Alzheimer’s disease (AD) is characterized by progressive metabolic failure, impaired mitochondrial function, and diminished adaptive stress responses, highlighting the need for disease-modifying therapies that restore cellular resilience rather than target downstream pathology. Here, we report the discovery and preclinical validation of C273, a translationally optimized, brain-penetrant mitochondrial complex I (mtCI) modulator developed through medicinal chemistry optimization of our first-generation compounds. C273 retained nanomolar neuroprotective activity against Aβ-induced toxicity while exhibiting favorable drug-like properties, including high oral bioavailability, efficient brain penetration, microsomal stability, minimal CYP and off-target pharmacology liabilities, and selective mild modulation of mtCI. Mechanistic studies demonstrated that C273 activated AMP-activated protein kinase (AMPK) and coordinated antioxidant, autophagic, anti-inflammatory, and mitochondrial quality-control pathways in cultured cells and mouse brain. These responses were absent in AMPKα1/α2-deficient cells, establishing AMPK as an essential mediator, while rotenone pretreatment abolished C273-mediated neuroprotection, supporting engagement of the mtCI quinone-binding site. Repeated administration to wild-type mice for 30 days produced no detectable cardiac or hepatic toxicity. Importantly, C273 activated the same neuroprotective pathways and reduced Aβ and p-Tau levels in induced pluripotent stem cell-derived cerebral organoids from patients with sporadic AD. Together, these findings establish mild modulation of mtCI as a therapeutic strategy to restore metabolic resilience and identify C273 as a promising disease-modifying candidate for AD treatment.
Sergey Trushin, Thi Kim Oanh Nguyen, Mark Ostroot et al.· npj Drug Discovery· 0 citations
Identification of gene expression changes in post-mortem brain tissue of Alzheimer’s disease donors compared to controls have implicated numerous biological pathways for Alzheimer’s disease pathophysiology. Nonetheless, there is still limited understanding of how gene expression dysregulation underpins specific proteinopathies core to Alzheimer’s disease. Here we investigate brain transcriptomic changes in a well characterized cohort of Alzheimer’s disease donors to identify genes and networks that associate with Alzheimer’s disease endophenotypes including neuropathology measures (Braak stage, Thal phase and cerebral amyloid angiopathy score) and Alzheimer’s disease-related brain protein levels (Apolipoprotein E, Amyloid-β 40, Amyloid-β 42, tau, and phospho-Tau).
Bulk transcriptome measures were collected from the temporal cortex tissue of 477 Alzheimer’s disease donors. Following quality control, transcriptome-wide association studies were performed for each endophenotype. We used weighted gene co-expression network analysis to build co-expression networks and integrated transcriptome with epigenetic and genetic data from the same donors.
We detected a total of 5,740 Bonferroni significant temporal cortex gene associations with Alzheimer’s disease endophenotypes, most of which were with brain tau levels. We discovered tau-associated co-expression modules enriched in known and novel Alzheimer’s disease pathways. We found that a beneficial (or neutral) brain biochemical state of higher total tau and lower phospho-Tau are associated with increased levels of synaptic, DNA damage/repair, nucleic acid metabolism and myelin processes. In contrast, in a detrimental state of lower total and higher phospho-Tau, there is upregulation of vascular and immune, and downregulation of mitochondrial and myelin pathways.
There are brain gene expression perturbations that are associated with Alzheimer’s disease endophenotypes. While some of these associations are common across multiple endophenotypes, many are distinct for different Alzheimer’s disease-related proteins. Based on these findings, we propose a hypothetical model of dynamic brain gene expression changes that track with progressive Alzheimer’s disease proteostasis. These expression changes hold potential to serve as dynamic, precision biomarkers of brain Alzheimer’s disease progression. This study demonstrates the potential of integrative multiomics and deep Alzheimer’s disease endophenotype analyses in well-characterized brain tissues to uncover with precision the complex biology of Alzheimer’s disease.
Stephanie R. Oatman, Zachary S. Quicksall, Xue Wang et al.· Brain Communications· 0 citations
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