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dc.contributor.author Cortés, MP
dc.contributor.author Acuña, V
dc.contributor.author Travisany, D
dc.contributor.author Siegel, A
dc.contributor.author Maass, A
dc.contributor.author Latorre, M
dc.date.accessioned 2024-01-17T15:54:44Z
dc.date.available 2024-01-17T15:54:44Z
dc.date.issued 2020
dc.identifier.uri https://repositorio.uoh.cl/handle/611/610
dc.description.abstract Acidithiobacillus thiooxidansis one of the most studied biomining species, highlighting its ability to oxidize reduced inorganic sulfur compounds, coupled with its elevated capacity to live under an elevated concentration of heavy metals. In this work, using anin silicosemi-automatic genome scale approach, two biological networks forA. thiooxidansLicanantay were generated: (i) An affinity transcriptional regulatory network composed of 42 regulatory family genes and 1,501 operons (57% genome coverage) linked through 2,646 putative DNA binding sites (arcs), (ii) A metabolic network reconstruction made of 523 genes and 1,203 reactions (22 pathways related to biomining processes). Through the identification of confident connections between both networks (V-shapes), it was possible to identify a sub-network of transcriptional factor (34 regulators) regulating genes (61 operons) encoding for proteins involved in biomining-related pathways. Network analysis suggested that transcriptional regulation of biomining genes is organized into different modules. The topological parameters showed a high hierarchical organization by levels inside this network (14 layers), highlighting transcription factors CysB, LysR, and IHF as complex modules with high degree and number of controlled pathways. In addition, it was possible to identify transcription factor modules named primary regulators (not controlled by other regulators in the sub-network). Inside this group, CysB was the main module involved in gene regulation of several bioleaching processes. In particular, metabolic processes related to energy metabolism (such as sulfur metabolism) showed a complex integrated regulation, where different primary regulators controlled several genes. In contrast, pathways involved in iron homeostasis and oxidative stress damage are mainly regulated by unique primary regulators, conferring Licanantay an efficient, and specific metal resistance response. This work shows new evidence in terms of transcriptional regulation at a systems level and broadens the study of bioleaching inA. thiooxidansspecies.
dc.description.sponsorship National Laboratory of High Performance Computing NLHPC
dc.relation.uri http://dx.doi.org/10.3389/fmolb.2019.00155
dc.subject Acidithiobacillus thiooxidans
dc.subject biological networks
dc.subject co-regulation
dc.subject bioleaching
dc.subject biotechnology
dc.title Integration of Biological Networks forAcidithiobacillus thiooxidansDescribes a Modular Gene Regulatory Organization of Bioleaching Pathways
dc.type Artículo
uoh.revista FRONTIERS IN MOLECULAR BIOSCIENCES
dc.identifier.doi 10.3389/fmolb.2019.00155
dc.citation.volume 6
dc.identifier.orcid Maass, Alejandro E/0000-0002-7038-4527
dc.identifier.orcid Travisany, Dante/0000-0002-2545-176X
uoh.indizacion Web of Science


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