The STIM1/2-Regulated Calcium Homeostasis Is Impaired in Hippocampal Neurons of the 5xFAD Mouse Model of Alzheimer's Disease

Int J Mol Sci. 2022 Nov 26;23(23):14810. doi: 10.3390/ijms232314810.

Abstract

Alzheimer's disease (AD) is the most common cause of age-related dementia. Neuronal calcium homeostasis impairment may contribute to AD. Here we demonstrated that voltage-gated calcium (VGC) entry and store-operated calcium (SOC) entry regulated by calcium sensors of intracellular calcium stores STIM proteins are affected in hippocampal neurons of the 5xFAD transgenic mouse model. We observed excessive SOC entry in 5xFAD mouse neurons, mediated by STIM1 and STIM2 proteins with increased STIM1 contribution. There were no significant changes in cytoplasmic calcium level, endoplasmic reticulum (ER) bulk calcium levels, or expression levels of STIM1 or STIM2 proteins. The potent inhibitor BTP-2 and the FDA-approved drug leflunomide reduced SOC entry in 5xFAD neurons. In turn, excessive voltage-gated calcium entry was sensitive to the inhibitor of L-type calcium channels nifedipine but not to the T-type channels inhibitor ML218. Interestingly, the depolarization-induced calcium entry mediated by VGC channels in 5xFAD neurons was dependent on STIM2 but not STIM1 protein in cells with replete Ca2+ stores. The result gives new evidence on the VGC channel modulation by STIM2. Overall, the data demonstrate the changes in calcium signaling of hippocampal neurons of the AD mouse model, which precede amyloid plaque accumulation or other signs of pathology manifestation.

Keywords: 5xFAD; Alzheimer’s disease; BTP-2; STIM1; STIM2; calcium hypothesis; hippocampal cultures; leflunomide; nifedipine; store-operated calcium entry; voltage-gated calcium entry.

MeSH terms

  • Alzheimer Disease*
  • Animals
  • Calcium Channels, L-Type / metabolism
  • Calcium Signaling / physiology
  • Calcium* / metabolism
  • Disease Models, Animal
  • Mice
  • Stromal Interaction Molecule 1 / genetics
  • Stromal Interaction Molecule 1 / metabolism
  • Stromal Interaction Molecule 2 / metabolism

Substances

  • Calcium
  • Stromal Interaction Molecule 1
  • Stromal Interaction Molecule 2
  • Calcium Channels, L-Type
  • Stim1 protein, mouse