Key result
Type 1 diabetes in youth is linked to ~3-5 m/s slower peripheral nerve conduction.
Why the study?
Nerve conduction speed abnormalities are early signs of diabetic peripheral neuropathy, but the impact of metabolic control and other determinants on NCS in children with type 1 diabetes mellitus is unclear.
Does type 1 diabetes mellitus and its metabolic control parameters affect nerve conduction speed in children and young adults?
Cross-Sectional (n=54)
No
Does type 1 diabetes mellitus and its metabolic control parameters affect nerve conduction speed in children and young adults?
Effect estimate: drop of 3-5 m/s
p-value: p=<0.0001
Children and young adults with type 1 diabetes exhibit a reduced nerve conduction speed that is partly independent of metabolic control, though high glucose variability increases the risk of neuropathy.
Glucose variability associated with slower NCV independent of HbA1c; leaves open whether targeting fluctuations prevents neuropathy in youth with T1D.
Background/Aim Nerve conduction speed (NCS) abnormalities are considered to be early signs of diabetic peripheral neuropathy. We investigated which determinants impact the NCS and how it is related to markers of metabolic control in children and young adults with diabetes mellitus. Method Fifty-four children aged five to 23 years suffering from type I diabetes mellitus were recruited into this study, which was conducted at the Children’s Hospital of Eastern Switzerland in St Gallen from March 2016 to June 2022. The metabolic control parameters were recorded and a nerve conduction study analyzing three motor nerves and one sensory nerve was performed. The data were compared to a control population of healthy children of the same height, and the height-adjusted NCS (dNCS) was analysed. Results For all four nerves under investigation, a statistically significant drop in the NCS of approximately 5 m/s independent of metabolic control was found, the peroneal nerve being the most sensitive. The NCS of the peroneal nerve correlated significantly negatively with the long-term haemoglobin with bound glucose (HbA1c) and highly significantly negatively with the standard deviation of mean glucose (SD), but there was only a trend with the HbA1c and the time in range (TIR) at the time of neurography. Interpretation All patients with diabetes mellitus showed a reduced NCS, partly independent of metabolic control. This may be due to a lack of the C-peptide, which regulates critical axonal membrane enzymes. High glucose variability clearly increases the risk of neuropathy, together with but also independently of the mean plasma glucose level.
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Oberhauser et al. (2022) conducted a cross-sectional in Type 1 diabetes mellitus (n=54). Type 1 diabetes mellitus vs. Healthy children of the same height was evaluated on Height-adjusted nerve conduction speed (dNCS) (drop of 3-5 m/s, p=<0.0001). Type 1 diabetes mellitus in children and young adults was associated with a statistically significant reduction in peripheral nerve conduction speed of 3 to 5 m/s compared to healthy controls.
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