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Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype

Even with identification of multiple causal genetic variants for common human diseases, understanding the molecular processes mediating the causal variants’ effect on the disease remains a challenge. This understanding is crucial for the development of therapeutic strategies to prevent and treat dis...

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Autores principales: Gupta, Saumya, Radhakrishnan, Aparna, Raharja-Liu, Pandu, Lin, Gen, Steinmetz, Lars M., Gagneur, Julien, Sinha, Himanshu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4454590/
https://www.ncbi.nlm.nih.gov/pubmed/26039065
http://dx.doi.org/10.1371/journal.pgen.1005195
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author Gupta, Saumya
Radhakrishnan, Aparna
Raharja-Liu, Pandu
Lin, Gen
Steinmetz, Lars M.
Gagneur, Julien
Sinha, Himanshu
author_facet Gupta, Saumya
Radhakrishnan, Aparna
Raharja-Liu, Pandu
Lin, Gen
Steinmetz, Lars M.
Gagneur, Julien
Sinha, Himanshu
author_sort Gupta, Saumya
collection PubMed
description Even with identification of multiple causal genetic variants for common human diseases, understanding the molecular processes mediating the causal variants’ effect on the disease remains a challenge. This understanding is crucial for the development of therapeutic strategies to prevent and treat disease. While static profiling of gene expression is primarily used to get insights into the biological bases of diseases, it makes differentiating the causative from the correlative effects difficult, as the dynamics of the underlying biological processes are not monitored. Using yeast as a model, we studied genome-wide gene expression dynamics in the presence of a causal variant as the sole genetic determinant, and performed allele-specific functional validation to delineate the causal effects of the genetic variant on the phenotype. Here, we characterized the precise genetic effects of a functional MKT1 allelic variant in sporulation efficiency variation. A mathematical model describing meiotic landmark events and conditional activation of MKT1 expression during sporulation specified an early meiotic role of this variant. By analyzing the early meiotic genome-wide transcriptional response, we demonstrate an MKT1-dependent role of novel modulators, namely, RTG1/3, regulators of mitochondrial retrograde signaling, and DAL82, regulator of nitrogen starvation, in additively effecting sporulation efficiency. In the presence of functional MKT1 allele, better respiration during early sporulation was observed, which was dependent on the mitochondrial retrograde regulator, RTG3. Furthermore, our approach showed that MKT1 contributes to sporulation independent of Puf3, an RNA-binding protein that steady-state transcription profiling studies have suggested to mediate MKT1-pleiotropic effects during mitotic growth. These results uncover interesting regulatory links between meiosis and mitochondrial retrograde signaling. In this study, we highlight the advantage of analyzing allele-specific transcriptional dynamics of mediating genes. Applications in higher eukaryotes can be valuable for inferring causal molecular pathways underlying complex dynamic processes, such as development, physiology and disease progression.
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spelling pubmed-44545902015-06-09 Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype Gupta, Saumya Radhakrishnan, Aparna Raharja-Liu, Pandu Lin, Gen Steinmetz, Lars M. Gagneur, Julien Sinha, Himanshu PLoS Genet Research Article Even with identification of multiple causal genetic variants for common human diseases, understanding the molecular processes mediating the causal variants’ effect on the disease remains a challenge. This understanding is crucial for the development of therapeutic strategies to prevent and treat disease. While static profiling of gene expression is primarily used to get insights into the biological bases of diseases, it makes differentiating the causative from the correlative effects difficult, as the dynamics of the underlying biological processes are not monitored. Using yeast as a model, we studied genome-wide gene expression dynamics in the presence of a causal variant as the sole genetic determinant, and performed allele-specific functional validation to delineate the causal effects of the genetic variant on the phenotype. Here, we characterized the precise genetic effects of a functional MKT1 allelic variant in sporulation efficiency variation. A mathematical model describing meiotic landmark events and conditional activation of MKT1 expression during sporulation specified an early meiotic role of this variant. By analyzing the early meiotic genome-wide transcriptional response, we demonstrate an MKT1-dependent role of novel modulators, namely, RTG1/3, regulators of mitochondrial retrograde signaling, and DAL82, regulator of nitrogen starvation, in additively effecting sporulation efficiency. In the presence of functional MKT1 allele, better respiration during early sporulation was observed, which was dependent on the mitochondrial retrograde regulator, RTG3. Furthermore, our approach showed that MKT1 contributes to sporulation independent of Puf3, an RNA-binding protein that steady-state transcription profiling studies have suggested to mediate MKT1-pleiotropic effects during mitotic growth. These results uncover interesting regulatory links between meiosis and mitochondrial retrograde signaling. In this study, we highlight the advantage of analyzing allele-specific transcriptional dynamics of mediating genes. Applications in higher eukaryotes can be valuable for inferring causal molecular pathways underlying complex dynamic processes, such as development, physiology and disease progression. Public Library of Science 2015-06-03 /pmc/articles/PMC4454590/ /pubmed/26039065 http://dx.doi.org/10.1371/journal.pgen.1005195 Text en © 2015 Gupta et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gupta, Saumya
Radhakrishnan, Aparna
Raharja-Liu, Pandu
Lin, Gen
Steinmetz, Lars M.
Gagneur, Julien
Sinha, Himanshu
Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype
title Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype
title_full Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype
title_fullStr Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype
title_full_unstemmed Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype
title_short Temporal Expression Profiling Identifies Pathways Mediating Effect of Causal Variant on Phenotype
title_sort temporal expression profiling identifies pathways mediating effect of causal variant on phenotype
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4454590/
https://www.ncbi.nlm.nih.gov/pubmed/26039065
http://dx.doi.org/10.1371/journal.pgen.1005195
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