An Evolutionarily Conserved Role of Presenilin in Neuronal Protection in the Aging Drosophila Brain

Author:

Kang Jongkyun1,Shin Sarah1,Perrimon Norbert23,Shen Jie14

Affiliation:

1. Department of Neurology, Brigham and Women’s Hospital, Harvard Medical School, Boston, Massachusetts 02115

2. Department of Genetics, Harvard Medical School, Boston, Massachusetts 02115

3. Howard Hughes Medical Institute, Harvard Medical School, Boston, Massachusetts 02115

4. Program in Neuroscience, Harvard Medical School, Boston, Massachusetts 02115

Abstract

Abstract Mutations in the Presenilin genes are the major genetic cause of Alzheimer’s disease. Presenilin and Nicastrin are essential components of γ-secretase, a multi-subunit protease that cleaves Type I transmembrane proteins. Genetic studies in mice previously demonstrated that conditional inactivation of Presenilin or Nicastrin in excitatory neurons of the postnatal forebrain results in memory deficits, synaptic impairment, and age-dependent neurodegeneration. The roles of Drosophila Presenilin (Psn) and Nicastrin (Nct) in the adult fly brain, however, are unknown. To knockdown (KD) Psn or Nct selectively in neurons of the adult brain, we generated multiple shRNA lines. Using a ubiquitous driver, these shRNA lines resulted in 80–90% reduction of mRNA and pupal lethality—a phenotype that is shared with Psn and Nct mutants carrying nonsense mutations. Furthermore, expression of these shRNAs in the wing disc caused notching wing phenotypes, which are also shared with Psn and Nct mutants. Similar to Nct, neuron-specific Psn KD using two independent shRNA lines led to early mortality and rough eye phenotypes, which were rescued by a fly Psn transgene. Interestingly, conditional KD (cKD) of Psn or Nct in adult neurons using the elav-Gal4 and tubulin-Gal80ts system caused shortened lifespan, climbing defects, increases in apoptosis, and age-dependent neurodegeneration. Together, these findings demonstrate that, similar to their mammalian counterparts, Drosophila Psn and Nct are required for neuronal survival during aging and normal lifespan, highlighting an evolutionarily conserved role of Presenilin in neuronal protection in the aging brain.

Publisher

Oxford University Press (OUP)

Subject

Genetics

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