Molecular Basis of Orb2 Amyloidogenesis and Blockade of Memory Consolidation

Rubén Hervás(Instituto Cajal), Liying Li(Stowers Institute for Medical Research), Amitabha Majumdar(National Brain Research Centre), María del Carmen Fernández‐Ramírez(Instituto Cajal), Jay R. Unruh(Stowers Institute for Medical Research), Brian D. Slaughter(Stowers Institute for Medical Research), Albert Galera‐Prat(Instituto Cajal), Elena Santana(Instituto Cajal), Mari Suzuki(National Center of Neurology and Psychiatry), Yoshitaka Nagai(Japan Science and Technology Agency), Marta Bruix(Instituto de Química Física Blas Cabrera), Sergio Casas‐Tintó(Instituto Cajal), Margarita Menéndez(Instituto de Química Física Blas Cabrera), Douglas V. Laurents(Instituto de Química Física Blas Cabrera), Kausik Si(University of Kansas Medical Center), Mariano Carrión‐Vázquez(Madrid Institute for Advanced Studies)
PLoS Biology
January 26, 2016
Cited by 98Open Access
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Abstract

Amyloids are ordered protein aggregates that are typically associated with neurodegenerative diseases and cognitive impairment. By contrast, the amyloid-like state of the neuronal RNA binding protein Orb2 in Drosophila was recently implicated in memory consolidation, but it remains unclear what features of this functional amyloid-like protein give rise to such diametrically opposed behaviour. Here, using an array of biophysical, cell biological and behavioural assays we have characterized the structural features of Orb2 from the monomer to the amyloid state. Surprisingly, we find that Orb2 shares many structural traits with pathological amyloids, including the intermediate toxic oligomeric species, which can be sequestered in vivo in hetero-oligomers by pathological amyloids. However, unlike pathological amyloids, Orb2 rapidly forms amyloids and its toxic intermediates are extremely transient, indicating that kinetic parameters differentiate this functional amyloid from pathological amyloids. We also observed that a well-known anti-amyloidogenic peptide interferes with long-term memory in Drosophila. These results provide structural insights into how the amyloid-like state of the Orb2 protein can stabilize memory and be nontoxic. They also provide insight into how amyloid-based diseases may affect memory processes.


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