dc.contributor.author
Leal Julia, Marc
dc.contributor.author
Vilches Herráez, Jorge Juan
dc.contributor.author
Onieva Salgado, Andrea
dc.contributor.author
Verdés, Sergi
dc.contributor.author
Sánchez, Ángela
dc.contributor.author
Chillón Rodríguez, Miguel
dc.contributor.author
Navarro, X. (Xavier)
dc.contributor.author
Bosch i Merino, Assumpció
dc.identifier
https://ddd.uab.cat/record/250533
dc.identifier
urn:10.1016/j.molmet.2021.101408
dc.identifier
urn:oai:ddd.uab.cat:250533
dc.identifier
urn:articleid:22128778v55a101408
dc.identifier
urn:pmcid:PMC8717603
dc.identifier
urn:pmc-uid:8717603
dc.identifier
urn:pmid:34856394
dc.identifier
urn:oai:pubmedcentral.nih.gov:8717603
dc.identifier
urn:oai:egreta.uab.cat:publications/b70fbe55-e6e3-42e8-b08a-6c37b79f36b5
dc.identifier
urn:scopus_id:85121716174
dc.description.abstract
Peripheral neuropathy is the most common and debilitating complication of type 2 diabetes, leading to sensory loss, dysautonomia, hyperalgesia, and spontaneous noxious sensations. Despite the clinical and economic burden of diabetic neuropathy, no effective treatment is available. More preclinical research must be conducted in order to gain further understanding of the aetiology of the disease and elucidate new therapeutic targets. The proteome of lumbar dorsal root ganglia and sciatic nerve of BKS- db/db mice, which contain a mutation of the leptin receptor and are an established type 2 diabetes model, was characterized for the first time by tandem mass tag labelling and mass spectrometry analysis. Proteomic analysis showed differentially expressed proteins grouped into functional clusters in db/db peripheral nerves compared to control mice, underlining reduced glycolytic and TCA cycle metabolism, higher lipid catabolism, upregulation of muscle-like proteins in DRG and downregulation in SCN, increased cytoskeleton-related proteins, a mild dysregulation of folding chaperones, activation of acute-phase and inflammatory response, and alterations in glutathione metabolism and oxidative stress related proteins. Our data validate previous transcriptomic and metabolomic results and uncover new pathways altered in diabetic neuropathy. Our results point out that energetic deficiency could represent the main mechanism of neurodegeneration observed in diabetic neuropathy. These findings may provide important information to select appropriate targets to develop new therapeutic strategies.
dc.format
application/pdf
dc.relation
Molecular metabolism ; Vol. 55 (november 2021)
dc.rights
Aquest document està subjecte a una llicència d'ús Creative Commons. Es permet la reproducció total o parcial, la distribució, i la comunicació pública de l'obra, sempre que no sigui amb finalitats comercials, i sempre que es reconegui l'autoria de l'obra original. No es permet la creació d'obres derivades.
dc.rights
https://creativecommons.org/licenses/by-nc-nd/4.0/
dc.subject
Dorsal root ganglia
dc.title
Proteomic quantitative study of dorsal root ganglia and sciatic nerve in type 2 diabetic mice