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Biology subjects

Choi, B. J.

Publications and source records attributed to Choi, B. J..

3 recordsLinked to original sources

Single-locus chromatin memory enables flexible spatial fate specification in the Drosophila visual system

Spatial patterning generates neuronal diversity by compartmentalizing progenitors into domains with distinct molecular identities. However, these patterning cues are often transient in neurogenic domains, raising the question of how spatial information can be preserved and how rigidly it constrains neuronal fates. Here we show that a single-locus chromatin memory in the Drosophila medulla enables spatial identity to be both faithfully executed and flexibly bypassed. Medulla progenitors are partitioned into three spatial domains marked by Vsx1, Optix and Bifid. Domain-resolved single-cell multiome profiling reveals that progenies from different neuroepithelial domains are nearly indistinguishable for both transcriptome and chromatin accessibility, although persistent, domain-specific accessibility is retained only at a single spatial-factor locus, either Vsx1/2 or Bifid. These same factors are absent when neuroepithelial cells are converted to neural stem cells but are re-expressed in postmitotic neurons to execute domain-specific fates. Because this bookmarking is so restricted, specific classes of neurons can skip the domain-specific re-expression program and default to a common ground state, adopting equivalent fates regardless of spatial origin. Other neurons reach the same domain-ignoring state by expressing Vsx1/2 through a program independent of their domain of origin. PRC2-mediated silencing restricts Vsx1 re-expression to its home domain, while temporal identity and Notch signaling in newborn neurons determine which neurons engage or bypass the spatial program. Thus, single-locus chromatin memory preserves spatial information without making it an obligatory determinant of every neuronal fate.

developmental biology↗

Title: Retinal Calcium Waves Coordinate Uniform Tissue Patterning of the Drosophila Eye.

Optimal neural processing relies on precise tissue patterning across diverse cell types. Here, we show that spontaneous calcium waves arise among non-neuronal support cells in the developing Drosophila eye to drive retinal morphogenesis. These waves are initiated by Cad96Ca receptor tyrosine kinase signaling, triggering PLC{gamma}-mediated calcium release from the endoplasmic reticulum. A cell-type-specific Innexin code coordinates wave propagation through a defined gap junction network among non-neuronal retinal cells, excluding photoreceptors. Wave intensity scales with ommatidial size, triggering stronger Myosin II-driven apical contraction at interommatidial boundaries in larger ommatidia. This size-dependent mechanism compensates for early boundary irregularities, ensuring uniform ommatidial packing critical for precise optical architecture. Our findings reveal how synchronized calcium signaling among non-neuronal cells orchestrates tissue patterning in the developing nervous system.

developmental biology↗

PhoPQ-mediated lipopolysaccharide modification regulates intrinsic resistance to tetracycline and glycylcycline antibiotics in Escherichia coli

Tetracyclines and glycylcycline are among the last-resort antibiotics used to combat infections caused by multidrug-resistant Gram-negative pathogens. Despite the clinical importance of these antibiotics, their mechanisms of resistance remain unclear. In this study, we elucidated a novel mechanism of resistance to tetracycline and glycylcycline antibiotics via lipopolysaccharide (LPS) modification. Disruption of the Escherichia coli PhoPQ two-component system, which regulates the transcription of various genes involved in magnesium transport and LPS modification, leads to increased susceptibility to tetracycline, minocycline, doxycycline, and tigecycline. These phenotypes are caused by enhanced expression of phosphoethanolamine transferase EptB, which catalyzes the modification of the inner core sugar of LPS. PhoPQ-mediated regulation of EptB expression appears to affect the intracellular transportation of doxycycline. Disruption of EptB increases resistance to tetracycline and glycylcycline antibiotics, whereas the other two phosphoethanolamine transferases, EptA and EptC, that participate in the modification of other LPS residues, are not associated with resistance to tetracyclines and glycylcycline. Overall, our results demonstrated that PhoPQ-mediated modification of a specific residue of LPS by phosphoethanolamine transferase EptB regulates resistance to tetracycline and glycylcycline antibiotics. ImportanceElucidating the resistance mechanisms of clinically important antibiotics helps in maintaining the clinical efficacy of antibiotics and in the prescription of adequate antibiotic therapy. Although tetracycline and glycylcycline antibiotics are clinically important in combating multidrug-resistant Gram-negative bacterial infections, their mechanisms of resistance are not fully understood. Our research demonstrates that the Escherichia coli two-component system PhoPQ regulates resistance to tetracycline and glycylcycline antibiotics by controlling the expression of phosphoethanolamine transferase EptB, which catalyzes the modification of the inner core residue of lipopolysaccharide (LPS). Therefore, our findings highlight a novel resistance mechanism to tetracycline and glycylcycline antibiotics and the physiological significance of LPS core modification in E. coli. One sentence summaryLipopolysaccharide modification-mediated tigecycline resistance

microbiology↗