

7.  Impact of Chromogranin A deficiency on catecholamine storage, catecholamine granule morphology and chromaffin cell energy metabolism in vivo.

Authors:  Teresa Pasqua; Sumana Mahata; Gautam K Bandyopadhyay; Angshuman Biswas; Guy A Perkins; Amiya P Sinha-Hikim; David S Goldstein; Lee E Eiden; Sushil K Mahata
Journal:  Cell Tissue Res       Date:  2015-11-16       Impact factor: 5.249

8.  Functional genetic variants of the catecholamine-release-inhibitory peptide catestatin in an Indian population: allele-specific effects on metabolic traits.

Authors:  Bhavani S Sahu; Jagan M Obbineni; Giriraj Sahu; Prasanna K R Allu; Lakshmi Subramanian; Parshuram J Sonawane; Pradeep K Singh; Binu K Sasi; Sanjib Senapati; Samir K Maji; Amal K Bera; Balashankar S Gomathi; Ajit S Mullasari; Nitish R Mahapatra
Journal:  J Biol Chem       Date:  2012-10-26       Impact factor: 5.157

9.  A score derived from routine biochemical parameters increases the diagnostic accuracy of chromogranin A in detecting patients with neuroendocrine neoplasms.

Authors:  Ivan Kruljac; Ivan Vurnek; Sebastian Maasberg; Davor Kust; Kristina Blaslov; Blaženka Ladika Davidović; Mario Štefanović; Alma Demirović; Alen Bišćanin; Jakša Filipović-Čugura; Jasmina Marić Brozić; Ulrich-Frank Pape; Milan Vrkljan
Journal:  Endocrine       Date:  2018-04-09       Impact factor: 3.633

10.  It Is Time to Rethink Biomarkers for Surveillance of Small Bowel Neuroendocrine Tumors.

Authors:  Catherine G Tran; Scott K Sherman; Aaron T Scott; Po Hien Ear; Chandrikha Chandrasekharan; Andrew M Bellizzi; Joseph S Dillon; Thomas M O'Dorisio; James R Howe
Journal:  Ann Surg Oncol       Date:  2020-07-11       Impact factor: 5.344

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