Inhibiting mtDNA transcript translation alters Alzheimer's disease-associated biology
Alexander P Gabrielli1,2, Lesya Novikova1, Amol Ranjan1
1University of Kansas Alzheimer's Disease Research Center, Kansas City, Kansas, USA.
Introduction:
Alzheimer's disease (AD) features changes in mitochondrial structure and function. Investigators debate where to position mitochondrial pathology within the chronology and context of other AD features.
Methods:
To address whether mitochondrial dysfunction alters AD-implicated genes and proteins, we treated SH-SY5Y cells and induced pluripotent stem cell (iPSC)-derived neurons with chloramphenicol, an antibiotic that inhibits mtDNA-generated transcript translation. We characterized adaptive, AD-associated gene, and AD-associated protein responses.
Results:
SH-SY5Y cells and iPSC neurons responded to mtDNA transcript translation inhibition by increasing mtDNA copy number and transcription. Nuclear-expressed respiratory chain mRNA and protein levels also changed. There were AD-consistent concordant and model-specific changes in amyloid precursor protein, beta amyloid, apolipoprotein E, tau, and α-synuclein biology.
Discussion:
Primary mitochondrial dysfunction induces compensatory organelle responses, changes nuclear gene expression, and alters the biology of AD-associated genes and proteins in ways that may recapitulate brain aging and AD molecular phenomena.
Highlights:
In AD, mitochondrial dysfunction could represent a disease cause or consequence. We inhibited mitochondrial translation in human neuronal cells and neurons. Mitochondrial and nuclear gene expression shifted in adaptive-consistent patterns. APP, Aβ, APOE, tau, and α-synuclein biology changed in AD-consistent patterns. Mitochondrial stress creates an environment that promotes AD pathology.
Insights
Mitochondrial dysfunction in Alzheimer's disease (AD) triggers cellular responses and alters genes and proteins linked to AD pathology. This suggests mitochondrial stress may promote AD development.
Area of Science:
- Neuroscience
- Cell Biology
- Genetics
Background:
- Alzheimer's disease (AD) is characterized by mitochondrial structural and functional alterations.
- The precise role of mitochondrial pathology in the AD timeline remains debated.
Purpose of the Study:
- To investigate if mitochondrial dysfunction influences genes and proteins implicated in AD.
- To explore the cellular and molecular responses to inhibited mitochondrial translation.
Main Methods:
- Human neuronal cells (SH-SY5Y) and induced pluripotent stem cell (iPSC)-derived neurons were treated with chloramphenicol.
- Chloramphenicol inhibits the translation of mitochondrial DNA (mtDNA)-encoded transcripts.
- Adaptive, AD-associated gene, and AD-associated protein responses were characterized.
Main Results:
- Inhibition of mitochondrial translation led to increased mtDNA copy number and transcription in cells.
- Changes were observed in nuclear-expressed respiratory chain mRNA and protein levels.
- Consistent with AD, alterations were noted in amyloid precursor protein (APP), beta-amyloid (Aβ), apolipoprotein E (APOE), tau, and α-synuclein biology.
Conclusions:
- Primary mitochondrial dysfunction can induce compensatory organelle responses and alter nuclear gene expression.
- These mitochondrial-induced changes may mimic molecular phenomena observed in brain aging and AD.
- Mitochondrial stress can create an environment conducive to AD pathology, suggesting it could be a cause or consequence.
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