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The HMGB Protein KlIxr1, a DNA Binding Regulator of Kluyveromyces lactis Gene Expression Involved in Oxidative Metabolism, Growth, and dNTP Synthesis

Authors :
Rico Díaz, Agustín
Barreiro-Alonso, Aida
Rey-Souto, Cora
Becerra, Manuel
Lamas, Mónica
Cerdán, María Esperanza
Vizoso-Vázquez, Ángel
Rico Díaz, Agustín
Barreiro-Alonso, Aida
Rey-Souto, Cora
Becerra, Manuel
Lamas, Mónica
Cerdán, María Esperanza
Vizoso-Vázquez, Ángel
Publication Year :
2021

Abstract

[Abstract] In the traditional fermentative model yeast Saccharomyces cerevisiae, ScIxr1 is an HMGB (High Mobility Group box B) protein that has been considered as an important regulator of gene transcription in response to external changes like oxygen, carbon source, or nutrient availability. Kluyveromyces lactis is also a useful eukaryotic model, more similar to many human cells due to its respiratory metabolism. We cloned and functionally characterized by different methodologies KlIXR1, which encodes a protein with only 34.4% amino acid sequence similarity to ScIxr1. Our data indicate that both proteins share common functions, including their involvement in the response to hypoxia or oxidative stress induced by hydrogen peroxide or metal treatments, as well as in the control of key regulators for maintenance of the dNTP (deoxyribonucleotide triphosphate) pool and ribosome synthesis. KlIxr1 is able to bind specific regulatory DNA sequences in the promoter of its target genes, which are well conserved between S. cerevisiae and K. lactis. Oppositely, we found important differences between ScIrx1 and KlIxr1 affecting cellular responses to cisplatin or cycloheximide in these yeasts, which could be dependent on specific and non-conserved domains present in these two proteins.

Details

Database :
OAIster
Notes :
2218-273X, http://hdl.handle.net/2183/29209, Rico-Díaz, A.; Barreiro-Alonso, A.; Rey-Souto, C.; Becerra, M.; Lamas-Maceiras, M.; Cerdán, M.E.; Vizoso-Vázquez, Á. The HMGB Protein KlIxr1, a DNA Binding Regulator of Kluyveromyces lactis Gene Expression Involved in Oxidative Metabolism, Growth, and dNTP Synthesis. Biomolecules 2021, 11, 1392. https://doi.org/10.3390/biom11091392, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1289929105
Document Type :
Electronic Resource