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dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data

Infection triggers a dynamic cascade of reciprocal events between host and pathogen wherein the host activates complex mechanisms to recognise and kill pathogens while the pathogen often adjusts its virulence and fitness to avoid eradication by the host. The interaction between the pathogen and the...

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Autores principales: Dinarvand, Mojdeh, Koch, Forrest C., Al Mouiee, Daniel, Vuong, Kaylee, Vijayan, Abhishek, Tanzim, Afia Fariha, Azad, A. K. M., Penesyan, Anahit, Castaño-Rodríguez, Natalia, Vafaee, Fatemeh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Microbiology Society 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9676033/
https://www.ncbi.nlm.nih.gov/pubmed/36136078
http://dx.doi.org/10.1099/mgen.0.000862
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author Dinarvand, Mojdeh
Koch, Forrest C.
Al Mouiee, Daniel
Vuong, Kaylee
Vijayan, Abhishek
Tanzim, Afia Fariha
Azad, A. K. M.
Penesyan, Anahit
Castaño-Rodríguez, Natalia
Vafaee, Fatemeh
author_facet Dinarvand, Mojdeh
Koch, Forrest C.
Al Mouiee, Daniel
Vuong, Kaylee
Vijayan, Abhishek
Tanzim, Afia Fariha
Azad, A. K. M.
Penesyan, Anahit
Castaño-Rodríguez, Natalia
Vafaee, Fatemeh
author_sort Dinarvand, Mojdeh
collection PubMed
description Infection triggers a dynamic cascade of reciprocal events between host and pathogen wherein the host activates complex mechanisms to recognise and kill pathogens while the pathogen often adjusts its virulence and fitness to avoid eradication by the host. The interaction between the pathogen and the host results in large-scale changes in gene expression in both organisms. Dual RNA-seq, the simultaneous detection of host and pathogen transcripts, has become a leading approach to unravelling complex molecular interactions between the host and the pathogen and is particularly informative for intracellular organisms. The amount of in vitro and in vivo dual RNA-seq data is rapidly growing, which demands computational pipelines to effectively analyse such data. In particular, holistic, systems-level, and temporal analyses of dual RNA-seq data are essential to enable further insights into the host–pathogen transcriptional dynamics and potential interactions. Here, we developed an integrative network-driven bioinformatics pipeline, dRNASb, a systems biology-based computational pipeline to analyse temporal transcriptional clusters, incorporate molecular interaction networks (e.g. protein-protein interactions), identify topologically and functionally key transcripts in host and pathogen, and associate host and pathogen temporal transcriptome to decipher potential between-species interactions. The pipeline is applicable to various dual RNA-seq data from different species and experimental conditions. As a case study, we applied dRNASb to analyse temporal dual RNA-seq data of Salmonella -infected human cells, which enabled us to uncover genes contributing to the infection process and their potential functions and to identify putative associations between host and pathogen genes during infection. Overall, dRNASb has the potential to identify key genes involved in bacterial growth or host defence mechanisms for future uses as therapeutic targets.
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spelling pubmed-96760332022-11-21 dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data Dinarvand, Mojdeh Koch, Forrest C. Al Mouiee, Daniel Vuong, Kaylee Vijayan, Abhishek Tanzim, Afia Fariha Azad, A. K. M. Penesyan, Anahit Castaño-Rodríguez, Natalia Vafaee, Fatemeh Microb Genom Methods Infection triggers a dynamic cascade of reciprocal events between host and pathogen wherein the host activates complex mechanisms to recognise and kill pathogens while the pathogen often adjusts its virulence and fitness to avoid eradication by the host. The interaction between the pathogen and the host results in large-scale changes in gene expression in both organisms. Dual RNA-seq, the simultaneous detection of host and pathogen transcripts, has become a leading approach to unravelling complex molecular interactions between the host and the pathogen and is particularly informative for intracellular organisms. The amount of in vitro and in vivo dual RNA-seq data is rapidly growing, which demands computational pipelines to effectively analyse such data. In particular, holistic, systems-level, and temporal analyses of dual RNA-seq data are essential to enable further insights into the host–pathogen transcriptional dynamics and potential interactions. Here, we developed an integrative network-driven bioinformatics pipeline, dRNASb, a systems biology-based computational pipeline to analyse temporal transcriptional clusters, incorporate molecular interaction networks (e.g. protein-protein interactions), identify topologically and functionally key transcripts in host and pathogen, and associate host and pathogen temporal transcriptome to decipher potential between-species interactions. The pipeline is applicable to various dual RNA-seq data from different species and experimental conditions. As a case study, we applied dRNASb to analyse temporal dual RNA-seq data of Salmonella -infected human cells, which enabled us to uncover genes contributing to the infection process and their potential functions and to identify putative associations between host and pathogen genes during infection. Overall, dRNASb has the potential to identify key genes involved in bacterial growth or host defence mechanisms for future uses as therapeutic targets. Microbiology Society 2022-09-22 /pmc/articles/PMC9676033/ /pubmed/36136078 http://dx.doi.org/10.1099/mgen.0.000862 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License.
spellingShingle Methods
Dinarvand, Mojdeh
Koch, Forrest C.
Al Mouiee, Daniel
Vuong, Kaylee
Vijayan, Abhishek
Tanzim, Afia Fariha
Azad, A. K. M.
Penesyan, Anahit
Castaño-Rodríguez, Natalia
Vafaee, Fatemeh
dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data
title dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data
title_full dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data
title_fullStr dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data
title_full_unstemmed dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data
title_short dRNASb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual RNA-seq data
title_sort drnasb: a systems biology approach to decipher dynamics of host–pathogen interactions using temporal dual rna-seq data
topic Methods
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9676033/
https://www.ncbi.nlm.nih.gov/pubmed/36136078
http://dx.doi.org/10.1099/mgen.0.000862
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