Search bioRxiv⌕ Search

Biology subjects

Hallbeck, M.

Publications and source records attributed to Hallbeck, M..

2 recordsLinked to original sources

Alternative splicing generates a Ribosomal Protein S24 isoform induced by neuroinflammation and neurodegeneration

Neuroinflammation, particularly that involving reactive microglia, the brains resident immune cells, is implicated in the pathogenesis of major neurodegenerative diseases. However, early markers of this process are in high demand. Multiple studies have reported changes in ribosomal protein (RP) expression during neurodegeneration, but the significance of these changes remains unclear. Ribosomes are evolutionarily conserved protein synthesizing machines, and although commonly viewed as invariant, accumulating evidence suggest functional ribosome specialization through variation in their protein composition. By analyzing cell type-specific translating mRNAs from mouse brains, we identify distinct RP expression patterns between neurons, astrocytes, and microglia, including neuron-specific RPs, Rpl13a and Rps10. We also observed complex expression relationships between RP paralogs and their canonical counterparts, suggesting regulated mechanisms for generating heterogeneous ribosomes. Analysis across brain regions revealed that Rplp0 and Rpl13a, commonly used normalization references, show heterogeneous expression, raising important methodological considerations for gene expression studies. Importantly, we show that Rps24, an essential ribosome component that undergoes alternative splicing to produce protein variants with different C-termini, exhibits striking cell type-specific isoform expression in brain. The Rps24c isoform is predominantly expressed in microglia and is increased by neuroinflammation caused by aging, neurodegeneration, or inflammatory chemicals. We verify increased expression of S24-PKE, the protein variant encoded by Rps24c, in brains with Alzheimers disease, Parkinsons disease, and Huntingtons disease, and relevant mouse models, using isoform-specific antibodies. These findings establish heterogeneous RP expression as a feature of brain cell types and identify Rps24c/S24-PKE as a novel marker for neuroinflammation and neurodegeneration.

neuroscience↗

Enhancing Retromer Complex Stability Ameliorates Synaptic Dysfunction in a Mouse Model ofAlzheimer's Disease

Synaptic dysfunction is an early hallmark of Alzheimers disease, characterized by the disruption of synaptic transmission and plasticity. Central to these processes is endosomal trafficking, mediated by the retromer complex, which orchestrates the movement of vesicle contents for recycling to the plasma membrane, return to the Golgi, or degradation. Variants of VPS35, the cargo recognition component of the retromer complex, have been linked to neurodegenerative diseases, including Parkinsons disease (PARK17, D620N mutation) and Alzheimers disease (L625P mutation). While substantial research has focused on Parkinsons, the role of VPS35 in Alzheimers has been less explored. This study investigates the acute neuroprotective effects of retromer-stabilizing compounds in the 5xFAD mouse model of Alzheimers. Our results reveal that stabilization of the retromer complex not only mitigates pathogenic A{beta} production mechanisms but also compensates for early synaptic dysfunction and microglial activation. Specifically, we observed significant modulation of genes involved in long-term potentiation and a reduction in abnormal retromer-associated cargos. These findings highlight the potential of retromer stabilisation as atherapeutic strategy to address fundamental pathological pathological processes in Alzheimers disease.

neuroscience↗