Nicotinamide Prevents Diabetic Brain Inflammation via NAD+-Dependent Deacetylation Mechanisms

Jeimy Katherine Torres-Méndez1, Julia Niño-Narvión1,2, Patricia Martinez-Santos1

  • 1Institut d'Investigació Biomèdica Sant Pau (IIB Sant Pau), 08041 Barcelona, Spain.

Nutrients
|July 29, 2023
PubMed

Insights

Nicotinamide (NAM) supplementation reduced brain inflammation and microglial activation in a mouse model of type 1 diabetes. This neuroprotective effect was linked to increased NAD+ levels and NAD+-dependent deacetylation mechanisms.

Area of Science:

  • Neuroscience
  • Immunology
  • Metabolism

Background:

  • Type 1 diabetes mellitus (T1D) is associated with increased risk of neurological complications.
  • Brain inflammation and microglial activation are key pathological features in diabetic encephalopathy.
  • Nicotinamide (NAM), a form of vitamin B3, is a precursor to NAD+ and has potential anti-inflammatory properties.

Purpose of the Study:

  • To investigate the efficacy of nicotinamide (NAM) supplementation in mitigating brain inflammation and microglial activation in a mouse model of type 1 diabetes.
  • To explore the underlying molecular mechanisms, including NAD+ metabolism and NFκB signaling pathways.

Main Methods:

  • Type 1 diabetes was induced in C57BL/6J male mice using streptozotocin (STZ).
  • Diabetic mice received low-dose (LD) or high-dose (HD) NAM supplementation for 25 days.
  • Brain tissue was analyzed for NAD+ content, inflammatory markers (TNFα), microglial activation markers (IBA-1, BDKRB1), and NFκB signaling (p65 acetylation).

Main Results:

  • NAM supplementation significantly increased brain NAD+ levels in diabetic mice.
  • NAM treatment markedly reduced markers of inflammation and microglial activation.
  • NFκB (p65) signaling was alleviated, with decreased nuclear p65 and reduced p65 acetylation, inversely correlated with NAD+ content.

Conclusions:

  • Dietary NAM supplementation effectively prevented brain inflammation and microglial activation in a T1D mouse model.
  • The neuroprotective effects are mediated by NAD+-dependent deacetylation mechanisms, suggesting enhanced sirtuin signaling.
  • NAM shows therapeutic potential for managing neuroinflammation in type 1 diabetes.

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