Neuronal Store-Operated Calcium Entry and Mushroom Spine Loss in Amyloid Precursor Protein Knock-In Mouse Model of

Hua Zhang1, Lili Wu1, Ekaterina Pchitskaya2

  • 1Department of Physiology, University of Texas Southwestern Medical Center, Dallas, Texas 75390.

Insights

Alzheimer's disease causes memory loss by destabilizing mushroom spines. The study links this to impaired store-operated calcium entry (nSOC) and proposes targeting this pathway for treatment.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Molecular Biology

Background:

  • Alzheimer's disease (AD) is a leading cause of dementia, characterized by memory loss.
  • Memory loss in AD is linked to the destabilization of mushroom postsynaptic spines crucial for long-term memory.
  • The stromal interaction molecule 2 (STIM2)-regulated neuronal store-operated calcium entry (nSOC) pathway is vital for spine stability via CaMKII activity.

Purpose of the Study:

  • To investigate the role of the STIM2-nSOC-CaMKII pathway in Alzheimer's disease models.
  • To determine if extracellular beta-amyloid 42 (Aβ42) impacts mushroom spine stability in AD.
  • To explore therapeutic strategies targeting the STIM2-nSOC-CaMKII pathway for AD treatment.

Main Methods:

  • Utilized presenilin 1 M146V knock-in (PS1-M146V KI) and amyloid precursor protein knock-in (APPKI) mouse models of AD.
  • Investigated the effects of extracellular Aβ42 on mushroom postsynaptic spines in APPKI neurons.
  • Examined the role of mGluR5 receptor activation and STIM2 expression in regulating synaptic nSOC and CaMKII activity.
  • Assessed the impact of pharmacological mGluR5 inhibition and STIM2 overexpression on spine stability.

Main Results:

  • Hippocampal mushroom postsynaptic spines are lost in both PS1-M146V KI and APPKI mouse models of AD.
  • Extracellular Aβ42 accumulation in APPKI cultures leads to mushroom spine loss.
  • Aβ42 overactivates mGluR5, causing ER calcium overload, STIM2 downregulation, impaired nSOC, and reduced CaMKII activity.
  • Inhibition of mGluR5 or overexpression of STIM2 rescued nSOC and prevented spine loss in APPKI neurons.

Conclusions:

  • Downregulation of the STIM2-nSOC-CaMKII pathway is a common mechanism for mushroom spine loss in AD mouse models.
  • Extracellular Aβ42 contributes to AD-related spine loss by disrupting this critical calcium signaling pathway.
  • Modulators or activators of the STIM2-nSOC-CaMKII pathway represent potential therapeutic targets for treating memory loss in Alzheimer's disease.