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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.
Abstract:
Alzheimer's disease (AD) is the most common reason for elderly dementia in the world. We proposed that memory loss in AD is related to destabilization of mushroom postsynaptic spines involved in long-term memory storage. We demonstrated previously that stromal interaction molecule 2 (STIM2)-regulated neuronal store-operated calcium entry (nSOC) in postsynaptic spines play a key role in stability of mushroom spines by maintaining activity of synaptic Ca(2+)/calmodulin kinase II (CaMKII). Furthermore, we demonstrated previously that the STIM2-nSOC-CaMKII pathway is downregulated in presenilin 1 M146V knock-in (PS1-M146V KI) mouse model of AD, leading to loss of hippocampal mushroom spines in this model. In the present study, we demonstrate that hippocampal mushroom postsynaptic spines are also lost in amyloid precursor protein knock-in (APPKI) mouse model of AD. We demonstrated that loss of mushroom spines occurs as a result of accumulation of extracellular β-amyloid 42 in APPKI culture media. Our results indicate that extracellular Aβ42 acts by overactivating mGluR5 receptor in APPKI neurons, leading to elevated Ca(2+) levels in endoplasmic reticulum, compensatory downregulation of STIM2 expression, impaired synaptic nSOC, and reduced CaMKII activity. Pharmacological inhibition of mGluR5 or overexpression of STIM2 rescued synaptic nSOC and prevented mushroom spine loss in APPKI hippocampal neurons. Our results indicate that downregulation of synaptic STIM2-nSOC-CaMKII pathway causes loss of mushroom synaptic spines in both presenilin and APPKI mouse models of AD. We propose that modulators/activators of this pathway may have a potential therapeutic value for treatment of memory loss in AD. Significance statement: A direct connection between amyloid-induced synaptic mushroom spine loss and neuronal store-operated calcium entry pathway is shown. These results provide strong support for the calcium hypothesis of neurodegeneration and further validate the synaptic store-operated calcium entry pathway as a potential therapeutic target for Alzheimer's disease.
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.
Related Concept Videos
Alzheimer Disease l: Introduction
Alzheimer Disease ll: Pathophysiology

