| | SLO | ENG | Cookies and privacy

Bigger font | Smaller font

Show document Help

Title:Human beta cell functional adaptation and dysfunction in insulin resistance and its reversibility
Authors:ID Skelin, Maša (Author)
ID Kopecky, Jan (Author)
ID Dolenšek, Jurij (Author)
ID Stožer, Andraž (Author)
Files:.pdf Klemen-2023-Human_Beta_Cell_Functional_Adaptat.pdf (387,53 KB)
MD5: 27AFDFAC50C4E8BFD7E3DE19A448B7AE
 
URL https://doi.org/10.1159/000534667
 
Language:English
Work type:Scientific work
Typology:1.03 - Other scientific articles
Organization:MF - Faculty of Medicine
FNM - Faculty of Natural Sciences and Mathematics
Abstract:Background: Beta cells play a key role in the pathophysiology of diabetes since their functional adaptation is able to maintain euglycemia in the face of insulin resistance, and beta cell decompensation or dysfunction is a necessary condition for full-blown type 2 diabetes (T2D). The mechanisms behind compensation and decompensation are incompletely understood, especially for human beta cells, and even less is known about influences of chronic kidney disease (CKD) or immunosupressive therapy after transplantation on these processes and the development of posttransplant diabetes. Summary: During compensation, beta cell sensitivity to glucose becomes left-shifted, i.e., their sensitivity to stimulation increases, and this is accompanied by enhanced signals along the stimulus-secretion coupling cascade from membrane depolarization to intracellular calcium and the most distal insulin secretion dynamics. There is currently no clear evidence regarding changes in intercellular coupling during this stage of disease progression. During decompensation, intracellular stimulus-secretion coupling remains enhanced to some extent at low or basal glucose concentrations but seems to become unable to generate effective signals to stimulate insulin secretion at high or otherwise stimulatory glucose concentrations. Additionally, intercellular coupling becomes disrupted, lowering the number of cells that contribute to secretion. During progression of CKD, beta cells also seem to drift from a compensatory left-shift to failure, and immunosupressants can further impair beta cell function following kidney transplantation. Key Messages: Beta cell stimulus-secretion coupling is enhanced in compensated insulin resistance. With worsening insulin resistance, both intra- and intercellular coupling become disrupted. CKD can progressively disrupt beta cell function, but further studies are needed, especially regarding changes in intercellular coupling.
Keywords:human beta cell, functional adaptation, dysfunction, insulin resistance
Publication status:Published
Publication version:Version of Record
Submitted for review:31.03.2023
Article acceptance date:07.10.2023
Publication date:26.10.2023
Publisher:S. Karger
Year of publishing:2023
Number of pages:Str. 78-84
Numbering:Letn. 148, Št. 2
PID:20.500.12556/DKUM-88311 New window
UDC:612
ISSN on article:2235-3186
COBISS.SI-ID:173873411 New window
DOI:10.1159/000534667 New window
Publication date in DKUM:15.04.2024
Views:404
Downloads:149
Metadata:XML DC-XML DC-RDF
Categories:Misc.
:
Copy citation
  
Average score:(0 votes)
Your score:Voting is allowed only for logged in users.
Share:Bookmark and Share



Hover the mouse pointer over a document title to show the abstract or click on the title to get all document metadata.

Record is a part of a journal

Title:Nephron journals
Shortened title:Nephron J.
Publisher:S. Karger
ISSN:2235-3186
COBISS.SI-ID:527697945 New window

Licences

License:CC BY-NC 4.0, Creative Commons Attribution-NonCommercial 4.0 International
Link:http://creativecommons.org/licenses/by-nc/4.0/
Description:A creative commons license that bans commercial use, but the users don’t have to license their derivative works on the same terms.
Licensing start date:26.10.2023

Secondary language

Language:Slovenian
Keywords:človeške beta celice, funkcionalne prilagoditve, disfunkcija, inzulinska rezistenca


Comments

Leave comment

You must log in to leave a comment.

Comments (0)
0 - 0 / 0
 
There are no comments!

Back
Logos of partners University of Maribor University of Ljubljana University of Primorska University of Nova Gorica