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  4. Antimicrobial peptides do not directly contribute to aging in Drosophila, but improve lifespan by preventing dysbiosis
 
research article

Antimicrobial peptides do not directly contribute to aging in Drosophila, but improve lifespan by preventing dysbiosis

Hanson, Mark A.  
•
Lemaitre, Bruno  
April 1, 2023
Disease Models & Mechanisms

Antimicrobial peptides (AMPs) are innate immune effectors first studied for their role in host defence. Recent studies have implicated these peptides in the clearance of aberrant cells and in neurodegenerative syndromes. In Drosophila, many AMPs are produced downstream of Toll and Imd NF-?B pathways upon infection. Upon aging, AMPs are upregulated, drawing attention to these molecules as possible causes of age-associated inflammatory diseases. However, functional studies overexpressing or silencing these genes have been inconclusive. Using an isogenic set of AMP gene deletions, we investigated the net impact of AMPs on aging. Overall, we found no major effect of individual AMPs on lifespan, with the possible exception of Defensin. However, ?AMP14 flies lacking seven AMP gene families displayed reduced lifespan. Increased bacterial load in the food of aged ?AMP14 flies suggested that their lifespan reduction was due to microbiome dysbiosis, consistent with a previous study. Moreover, germ-free conditions extended the lifespan of ?AMP14 flies. Overall, our results did not point to an overt role of individual AMPs in lifespan. Instead, we found that AMPs collectively impact lifespan by preventing dysbiosis during aging.

  • Details
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Type
research article
DOI
10.1242/dmm.049965
Web of Science ID

WOS:000994266800002

Author(s)
Hanson, Mark A.  
Lemaitre, Bruno  
Date Issued

2023-04-01

Publisher

COMPANY BIOLOGISTS LTD

Published in
Disease Models & Mechanisms
Volume

16

Issue

4

Article Number

dmm049965

Subjects

Cell Biology

•

Pathology

•

Cell Biology

•

Pathology

•

nf-kappa b

•

aging

•

antimicrobial peptide

•

drosophila

•

host defence peptide

•

inflammation

•

innate immune-response

•

stress resistance

•

gene-expression

•

factor relish

•

host-defense

•

microbiota

•

model

•

phosphatidylserine

•

neurodegeneration

•

melanogaster

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
UPLEM  
Available on Infoscience
June 19, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/198343
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