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Adedeji-Olulana, A. F.

Publications and source records attributed to Adedeji-Olulana, A. F..

2 recordsLinked to original sources

Morphological transformation in Helicobacter pylori is a dynamic process leading to two types of coccoid

The helical shape of Helicobacter pylori is crucial for successful colonization of the human stomach. However, this pathogen can shapeshift into another form termed the "coccoid form" with a spherical shape, through a mechanism that remains elusive. Here, by a combination of fluorescence microscopy using fluorescent D-aminoacids, cryoelectron and atom force microscopy, we explored the dynamics of coccoid formation in H. pylori through interrogation of the peptidoglycan layer. Contrary to the widely held hypothesis, we showed that helical-rod H. pylori transformed into a coccoid without transiting through a U-form. We show that U-forms, characterized by a U-shaped peptidoglycan with enlarged periplasmic space, altered genetic material, and red autofluorescence, are the output of a parallel pathway, which, unlike the coccoid pathway, is independent of the HdpA/Csd3 peptidoglycan endopeptidase. Coccoid formation occurred along a rigid timeline, by bulging of the cytoplasmic membrane through a peptidoglycan crack, resulting in a spheroplast-like structure with the peptidoglycan stacked into a thick layer near the original cell poles. Resistance of that structure against lysis likely involves a switch in metabolic profile reminiscent of bacteria in dormancy, with a notable accumulation of lysophospholipids, demonstrated in this work. Altogether, the ultrastructure and properties of H. pylori coccoids evidenced here are compatible with a role of this form in relapse after antibiotic treatment. SIGNIFICANCE STATEMENTUpon prolonged growth, stomach pathogen Helicobacter pylori undergoes a morphological change from a helical to a spherical form called coccoid, which may be involved in bacterial persistence and immune evasion. The pathway leading to this form, as well as its precise architecture, were unclear. In this work, we show by different microscopy techniques that the transition to coccoid does not involve a U-shaped intermediate as proposed before, but is triggered by progressive thinning, due to the activity of endopeptidase HdpA/Csd3, of the peptidoglycan meshwork that normally protects the cell, eventually leading to rupture. Because of the hole thus created, peptidoglycan can no longer contain the osmotic pressure in the cytoplasm, which leaks out within a membrane bulge, to eventually give rise to a kind of sphaeroplast, expected to be insensitive to cell wall-targeted antibiotics.

microbiology↗

Stacking effects on mutation detection by T4 DNA ligation within dimeric DNA origami triangle barcodes for single-molecule nanopore analysis

Solid-state nanopores represent an emerging technology for the highly sensitive detection of biomolecular markers, but the detection of DNA point mutations is challenged by the high noise levels associated with solid-state nanopore reading. In contrast, barcoded DNA origami nanostructures can provide unique single-molecule nanopore fingerprints. In this work, we have integrated nanopore-barcoded DNA nanostructures with enzymatic DNA ligation, the latter of which is routinely involved in clinical protocols for DNA mutation detection. We designed two triangular DNA origami variants containing three elongated staples that provide strands extensions on one side that are complementary to a target sequence. Addition of the latter in solution promotes the formation of a DNA triangle dimer. Since T4 DNA ligase repairs a nick in a dsDNA segment only if there is Watson-Crick base-pairing at the nick, the two DNA triangles can be covalently linked only if the DNA sequence bridging the two triangles carries the targeted mutation. We have found striking differences between ligation detection by gel electrophoresis, AFM, and quartz capillary-based nanopores. The stacking interaction between DNA triangles is enhanced by the formation of dimers, and promote the formation of higher order nanostructure, which serve as molecular weight amplification for DNA ligation in gels. The triangle-triangle stacking dynamics presumably involves a clam-like folding mechanism, which is detectable by quartz nanopore analysis, and which hinders ligation by T4 DNA ligase. The results provide the basis for development of rapid, highly sensitive, and affordable high-throughput approaches for profiling genetic variations in point-of-care settings.

synthetic biology↗