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Biology subjects

Onion, D.

Publications and source records attributed to Onion, D..

3 recordsLinked to original sources

Evolutionarily conserved transcriptional regulators control monoaminergic neuron development

To what extent conserved developmental programs specify homologous cell types is a central question in biology. Here, we address this by focusing on reconstructing monoaminergic neuron development in Drosophila melanogaster embryo using time- resolved single-cell genomics, spatial transcript mapping with hybridisation chain reaction, and targeted metabolomics. We uncover a regulatory landscape in which specific transcription factors are activated before biosynthetic enzymes, establishing a prospective temporal architecture for monoaminergic fate specification. Comparative analyses of developmental single-cell atlases from zebrafish and sea urchin indicate that components of this machinery are conserved across [~]550 million years of bilaterian evolution with orthologous transcription factors showing similar temporal dynamics. Together, these findings point to a putatively conserved regulatory core that interfaces with other context-dependent transcription factors; this interplay accommodates monoaminergic multifunction and subtype diversity across distinct neuroanatomies.

evolutionary biology↗

Pre-Omicron Immunity Generates IgG⁺ but Not IgA⁺ Memory B Cells Reactive to Omicron Spike Protein

The emergence of the Omicron variant marked a major antigenic shift from previous SARS-CoV-2 variants. While the emergence of new variants of concern was associated with loss of protection from infection, protection from serious disease was maintained. What was less clear was whether this protection was associated with expansion, affinity maturation of pre-existing cross-reactive B cells, or de novo generation of variant-specific B cells. To define the cross-reactivity of memory B cell populations generated through infection and/or vaccination with pre-Omicron variant spike, we utilised archived samples from healthcare workers enrolled in the extensively monitored Panther study cohort. Using samples collected from Omicron-naive individuals approximately three months (106 days) after a third BNT162b2 vaccine dose, we analyzed the spike-specific B cell repertoire via multiparameter flow cytometry and B cell receptor (BCR) sequencing. Reactivity to both Lineage A and Omicron spike proteins was higher for serum IgG than IgA, and serum neutralisation potency was significantly reduced against pseudoviruses bearing the Omicron spike compared to those with Lineage A spike. The frequency of Omicron-reactive IgA+ B cells was markedly lower than that of Lineage A-reactive cells, whereas Omicron-reactive IgG+ memory B cells were more frequent. These responses were predominantly localized to classical memory and double-negative (DN) B cell subsets. BCR sequencing of donors unexposed to Omicron confirmed that Omicron-binding clones were class-switched and somatically mutated, indicating they originated from pre-existing memory B cells primed by vaccination or infection. Our findings demonstrate that memory B cells generated through infection and/or immunisation with pre-Omicron variants were primed for broad antigenic recognition despite Omicrons extensive genetic divergence. However, the diminished IgA+ B cell frequency suggests a weakened mucosal antibody defence, potentially explaining the continued susceptibility to infection despite preserved protection from severe disease.

immunology↗

Bioelectronic Modulation of Glioblastoma via Wireless Carbon Nanotube Porin Interfaces

The membrane potential (Vmem) and faradaic charge transfer, resulting from altered charge distribution due to ion channels, play a crucial role in cellular bioelectricity. Disruption of Vmem can activate pathways associated with cancer proliferation. Manipulating ion channels may therefore present an effective strategy for treating cancers that fail to respond to conventional therapies. One approach to target these channels, is to manipulate the membrane charge which involves the use of wireless bipolar electrodes such as carbon nanotube porins (CNTPs), which could be inserted into cell membranes to mimic these channels. By utilizing membrane dyes, we observed alterations in Vmem induced by CNTPs and externally applied electric fields. Analyses of cellular behaviors and processes indicated that Vmem is more receptive to stimuli in invasive cancers, while it leads to increased metabolism in less invasive cancers, with notable changes in the cell cycle occurring at approximately 48 hours post-treatment in GBM cell lines. This work shows that CNTPs and electric fields can be used to modulate Vmem and alter cancer cell processes, supporting their potential therapeutic capability.

biophysics↗