Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.

BACKGROUND: Understanding how biotoxins kill cells is of prime importance in biomedicine and the food industry. The budding yeast (S. cerevisiae) killers serve as a convenient model to study the activity of biotoxins consistently supplying with significant insights into the basic mechanisms of virus...

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Main Authors: Elena Servienė, Juliana Lukša, Irma Orentaitė, Denis L J Lafontaine, Jaunius Urbonavičius
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2012-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3515549?pdf=render
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spelling doaj-7fdd0b1ea43c444087b9375d166b35f62020-11-24T21:20:03ZengPublic Library of Science (PLoS)PLoS ONE1932-62032012-01-01712e5077910.1371/journal.pone.0050779Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.Elena ServienėJuliana LukšaIrma OrentaitėDenis L J LafontaineJaunius UrbonavičiusBACKGROUND: Understanding how biotoxins kill cells is of prime importance in biomedicine and the food industry. The budding yeast (S. cerevisiae) killers serve as a convenient model to study the activity of biotoxins consistently supplying with significant insights into the basic mechanisms of virus-host cell interactions and toxin entry into eukaryotic target cells. K1 and K2 toxins are active at the cell wall, leading to the disruption of the plasma membrane and subsequent cell death by ion leakage. K28 toxin is active in the cell nucleus, blocking DNA synthesis and cell cycle progression, thereby triggering apoptosis. Genome-wide screens in the budding yeast S. cerevisiae identified several hundred effectors of K1 and K28 toxins. Surprisingly, no such screen had been performed for K2 toxin, the most frequent killer toxin among industrial budding yeasts. PRINCIPAL FINDINGS: We conducted several concurrent genome-wide screens in S. cerevisiae and identified 332 novel K2 toxin effectors. The effectors involved in K2 resistance and hypersensitivity largely map in distinct cellular pathways, including cell wall and plasma membrane structure/biogenesis and mitochondrial function for K2 resistance, and cell wall stress signaling and ion/pH homeostasis for K2 hypersensitivity. 70% of K2 effectors are different from those involved in K1 or K28 susceptibility. SIGNIFICANCE: Our work demonstrates that despite the fact that K1 and K2 toxins share some aspects of their killing strategies, they largely rely on different sets of effectors. Since the vast majority of the host factors identified here is exclusively active towards K2, we conclude that cells have acquired a specific K2 toxin effectors set. Our work thus indicates that K1 and K2 have elaborated different biological pathways and provides a first step towards the detailed characterization of K2 mode of action.http://europepmc.org/articles/PMC3515549?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Elena Servienė
Juliana Lukša
Irma Orentaitė
Denis L J Lafontaine
Jaunius Urbonavičius
spellingShingle Elena Servienė
Juliana Lukša
Irma Orentaitė
Denis L J Lafontaine
Jaunius Urbonavičius
Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.
PLoS ONE
author_facet Elena Servienė
Juliana Lukša
Irma Orentaitė
Denis L J Lafontaine
Jaunius Urbonavičius
author_sort Elena Servienė
title Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.
title_short Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.
title_full Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.
title_fullStr Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.
title_full_unstemmed Screening the budding yeast genome reveals unique factors affecting K2 toxin susceptibility.
title_sort screening the budding yeast genome reveals unique factors affecting k2 toxin susceptibility.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2012-01-01
description BACKGROUND: Understanding how biotoxins kill cells is of prime importance in biomedicine and the food industry. The budding yeast (S. cerevisiae) killers serve as a convenient model to study the activity of biotoxins consistently supplying with significant insights into the basic mechanisms of virus-host cell interactions and toxin entry into eukaryotic target cells. K1 and K2 toxins are active at the cell wall, leading to the disruption of the plasma membrane and subsequent cell death by ion leakage. K28 toxin is active in the cell nucleus, blocking DNA synthesis and cell cycle progression, thereby triggering apoptosis. Genome-wide screens in the budding yeast S. cerevisiae identified several hundred effectors of K1 and K28 toxins. Surprisingly, no such screen had been performed for K2 toxin, the most frequent killer toxin among industrial budding yeasts. PRINCIPAL FINDINGS: We conducted several concurrent genome-wide screens in S. cerevisiae and identified 332 novel K2 toxin effectors. The effectors involved in K2 resistance and hypersensitivity largely map in distinct cellular pathways, including cell wall and plasma membrane structure/biogenesis and mitochondrial function for K2 resistance, and cell wall stress signaling and ion/pH homeostasis for K2 hypersensitivity. 70% of K2 effectors are different from those involved in K1 or K28 susceptibility. SIGNIFICANCE: Our work demonstrates that despite the fact that K1 and K2 toxins share some aspects of their killing strategies, they largely rely on different sets of effectors. Since the vast majority of the host factors identified here is exclusively active towards K2, we conclude that cells have acquired a specific K2 toxin effectors set. Our work thus indicates that K1 and K2 have elaborated different biological pathways and provides a first step towards the detailed characterization of K2 mode of action.
url http://europepmc.org/articles/PMC3515549?pdf=render
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