A genomic safe haven for mutant complementation in Cryptococcus neoformans.

Just as Koch's postulates formed the foundation of early infectious disease study, Stanley Falkow's molecular Koch's postulates define best practice in determining whether a specific gene contributes to virulence of a pathogen. Fundamentally, these molecular postulates state that if a...

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Main Authors: Samantha D M Arras, Jessica L Chitty, Kirsten L Blake, Benjamin L Schulz, James A Fraser
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC4391909?pdf=render
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spelling doaj-95f7bb1078e948e59b42de1b59375e1a2020-11-25T02:35:08ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01104e012291610.1371/journal.pone.0122916A genomic safe haven for mutant complementation in Cryptococcus neoformans.Samantha D M ArrasJessica L ChittyKirsten L BlakeBenjamin L SchulzJames A FraserJust as Koch's postulates formed the foundation of early infectious disease study, Stanley Falkow's molecular Koch's postulates define best practice in determining whether a specific gene contributes to virulence of a pathogen. Fundamentally, these molecular postulates state that if a gene is involved in virulence, its removal will compromise virulence. Likewise, its reintroduction should restore virulence to the mutant. These approaches are widely employed in Cryptococcus neoformans, where gene deletion via biolistic transformation is a well-established technique. However, the complementation of these mutants is less straightforward. Currently, one of three approaches will be taken: the gene is reintroduced at the original locus, the gene is reintroduced into a random site in the genome, or the mutant is not complemented at all. Depending on which approach is utilized, the mutant may be complemented but other genes are potentially disrupted in the process. To counter the drawbacks of the current approaches to complementation we have created a new tool to assist in this key step in the study of a gene's role in virulence. We have identified and characterized a small gene-free region in the C. neoformans genome dubbed the "safe haven", and constructed a plasmid vector that targets DNA constructs to this preselected site. The plasmid vector integrates with high frequency, effectively complementing a mutant strain without disrupting adjacent genes. qRT-PCR of the flanking genes on either side of the safe haven site following integration of the targeting vector revealed no changes in their expression, and no secondary phenotypes were observed in a range of phenotypic assays including an intranasal murine infection model. Combined, these data confirm that we have successfully created a much-needed molecular resource for the Cryptococcus community, enabling the reliable fulfillment of the molecular Koch's postulates.http://europepmc.org/articles/PMC4391909?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Samantha D M Arras
Jessica L Chitty
Kirsten L Blake
Benjamin L Schulz
James A Fraser
spellingShingle Samantha D M Arras
Jessica L Chitty
Kirsten L Blake
Benjamin L Schulz
James A Fraser
A genomic safe haven for mutant complementation in Cryptococcus neoformans.
PLoS ONE
author_facet Samantha D M Arras
Jessica L Chitty
Kirsten L Blake
Benjamin L Schulz
James A Fraser
author_sort Samantha D M Arras
title A genomic safe haven for mutant complementation in Cryptococcus neoformans.
title_short A genomic safe haven for mutant complementation in Cryptococcus neoformans.
title_full A genomic safe haven for mutant complementation in Cryptococcus neoformans.
title_fullStr A genomic safe haven for mutant complementation in Cryptococcus neoformans.
title_full_unstemmed A genomic safe haven for mutant complementation in Cryptococcus neoformans.
title_sort genomic safe haven for mutant complementation in cryptococcus neoformans.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description Just as Koch's postulates formed the foundation of early infectious disease study, Stanley Falkow's molecular Koch's postulates define best practice in determining whether a specific gene contributes to virulence of a pathogen. Fundamentally, these molecular postulates state that if a gene is involved in virulence, its removal will compromise virulence. Likewise, its reintroduction should restore virulence to the mutant. These approaches are widely employed in Cryptococcus neoformans, where gene deletion via biolistic transformation is a well-established technique. However, the complementation of these mutants is less straightforward. Currently, one of three approaches will be taken: the gene is reintroduced at the original locus, the gene is reintroduced into a random site in the genome, or the mutant is not complemented at all. Depending on which approach is utilized, the mutant may be complemented but other genes are potentially disrupted in the process. To counter the drawbacks of the current approaches to complementation we have created a new tool to assist in this key step in the study of a gene's role in virulence. We have identified and characterized a small gene-free region in the C. neoformans genome dubbed the "safe haven", and constructed a plasmid vector that targets DNA constructs to this preselected site. The plasmid vector integrates with high frequency, effectively complementing a mutant strain without disrupting adjacent genes. qRT-PCR of the flanking genes on either side of the safe haven site following integration of the targeting vector revealed no changes in their expression, and no secondary phenotypes were observed in a range of phenotypic assays including an intranasal murine infection model. Combined, these data confirm that we have successfully created a much-needed molecular resource for the Cryptococcus community, enabling the reliable fulfillment of the molecular Koch's postulates.
url http://europepmc.org/articles/PMC4391909?pdf=render
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