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Irazoki, O.

Publications and source records attributed to Irazoki, O..

4 recordsLinked to original sources

A novel mechanism for bacterial sporulation based on programmed peptidoglycan degradation

Many bacteria form spores to endure unfavorable conditions. While Firmicutes generate endospores through cell division, sporulation in non-Firmicutes remains less understood. The Gram-negative bacterium Myxococcus xanthus undergoes sporulation through two distinct mechanisms: rapid sporulation triggered by chemical induction and slow sporulation driven by starvation, both occurring independently of cell division. Instead, these processes depend on the complete degradation of the peptidoglycan (PG) cell wall by two lytic transglycosylases (LTGs), LtgA and LtgB. Remarkably, LtgB programs the pace of PG degradation by LtgA during rapid sporulation, ensuring a controlled process that prevents abrupt PG breakdown and the formation of non-resistant pseudospores. In addition to regulation between LTGs, PG degradation is also influenced by its synthesis; cells exhibiting increased muropeptide production often circumvent sporulation. These findings not only reveal novel mechanisms of bacterial sporulation but also shed light on the regulatory network governing PG dynamics.

microbiology↗

Bacteria combine polar- and dispersed-growth to power cell elongation and wall width dynamics

The cell wall is a complex structure. For most bacteria, peptidoglycan is an essential component of their cell wall, with different bacteria having evolved distinct biosynthetic strategies. The mechanisms driving bacterial growth can be divided into three, mutually-exclusive categories: (i) dispersed growth, mediated by MreB and employed by many rod-shaped bacteria; (ii) polar growth, driven by distinct proteins in the actinobacteria and rhizobiales; and (iii) septal growth, fueled by FtsZ in many coccoid bacteria. Here, we show that under conditions of rapid growth, the actinobacterial representative Streptomyces venezuelae transcends these categories, simultaneously employing both canonical polar growth, and MreB-mediated dispersed growth. Our results indicate that MreB is essential for cell wall integrity and culture viability under these growth conditions, promotes dynamic cell wall changes over the course of a growth cycle, and contributes to a wall that is structurally distinct from that of conventionally growing streptomycetes.

microbiology↗

A distinctive family of L,D-transpeptidases catalyzing L-Ala-mDAP crosslinks in Alpha and Betaproteobacteria

Most bacteria are surrounded by an essential protective mesh-like structure called peptidoglycan, made of glycan chains crosslinked through short peptides by enzymes known as transpeptidases. Of these, penicillin-binding DD-transpeptidases connect adjacent peptide stems between their 4th and 3rd amino acids (4,3-type), D-alanine and a meso-diaminopimelic acid (mDAP) in Gram negatives, whereas LD-transpeptidases make the 3,3-type between mDAP3 residues. While these two processes explain the formation of crosslinks in most bacteria, recent investigations involving non-model species have brought to light novel crosslinking mechanisms that point to the existence of less-explored groups of peptidoglycan crosslinking enzymes. Here, we present the identification and characterization of a novel LD-transpeptidase found in the acetic acid bacterial Gluconobacter oxydans, named LDTGo, which performs 1,3-type crosslinks between L-Ala1 and mDAP3. LDTGo-like proteins are conserved among Alpha and Betaproteobacteria species that do not encode LD3,3-transpeptidases. Using a highly active ortholog, we demonstrated in vitro that this enzyme can work with non-terminal peptide bonds in the crosslinking process. This property is different from the strict specificity of typical LD- and DD-transpeptidases, which only deal with terminal peptide bonds. The high-resolution crystal structure of LDTGo revealed significant distinctions when compared to 3,3-type LD-transpeptidases. These include a proline-rich region near the N-terminus that restricts substrate access to the active site, and an unprecedented cavity designed to accommodate both the glycan chain and the peptide stem from donor muropeptides, a feature that exhibits broad conservation among LD1,3-transpeptidases. Finally, we demonstrated the involvement of DD-crosslinking turnover in supplying the necessary substrate for LD1,3-transpeptidation. This phenomenon underscores the interplay between structurally distinct crosslinking mechanisms in maintaining cell wall integrity in G. oxydans.

microbiology↗

Quantitative analysis of morphogenesis and growth dynamics in an obligate intracellular bacterium

Obligate intracellular bacteria of the order Rickettsiales include numerous arthropod-borne human pathogens. However, our understanding of the basic biology of Rickettsia species is limited by technical challenges imposed by their obligate intracellular lifestyle. To overcome this roadblock, we developed quantitative methods to assess the cell wall composition, intracellular growth, and morphology of Rickettsia parkeri, a human pathogen in the Spotted Fever Group of the Rickettsia genus. Analysis of the cell wall composition of R. parkeri revealed unique features including a high M3 monomer fraction and absence of LD-crosslinks. Using a novel fluorescence microscopy approach, we quantified the cell morphology of R. parkeri in live host cells and found that bacterial morphology is maintained stably during exponential growth in two different epithelial cell lines. To assess population growth kinetics in a high-throughput and high-resolution manner, we developed an imaging-based growth assay and applied this to determine the growth rate of up to 24 infected cultures at a time. We also sought to gain insight into the cell cycle regulation of R. parkeri. To this end, we developed methods to quantify the fraction of the population preparing to divide as well as those undergoing active constriction. These approaches permitted a quantitative analysis of cell cycle status across a population of R. parkeri. Finally, as a proof of concept, we applied the above tools to quantitatively determine how MreB, a bacterial actin homolog, contributes to the growth and morphogenesis of R. parkeri. Inhibition of MreB with the small molecule MP265 led to cell rounding and slowed growth, suggesting that MreB is required for the growth and shape maintenance of R. parkeri. Collectively, we developed a toolkit of high-throughput, quantitative tools to understand intracellular growth and morphogenesis of R. parkeri that is translatable to other obligate intracellular bacteria. AUTHOR SUMMARYThe obligate intracellular lifestyle of members of the bacterial order Rickettsiales, which includes important human pathogens, has hindered our progress in understanding their biology. Here we developed and applied high-throughput, quantitative tools to analyze essential features of rickettsial cell biology such as morphology and growth in living host cells. By applying these tools in a proof of concept, we showed that the bacterial actin homolog, MreB is required for the regulation of rod shape and intracytoplasmic growth.

microbiology↗