Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.

Systemic dimorphic fungi cause more than one million new infections each year, ranking them among the significant public health challenges currently encountered. Penicillium marneffei is a systemic dimorphic fungus endemic to Southeast Asia. The temperature-dependent dimorphic phase transition betwe...

Full description

Bibliographic Details
Main Authors: Ence Yang, Wang-Ngai Chow, Gang Wang, Patrick C Y Woo, Susanna K P Lau, Kwok-Yung Yuen, Xiaorong Lin, James J Cai
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-10-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC4199489?pdf=render
id doaj-5ddc47cc200e43d19519b230d44aa1a2
record_format Article
spelling doaj-5ddc47cc200e43d19519b230d44aa1a22020-11-24T21:36:54ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042014-10-011010e100466210.1371/journal.pgen.1004662Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.Ence YangWang-Ngai ChowGang WangPatrick C Y WooSusanna K P LauKwok-Yung YuenXiaorong LinJames J CaiSystemic dimorphic fungi cause more than one million new infections each year, ranking them among the significant public health challenges currently encountered. Penicillium marneffei is a systemic dimorphic fungus endemic to Southeast Asia. The temperature-dependent dimorphic phase transition between mycelium and yeast is considered crucial for the pathogenicity and transmission of P. marneffei, but the underlying mechanisms are still poorly understood. Here, we re-sequenced P. marneffei strain PM1 using multiple sequencing platforms and assembled the genome using hybrid genome assembly. We determined gene expression levels using RNA sequencing at the mycelial and yeast phases of P. marneffei, as well as during phase transition. We classified 2,718 genes with variable expression across conditions into 14 distinct groups, each marked by a signature expression pattern implicated at a certain stage in the dimorphic life cycle. Genes with the same expression patterns tend to be clustered together on the genome, suggesting orchestrated regulations of the transcriptional activities of neighboring genes. Using qRT-PCR, we validated expression levels of all genes in one of clusters highly expressed during the yeast-to-mycelium transition. These included madsA, a gene encoding MADS-box transcription factor whose gene family is exclusively expanded in P. marneffei. Over-expression of madsA drove P. marneffei to undergo mycelial growth at 37°C, a condition that restricts the wild-type in the yeast phase. Furthermore, analyses of signature expression patterns suggested diverse roles of secreted proteins at different developmental stages and the potential importance of non-coding RNAs in mycelium-to-yeast transition. We also showed that RNA structural transition in response to temperature changes may be related to the control of thermal dimorphism. Together, our findings have revealed multiple molecular mechanisms that may underlie the dimorphic transition in P. marneffei, providing a powerful foundation for identifying molecular targets for mechanism-based interventions.http://europepmc.org/articles/PMC4199489?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Ence Yang
Wang-Ngai Chow
Gang Wang
Patrick C Y Woo
Susanna K P Lau
Kwok-Yung Yuen
Xiaorong Lin
James J Cai
spellingShingle Ence Yang
Wang-Ngai Chow
Gang Wang
Patrick C Y Woo
Susanna K P Lau
Kwok-Yung Yuen
Xiaorong Lin
James J Cai
Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.
PLoS Genetics
author_facet Ence Yang
Wang-Ngai Chow
Gang Wang
Patrick C Y Woo
Susanna K P Lau
Kwok-Yung Yuen
Xiaorong Lin
James J Cai
author_sort Ence Yang
title Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.
title_short Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.
title_full Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.
title_fullStr Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.
title_full_unstemmed Signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in Penicillium marneffei.
title_sort signature gene expression reveals novel clues to the molecular mechanisms of dimorphic transition in penicillium marneffei.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2014-10-01
description Systemic dimorphic fungi cause more than one million new infections each year, ranking them among the significant public health challenges currently encountered. Penicillium marneffei is a systemic dimorphic fungus endemic to Southeast Asia. The temperature-dependent dimorphic phase transition between mycelium and yeast is considered crucial for the pathogenicity and transmission of P. marneffei, but the underlying mechanisms are still poorly understood. Here, we re-sequenced P. marneffei strain PM1 using multiple sequencing platforms and assembled the genome using hybrid genome assembly. We determined gene expression levels using RNA sequencing at the mycelial and yeast phases of P. marneffei, as well as during phase transition. We classified 2,718 genes with variable expression across conditions into 14 distinct groups, each marked by a signature expression pattern implicated at a certain stage in the dimorphic life cycle. Genes with the same expression patterns tend to be clustered together on the genome, suggesting orchestrated regulations of the transcriptional activities of neighboring genes. Using qRT-PCR, we validated expression levels of all genes in one of clusters highly expressed during the yeast-to-mycelium transition. These included madsA, a gene encoding MADS-box transcription factor whose gene family is exclusively expanded in P. marneffei. Over-expression of madsA drove P. marneffei to undergo mycelial growth at 37°C, a condition that restricts the wild-type in the yeast phase. Furthermore, analyses of signature expression patterns suggested diverse roles of secreted proteins at different developmental stages and the potential importance of non-coding RNAs in mycelium-to-yeast transition. We also showed that RNA structural transition in response to temperature changes may be related to the control of thermal dimorphism. Together, our findings have revealed multiple molecular mechanisms that may underlie the dimorphic transition in P. marneffei, providing a powerful foundation for identifying molecular targets for mechanism-based interventions.
url http://europepmc.org/articles/PMC4199489?pdf=render
work_keys_str_mv AT enceyang signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT wangngaichow signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT gangwang signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT patrickcywoo signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT susannakplau signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT kwokyungyuen signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT xiaoronglin signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
AT jamesjcai signaturegeneexpressionrevealsnovelcluestothemolecularmechanismsofdimorphictransitioninpenicilliummarneffei
_version_ 1725939359473991680