Intrinsic molecular susceptibility underlies selective neuronal vulnerability in the Alzheimer’s disease entorhinal cortex

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Abstract

Entorhinal cortex (EC) excitatory neurons are lost early in Alzheimer’s disease (AD), yet the specific subtype and characteristics contributing to this vulnerability are poorly understood. Combining imaging mass cytometry (206,913 cells; 62 donors) and single nucleus RNA sequencing (42,780 nuclei; 36 donors) of post-mortem EC, we found that calbindin-expressing layer 2-3 excitatory neurons accumulate high phospho-tau burden and are preferentially lost in AD. In non-diseased brains, these neurons exhibit elevated tau-modifying kinase expression (ERK1/2, FYN, ROCK), reduced phosphatase expression (PP2A/B, PP5) and low mitochondrial respiratory capacity which together are predicted to promote high vulnerability to tau pathology. Trajectory analysis resolved progression from homeostasis through DNA damage and proteostatic stress to developmental re-entry and death priming. In silico screening suggested histone deacetylase inhibitors and cyclooxygenase inhibitors as candidate resilience-promoting therapeutics. Our work thus reframes intrinsic features of neuronal identity promoting phospho-tau formation as modifiable determinants of the selective vulnerability of EC calbindin neurons.

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