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Karinje, L.

Publications and source records attributed to Karinje, L..

2 recordsLinked to original sources

Rational engineering enhances the signal and modularity of an RNA barcoding technology to track gene transfer in microbiomes

Horizontal gene transfer drives microbial evolution and offers a powerful strategy for precision microbiome engineering. To track gene transfer within complex communities, we previously developed RNA-Addressable Modification (RAM), an RNA-barcoding technology where a mobile catalytic RNA barcodes host 16S ribosomal RNA (rRNA) upon gene transfer. However, the first-generation RAM suffered from low barcoding efficiency and lacked modularity, limiting its sensitivity and versatility. Here, we present RAM v2, a re-engineered system with significantly enhanced performance and modularity. By incorporating natural ribozyme structural motifs and improved barcode stability, we achieved a [~]200-fold increase in barcoded rRNA signal. To enhance modularity, we integrated CRISPRi-based repression and ribozyme insulators, facilitating easy promoter swapping. We validated RAM v2 on a mobilisable plasmid delivered to a complex wastewater microbial community, demonstrating a substantial increase in signal over the original system while barcoding similar taxa. These improvements enable higher-resolution, more sensitive monitoring of horizontal gene transfer, providing a robust toolkit for accelerating the study of gene transfer in microbial communities and advancing targeted microbiome engineering.

synthetic biology↗

The PP2A-like phosphatase Ppg1 mediates assembly of the Far complex to balance gluconeogenic outputs and adapt to glucose depletion

To sustain growth in changing nutrient conditions, cells reorganize outputs of metabolic networks and appropriately reallocate resources. Signaling by reversible protein phosphorylation can control such metabolic adaptations. In contrast to kinases, the functions of phosphatases that enable metabolic adaptation as glucose depletes are poorly studied. Using a Saccharomyces cerevisiae deletion screen, we identified the requirement of PP2A-like phosphatase Ppg1 for appropriate carbon allocations towards gluconeogenic outputs - trehalose, glycogen, UDP-glucose, UDP-GlcNAc - specifically after glucose depletion. This homeostatic Ppg1 function is mediated via regulation of the assembly of the Far complex - a multi-subunit complex that tethers to the ER and mitochondrial outer membranes as localized signaling hubs. We show that the Far complex assembly is Ppg1 catalytic activity-dependent. The assembled Far complex is required to maintain gluconeogenic outputs after glucose depletion. Glucose in turn regulates Far complex abundance. This Ppg1-mediated Far complex assembly, and dependent control of gluconeogenic outputs enhances adaptive growth under glucose depletion. Our study illustrates how protein dephosphorylation is required for the assembly of a multi-protein scaffold present in localized cytosolic pools, to thereby enable cells metabolically adapt to nutrient fluctuations.

systems biology↗