Modulation of the endoplasmic reticulum-mitochondria interface in Alzheimer's disease and related models
Louise Hedskog1, Catarina Moreira Pinho, Riccardo Filadi
1Department of Neurobiology, Care Sciences and Society, Karolinska Institutet-Alzheimer's Disease Research Center, Karolinska Institutet, 141 86 Stockholm, Sweden.
Abstract:
It is well-established that subcompartments of endoplasmic reticulum (ER) are in physical contact with the mitochondria. These lipid raft-like regions of ER are referred to as mitochondria-associated ER membranes (MAMs), and they play an important role in, for example, lipid synthesis, calcium homeostasis, and apoptotic signaling. Perturbation of MAM function has previously been suggested in Alzheimer's disease (AD) as shown in fibroblasts from AD patients and a neuroblastoma cell line containing familial presenilin-2 AD mutation. The effect of AD pathogenesis on the ER-mitochondria interplay in the brain has so far remained unknown. Here, we studied ER-mitochondria contacts in human AD brain and related AD mouse and neuronal cell models. We found uniform distribution of MAM in neurons. Phosphofurin acidic cluster sorting protein-2 and σ1 receptor, two MAM-associated proteins, were shown to be essential for neuronal survival, because siRNA knockdown resulted in degeneration. Up-regulated MAM-associated proteins were found in the AD brain and amyloid precursor protein (APP)Swe/Lon mouse model, in which up-regulation was observed before the appearance of plaques. By studying an ER-mitochondria bridging complex, inositol-1,4,5-triphosphate receptor-voltage-dependent anion channel, we revealed that nanomolar concentrations of amyloid β-peptide increased inositol-1,4,5-triphosphate receptor and voltage-dependent anion channel protein expression and elevated the number of ER-mitochondria contact points and mitochondrial calcium concentrations. Our data suggest an important role of ER-mitochondria contacts and cross-talk in AD pathology.
Insights
Mitochondria-associated ER membranes (MAMs) are crucial for neuronal survival. Alzheimer's disease (AD) pathology involves altered MAMs, with increased contacts and protein expression linked to amyloid-beta peptides.
Area of Science:
- Cell Biology
- Neuroscience
- Biochemistry
Background:
- Endoplasmic reticulum (ER) and mitochondria physically interact at mitochondria-associated ER membranes (MAMs).
- MAMs are vital for lipid synthesis, calcium homeostasis, and apoptosis.
- MAM dysfunction is implicated in Alzheimer's disease (AD), but its role in the brain remains unclear.
Purpose of the Study:
- To investigate the role of ER-mitochondria contacts in AD pathogenesis within the brain.
- To examine MAM-associated protein function and their regulation by AD-related factors.
Main Methods:
- Analysis of ER-mitochondria contacts in human AD brain tissue and AD mouse models.
- siRNA knockdown of MAM-associated proteins (Phosphofurin acidic cluster sorting protein-2 and σ1 receptor).
- Biochemical assays to assess protein expression and mitochondrial calcium levels in response to amyloid-beta.
Main Results:
- MAMs are uniformly distributed in neurons.
- Knockdown of Phosphofurin acidic cluster sorting protein-2 and σ1 receptor led to neuronal degeneration.
- Upregulated MAM-associated proteins were observed in AD brains and an AD mouse model prior to plaque formation.
- Amyloid-beta peptides increased ER-mitochondria contacts, associated protein expression, and mitochondrial calcium levels.
Conclusions:
- ER-mitochondria contacts and MAMs play a significant role in AD pathology.
- Alterations in MAMs and their associated proteins are early events in AD pathogenesis.
- Amyloid-beta peptide directly influences ER-mitochondria communication, impacting neuronal function.
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