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Presynaptic Aβ40 prevents synapse addition in the adult Drosophila neuromuscular junction

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  • Begoña López-Arias
  • Enrique Turiégano
  • Ignacio Monedero
  • Inmaculada Canal
  • Laura Torroja

Abstract

Complexity in the processing of the Amyloid Precursor Protein, which generates a mixture of βamyloid peptides, lies beneath the difficulty in understanding the etiology of Alzheimer’s disease. Moreover, whether Aβ peptides have any physiological role in neurons is an unresolved question. By expressing single, defined Aβ peptides in Drosophila, specific effects can be discriminated in vivo. Here, we show that in the adult neuromuscular junction (NMJ), presynaptic expression of Aβ40 hinders the synaptic addition that normally occurs in adults, yielding NMJs with an invariable number of active zones at all ages tested. A similar trend is observed for Aβ42 at young ages, but net synaptic loss occurs at older ages in NMJs expressing this amyloid species. In contrast, Aβ42arc produces net synaptic loss at all ages tested, although age-dependent synaptic variations are maintained. Inhibition of the PI3K synaptogenic pathway may mediate some of these effects, because western analyses show that Aβ peptides block activation of this pathway, and Aβ species-specific synaptotoxic effects persists in NMJs overgrown by over-expression of PI3K. Finally, individual Aβ effects are also observed when toxicity is examined by quantifying neurodegeneration and survival. Our results suggest a physiological effect of Aβ40 in synaptic plasticity, and imply different toxic mechanisms for each peptide species.

Suggested Citation

  • Begoña López-Arias & Enrique Turiégano & Ignacio Monedero & Inmaculada Canal & Laura Torroja, 2017. "Presynaptic Aβ40 prevents synapse addition in the adult Drosophila neuromuscular junction," PLOS ONE, Public Library of Science, vol. 12(5), pages 1-22, May.
  • Handle: RePEc:plo:pone00:0177541
    DOI: 10.1371/journal.pone.0177541
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    1. Dominic M. Walsh & Igor Klyubin & Julia V. Fadeeva & William K. Cullen & Roger Anwyl & Michael S. Wolfe & Michael J. Rowan & Dennis J. Selkoe, 2002. "Naturally secreted oligomers of amyloid β protein potently inhibit hippocampal long-term potentiation in vivo," Nature, Nature, vol. 416(6880), pages 535-539, April.
    2. Sylvain Lesné & Ming Teng Koh & Linda Kotilinek & Rakez Kayed & Charles G. Glabe & Austin Yang & Michela Gallagher & Karen H. Ashe, 2006. "A specific amyloid-β protein assembly in the brain impairs memory," Nature, Nature, vol. 440(7082), pages 352-357, March.
    3. Jae-Seong Yang & Hyun-Jun Nam & Mihwa Seo & Seong Kyu Han & Yonghwan Choi & Hong Gil Nam & Seung-Jae Lee & Sanguk Kim, 2011. "OASIS: Online Application for the Survival Analysis of Lifespan Assays Performed in Aging Research," PLOS ONE, Public Library of Science, vol. 6(8), pages 1-11, August.
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