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Mascarenhas, M. X.

Publications and source records attributed to Mascarenhas, M. X..

2 recordsLinked to original sources

Molecularly Distinct Innexin Gap Junction Channels and Undocked Hemichannels Regulate Glia Morphology and Function in Caenorhabditis elegans

Glial cells across species orchestrate nervous system development, maintenance, and function through ionic and metabolic crosstalk. These cells express multiple gap junction and hemichannel components. However, the mechanisms by which glia communicate utilizing these channel components to support nervous system architecture and function remain poorly understood. By studying GLR glial cells in Caenorhabditis elegans, we show that individual glial cells employ distinct innexin channel configurations to support specific functional roles, utilizing discrete downstream cellular mechanisms. We find that while innexins UNC-7and UNC-9 function as gap junction channels, the innexin INX-18 operates independently to form undocked hemichannels in discrete domains within the same cells. In this combinatorial configuration, UNC-7/UNC-9 gap junctions specifically regulate Synaptobrevin/SNB-1 localization in RME neurons, as previously reported. However, both channel types function non-redundantly to maintain glial morphology by regulating the Calpain/CLP-4 and CDK-5 pathway through cell-autonomous modulation of intracellular calcium levels. In contrast, INX-18 hemichannels in GLR glia regulate high-salt-induced paralysis behavior through distinct downstream cellular mechanisms, potentially in conjunction with tyramine signaling. Altogether, our findings demonstrate a broader repertoire of innexin channel utilization at the individual glial cell level, supporting specific aspects of nervous system maintenance and functioning.

neuroscience↗

An Improved Protocol for High-Efficiency and Cost-Effective CRISPR/Cas9-Mediated Knock-ins in C. elegans

CRISPR/Cas9-mediated homology-directed precise genome editing using long single-stranded DNA (ssDNA) donors has expanded the possibilities for generating defined genetic modifications. However, the required ssDNA donor preparation can be technically demanding and often requires extensive locus-specific sequence design. Here, we examined parameters influencing ssDNA donor-mediated genome editing and developed approaches to simplify donor preparation using {lambda}-exonuclease-mediated ssDNA generation. By evaluating donor designs across multiple genomic loci, we found that efficient genome editing can be achieved with relatively short homology regions for a range of insertion sizes. These findings provide a basis for simplifying ssDNA donor preparation and the overall gene-editing pipeline, potentially facilitating its application across species.

molecular biology↗