bioRxiv Science⌕ Search

Biology subjects

Serrania, J.

Publications and source records attributed to Serrania, J..

3 recordsLinked to original sources

NAD+ metabolism is a key modulator of bacterial respiratory epithelial infections

1.Lower respiratory tract infections caused by StreptococcusOpneumoniae (Spn) are a leading cause of death globally. Here we investigate the bronchial epithelial response to Spn infection on a transcriptomic, proteomic and metabolic level. We found the NAD+ salvage pathway to be dysregulated upon infection in a cell line model, primary human lung tissue and in vivo in rodents, leading to a reduced production of NAD+. Knockdown of NAD+ salvage enzymes (NAMPT, NMNAT1) increased bacterial replication. NAD+ treatment of Spn inhibited its growth while growth of other respiratory pathogens improved. Boosting NAD+ production increased NAD+ levels in immortalized and primary cells and decreased bacterial replication upon infection. NAD+ treatment of Spn dysregulated the bacterial metabolism and reduced intrabacterial ATP. Enhancing the bacterial ATP metabolism abolished the antibacterial effect of NAD+. Thus, we identified the NAD+ salvage pathway as an antibacterial cascade in Spn infections, predicting a novel antibacterial mechanism of NAD+.

immunology↗

Structural basis of bifunctionality of Sinorhizobium meliloti Clr, a cAMP and cGMP receptor protein

In bacteria, Crp-Fnr superfamily transcription factors are the most ubiquitous receptor proteins of 3,5-cyclic adenosine monophosphate (cAMP) and 3,5-cyclic guanosine monophosphate (cGMP). The prototypic Escherichia coli CAP protein represents the main CRP subclass and is known to bind cAMP and cGMP, but to mediate transcription activation only in its cAMP-bound state. In contrast, both cyclic nucleotides mediate transcription activation by CRP subclass G protein Clr of Sinorhizobium meliloti. We present crystal structures of apo-Clr, and Clr*cAMP and Clr*cGMP bound to the core motif of the palindromic Clr DNA binding site (CBS). We show that both cyclic nucleotides shift ternary Clr*cNMP*CBS-DNA complexes to almost identical active conformations. Unlike the situation known for the E. coli CAP*cNMP complex, in the Clr*cNMP complex, the nucleobases of cGMP and cAMP are in the syn- and anti-conformation, respectively, allowing a shift to the active conformations in both cases. Isothermal titration calorimetry measured similar affinities of cAMP and cGMP binding to Clr in presence of CBS core motif DNA (KDcNMP 16 M). However, different affinities were determined in absence of this DNA (KDcGMP 24 M; KDcGMP 6 M). Sequencing of Clr co-immunoprecipitated DNA as well as Electrophoretic Mobility Shift and promoter-probe assays expanded the list of experimentally proven Clr-regulated promoters and CBS. This comprehensive set of CBS features conserved nucleobases, which are in agreement with the sequence readout through interactions of Clr amino acid residues with these nucleobases, as revealed by the Clr*cNMP*CBS-DNA crystal structures. IMPORTANCECyclic 3,5-adenosine monophosphate (cAMP) and cyclic 3,5-guanosine monophosphate (cGMP) are both long known as important nucleotide second messenger in eukaryotes. This is also the case for cAMP in prokaryotes, whereas a signaling role for cGMP in this domain of life has been recognized only recently. Catabolite repressor proteins (CRPs) are the most ubiquitous bacterial cAMP receptor proteins. Escherichia coli CAP, the prototypic transcription regulator of the main CRP subclass, binds both cyclic mononucleotides, but only the CAP*cAMP complex promotes transcription activation. In contrast, CRP subclass G proteins studied so far, are activated by cGMP, or both by cAMP and cGMP. Here, we report a structural analysis of the bifunctional cAMP- and cGMP-activatable Clr from Sinorhizobium meliloti, how binding of cAMP and cGMP shifts Clr to its active conformation, and the structural basis of its DNA binding site specificity.

microbiology↗

Conservation of spatiotemporal DNA replication origin and terminus segregation patterns in Sinorhizobium meliloti with re-engineered bi- and monopartite genomes

Multipartite bacterial genomes pose challenges for genome engineering and establishment of additional replicons. We simplified the tripartite genome structure (3.65 Mbp chromosome, 1.35 Mbp megaplasmid pSymA, 1.68 Mbp chromid pSymB) of Sinorhizobium meliloti. Strains with bi- and monopartite genome configurations were generated by targeted replicon fusions. Our design preserved key genomic features, such as replichore ratios, GC skew, and KOPS and coding sequence distribution. Under standard culture conditions, growth rates of these strains and the wild type were nearly comparable. Spatiotemporal replicon organization and segregation were maintained in the triple replicon fusion strain. Deletion of the replication initiator-encoding genes including the oriVs of pSymA and pSymB from this strain resulted in a monopartite genome with oriC as the sole origin of replication, a strongly unbalanced replichore ratio, slow growth and an aberrant cellular localization of oriC. Suppressor mutation R436H in the cell cycle histidine kinase CckA and a 3.2 Mbp inversion, both individually, largely restored growth. These strains will facilitate integration of secondary replicons in S. meliloti, and thus be useful for genome engineering applications, such as generating hybrid genomes. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=105 SRC="FIGDIR/small/493018v3_ufig1.gif" ALT="Figure 1"> View larger version (26K): org.highwire.dtl.DTLVardef@1d016caorg.highwire.dtl.DTLVardef@8856ddorg.highwire.dtl.DTLVardef@fee530org.highwire.dtl.DTLVardef@78d9cd_HPS_FORMAT_FIGEXP M_FIG C_FIG

microbiology↗