Dual PINK Mutant and A<i>β</i>42-Dependent Lifespan Shorten and Flight Impairment in Transgenic Drosophila Partially Alleviates by a <i>Lactococcus lactis</i> Supplemented Diet — Oak Academic Publishing
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Dual PINK Mutant and A<i>β</i>42-Dependent Lifespan Shorten and Flight Impairment in Transgenic Drosophila Partially Alleviates by a <i>Lactococcus lactis</i> Supplemented Diet
Korean Minjok Leadership Academy, Hoengseong-Gun, Republic of Korea
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Korean Minjok Leadership Academy, Hoengseong-Gun, Republic of Korea
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Korean Minjok Leadership Academy, Hoengseong-Gun, Republic of Korea
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Department of Neuropsychiatry, Bundang Hospital of Seoul National University College of Medicine, Biomedical Research Institute, Seongnam City, Republic of Korea
1 Korean Minjok Leadership Academy, Hoengseong-Gun, Republic of Korea
2 Korean Minjok Leadership Academy, Hoengseong-Gun, Republic of Korea
3 Korean Minjok Leadership Academy, Hoengseong-Gun, Republic of Korea
4 Department of Neuropsychiatry, Bundang Hospital of Seoul National University College of Medicine, Biomedical Research Institute, Seongnam City, Republic of Korea
Oxidative stress has been strongly related with Parkinson disease (PD) and Alzheimer disease pathogenesis. We determined the effects of Lactococcus lactis (LAL) supplementation on the generated loss-of-function mutants of PINK1 B9, an AR-JP-linked gene and A β 42 induced phenotypes in a Drosophila melanogaster model of PD/AD. Enhanced mutant PINK1 B9 and A β 42 expression in D. melanogaster dopaminergic (DA) neurons can curtail lifespan, flight muscle accompanied by locomotive defects and we have observed longevity methods to assay the effects of LAL on D. melanogaster survival. Furthermore, flies expressing mutant PINK1 B9 and A β 42 in their brain fed LAL had up to the two weeks, or 25%, greater median lifespan than those fed a standard sucrose diet. In addition, LAL improved mutant PINK1 B9 and A β 42-induced flight impairments in the Drosophila wing. Our microscopy analyses revealed that individuals fed LAL had improved atypical ommatidia as well as an increased thirteen percentage of flight ability than those fed a control diet. We propose that LAL, rich in naturally occurring probiotics and antioxidants, promotes the survival of neurons in brain and wing muscle tissues with increased levels of mutant PINK1 B9 and A β 42 via a protective cell survival mechanism.
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