Native-state proteomics of Parvalbumin interneurons identifies unique molecular signatures and vulnerabilities to early Alzheimer's pathology.
Prateek KumarAnnie M GoettemoellerClaudia Espinosa-GarciaBrendan R TobinAli TfailyRuth S NelsonAditya NatuEric B DammerJuliet V SantiagoSneha MalepatiLihong ChengHailian XiaoDuc D DuongNicholas T SeyfriedLevi B WoodMatthew M J RowanSrikant RangarajuPublished in: Nature communications (2024)
Dysfunction in fast-spiking parvalbumin interneurons (PV-INs) may represent an early pathophysiological perturbation in Alzheimer's Disease (AD). Defining early proteomic alterations in PV-INs can provide key biological and translationally-relevant insights. We used cell-type-specific in-vivo biotinylation of proteins (CIBOP) coupled with mass spectrometry to obtain native-state PV-IN proteomes. PV-IN proteomic signatures include high metabolic and translational activity, with over-representation of AD-risk and cognitive resilience-related proteins. In bulk proteomes, PV-IN proteins were associated with cognitive decline in humans, and with progressive neuropathology in humans and the 5xFAD mouse model of Aβ pathology. PV-IN CIBOP in early stages of Aβ pathology revealed signatures of increased mitochondria and metabolism, synaptic and cytoskeletal disruption and decreased mTOR signaling, not apparent in whole-brain proteomes. Furthermore, we demonstrated pre-synaptic defects in PV-to-excitatory neurotransmission, validating our proteomic findings. Overall, in this study we present native-state proteomes of PV-INs, revealing molecular insights into their unique roles in cognitive resiliency and AD pathogenesis.
Keyphrases
- cognitive decline
- mass spectrometry
- genome wide
- mild cognitive impairment
- mouse model
- label free
- multiple sclerosis
- oxidative stress
- high resolution
- white matter
- cell death
- cell proliferation
- dna methylation
- resting state
- social support
- gene expression
- high performance liquid chromatography
- diffusion weighted imaging
- functional connectivity
- blood brain barrier
- endoplasmic reticulum
- tandem mass spectrometry
- gas chromatography
- capillary electrophoresis