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Saraiva, M. J.

Publications and source records attributed to Saraiva, M. J..

2 recordsLinked to original sources

AUTOTAC-mediated targeted degradation of transthyretin aggregates ameliorates hereditary transthyretin amyloidosis

Hereditary transthyretin amyloidosis (hATTR) is characterized by extracellular deposition of amyloidogenic transthyretin (TTR) aggregates, yet the mechanisms governing their clearance remains poorly understood. Here, we identify a key role for the N-degron pathway in lysosomal degradation of the pathogenic TTRV30M variant. Misfolded intracellular TTRV30M was rapidly secreted and subsequently re-entered within 24 hours during cell-to-cell trafficking. The molecular chaperone R-BiP--N-terminally (Nt) arginylated HSPA5/BiP/GRP78-- associated with intracellular TTRV30M, and its Nt-arginine functioned as an agonist for the N-recognin sequestosome 1 (SQSTM1/p62). This interaction facilitated p62-dependent autophagosomal sequestration and lysosomal degradation of TTRV30M. To pharmacologically exploit this mechanism, we applied the AUTOTAC (AUTOphagy-TArgeting Chimera) platform, which enables the targeting of substrates to p62 for autophagic clearance. We developed Autotac 201 (ATC201), an 876-Da chimera designed to bind both the T4 pocket of aggregated TTR and p62, thereby promoting selective autophagic degradation. In cultured cells, ATC201 potently reduced intracellular TTRV30M aggregates in a manner depending on p62-mediated autophagy, exhibiting a DC of low nM. In hATTR model mice, ATC201 markedly lowered tissue TTR aggregate burden and restored autophagy pathway flux impaired by aggregate accumulation. Treatment improved nerve conduction parameters and reduced peripheral neuropathy scores, indicating functional rescue. ATC201 also led to preservation of muscle strength and attenuation of systemic amyloid deposition. Our findings reveal that the N-degron pathway orchestrates autophagic removal of TTR aggregates and demonstrate the therapeutic potential of AUTOTAC-based degraders for hATTR and other proteinopathies characterized by pathogenic protein aggregation.

cell biology↗

Transthyretin Levels and Instability in Alzheimer's Disease: Correlations with AD Biomarkers in a Cohort Study

BackgroundIn the last few decades, Transthyretin (TTR) has gained attention due to its implication in brain functions and neurodegenerative conditions, such as Alzheimers Disease (AD) by modulating amyloid-beta (A{beta}) pathology. This study aims to assess TTR levels and tetrameric instability in both plasma and cerebrospinal fluid (CSF) across the clinical continuum of AD, and to establish associations between TTR and key AD biomarkers, to enhance our understanding of the role of TTR in AD pathogenesis. MethodsWe conducted an evaluation of TTR levels and tetrameric instability in plasma and CSF in mild cognitive impairment (MCI-AD, n=29) and Dementia-AD (n=37) patients and examined the association with clinical, biochemical and genetic data. ResultsKey findings revealed a substantial decrease in plasma TTR levels in the Dementia-AD patients compared to the MCI-AD group, with a pronounced gender-specific effect identified in women, while no differences were detected in the CSF. The search for associations identified several correlations amongst MCI-AD patients where CSF TTR levels inversely correlated with markers of amyloid pathology and neurodegeneration such as A{beta}40 (r=-0.43, p < 0.02), p-Tau181 (r=-0.54, p < 0.03), t-Tau (r=-0.57, p< 0.001) and NfL (r=-0.49, p<0.006). CSF TTR instability also correlated negatively with CSF A{beta}42 (r=-0.6, p<0.001) and A{beta}42/A{beta}40 ratio (r=-0.58, p<0.001), indicating an association with increased amyloid burden. In the Dementia-AD group, plasma TTR levels correlated negatively with GFAP (r=-0.4, p<0.014), reflecting potential links with neuroinflammation. Additionally, plasma TTR instability correlated with CSF TTR instability (r=0.42, p < 0.009) and tau pathology markers (p-Tau181 (r=0.38, p < 0.02) and t-Tau (r=0.42, p<0.09)). Given the strong association between CSF TTR instability and A{beta}42, we investigated the effect of the peptide on TTR tetrameric instability and showed a clear increase in TTR instability in samples incubated with A{beta}42 for 24 hours (p<0.05). ConclusionsThis study emphasizes several associations between TTR and other key indicators of AD and suggests TTR is associated with A{beta} clearance, neurodegeneration, and neuroinflammation across different stages of the disease. We propose A{beta}42 and its increase in the brain as a factor destabilizing the TTR tetrameric fold, resulting in TTR impaired function.

neuroscience↗