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Hormes, B.

Publications and source records attributed to Hormes, B..

2 recordsLinked to original sources

Control of three-carbon amino acid homeostasis by promiscuous importers and exporters in Bacillus subtilis: Role of the sleeping beauty family of amino acid exporters

The Gram-positive model bacterium Bacillus subtilis can acquire amino acids by import, de novo biosynthesis, or by degradation of proteins and peptides. The accumulation of several amino acids inhibits growth of B. subtilis, probably due to misincorporation into cellular macromolecules such as proteins or peptidoglycan or due to interference with other amino acid biosynthetic pathways. Here, we studied the adaptation of B. subtilis to toxic concentrations of the three-carbon amino acids L-alanine, {beta}-alanine, and 2,3-diaminopropionic acid as well as glycine. Resistance to the non-proteinogenic amino acid {beta}-alanine, which is a precursor for the vitamin B5 and thus for coenzyme A biosynthesis is achieved by mutations that either activate a cryptic amino acid exporter, AexA (previously YdeD), or inactivate the amino acid importers AimA, AimB (previously YbxG), and BcaP. The aexA gene is very poorly expressed under most conditions studied. However, mutations afecting the transcription factor AerA (previously YdeC), can result in strong constitutive aexA expression. AexA is the founding member of a conserved family of amino acid exporters in B. subtilis, which are all very poorly expressed. Therefore, we suggest to call this family "sleeping beauty family of amino acid exporters". 2,3-Diaminopropionic acid can also be exported by AexA, and this amino acid also seems to be a natural substrate of AerA/ AexA, as it can cause a slight but significant induction of aexA expression, and AexA also provides some natural resistance towards 2,3-diaminopropionic acid. Moreover, our work shows how low specificity amino acid transporters contribute to amino acid homeostasis in B. subtilis. IMPORTANCEEven though B. subtilis is of of the most-studied bacteria, amino acid homeostasis in this organism is not fully understood. We have identified import and export systems for the C2 and C3 amino acids. Our work demonstrates that the responsible amino acid permeases contribute in a rather promiscuitive way to amino acid uptake. In addition, we have discovered AexA, the first member of a family of very poorly expressed amino acid exporters, that we call "sleeping beauty amino acid exporters". The expression of these transporters is typically triggered by mutations in corresponding regulator genes that are acquired upon exposure to toxic amino acids. These exporters are ubiquitous in all domains of life. It is tempting to speculate that many of them are not expressed until the cells experience a selective pressure by toxic compounds and that the protect the cells from rare but potentially dangerous accounters with such compounds.

microbiology↗

Control of iron homeostasis by a regulatory protein-protein interaction in Bacillus subtilis: The FurA (YlaN) acts as an antirepressor to the ferric uptake regulator Fur

Iron is essential for most organisms. However, two problems are associated with the use of iron for aerobically growing organisms: (i) its accumulation leads to the formation of toxic reactive oxygen species and (ii) it is present mainly as the highly insoluble ferric iron which makes the access to iron difficult. As a consequence, a tight regulation of iron homeostasis is required. This regulation is achieved in many bacteria by the ferric uptake repressor Fur. The way how the activity of Fur is controlled, has so far remained elusive. Here, we have identified the Fur antirepressor FurA (previously YlaN) in the model bacterium Bacillus subtilis and describe its function to release Fur from the DNA under conditions of iron limitation. The FurA protein physically interacts with Fur, and this interaction prevents Fur from binding to its target sites due to a complete re-orientation of the protein. Both in vivo and in vitro experiments using a reporter fusion and Fur-DNA binding assays, respectively, demonstrate that the Fur-FurA interaction prevents Fur from binding DNA and thus from repressing the genes required for iron uptake. Accordingly, the lack of FurA results in the inability of the cell to express the genes for iron uptake under iron-limiting conditions. This explains why the furA gene was identified as being essential under standard growth conditions in B. subtilis. Phylogenetic analysis suggests that the control of Fur activity by the antirepressor FurA is confined to, but very widespread in bacteria of the class Bacilli. IMPORTANCEIron is essential for most bacteria since it is required for many redox reactions. Under aerobic conditions, iron is both essential and toxic due to radical formation. Thus, iron homeostasis must be faithfully controlled. The transcription factor Fur is responsible for this regulation in many bacteria; however, the control of Fur activity has remained open. Here we describe the FurA protein, a so far unknown protein which acts as an antirepressor to Fur in Bacillus subtilis. This mechanism seems to be widespread in B. subtilis and several important pathogens and might be a promising target for drug development.

microbiology↗