Published online Oct 15, 2026. doi: 10.4239/wjd.123730
Revised: July 8, 2026
Accepted: September 4, 2026
Published online: October 15, 2026
Processing time: 130 Days and 20.4 Hours
Painful diabetic neuropathy (PDN) is a common and debilitating complication of diabetes mellitus characterized by chronic pain resulting from peripheral nerve damage. Although PDN substantially impairs quality of life, its underlying mechanisms remain incompletely understood.
To investigate whether preventive carnosine supplementation attenuates PDN-related abnormalities and is associated with alterations in mitochondrial homeo
This study used untargeted metabolomics to analyze dorsal root ganglia (DRG) from rat model of type 2 diabetic neuropathy. Transmission electron microscopy, JC-1 staining, whole-cell patch-clamp recordings, motor and sensory nerve conduction velocity measurements, and molecular analyses were used to evaluate mitochondrial function, neuronal excitability, peripheral nerve function, and inflammasome-related signaling in vivo. Complementary mechanistic studies were performed in high-glucose-stimulated PC12 cells with dynamin-related protein 1 (Drp1) knockdown or overexpression.
In the DRG of rats with PDN, mitochondrial ultrastructural abnormalities, altered expression of fission/fusion-related proteins, and reduced mitochondrial memb
Preventive carnosine supplementation attenuated PDN-related behavioral, electrophysiological, and mitochondrial abnormalities, and was associated with PDN and was associated with reduced Drp1- and NLRP3-related signaling in the DRG. These findings support further preclinical evaluation of carnosine as a potential early-intervention strategy for PDN.
Core Tip: Painful diabetic neuropathy (PDN) is characterized by impaired mitochondrial function and reduced carnosine levels in the dorsal root ganglia. Untargeted me