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Jacobi, R.

Publications and source records attributed to Jacobi, R..

2 recordsLinked to original sources

Stabilized ion selectivity corrects activation drift in kalium channelrhodopsins

Effective optogenetic inhibition of neuronal activity requires tools that can reliably silence neurons across diverse conditions and cell types. Potassium-selective channelrhodopsins (KCRs) have emerged as promising alternatives to chloride-conducting channels for optogenetic inhibition of cellular excitability, but they exhibit dynamic ion selectivity shift under prolonged or intense illumination, causing activation. This inhibition to activation transition limits their utility for silencing circuits. Through behavioral and electrophysiological analyses in Drosophila, and C. elegans, we found that the C29D variant of KCR1 maintains the most stable potassium selectivity among tested variants. While other KCR variants showed excitation defects, KCR1-C29D consistently provided robust in vivo inhibition across cell types, illumination conditions, and species. Electrophysiological recordings revealed that while most KCRs show declining PK/PNa ratios during illumination, KCR1-C29D maintains stable ion selectivity, consistent with its robust silencing capability. This work resolves a key limitation of KCR optogenetics and shows that KCR1-C29D is a superior tool for reliable inhibition. Our findings offer valuable mechanistic and practical insights for the design of next generation optogenetic inhibitors.

neuroscience↗

Functional copy number variation in SQUALENE EPOXIDASE-LIKE genes affects photosystem II efficiency in Arabidopsis

In this study, we found a single quantitative trait locus for photosystem II efficiency ({Phi}PSII) in the Arabidopsis Ler-0 x Col-0 recombinant inbred line population. This locus on chromosome 5 is caused by genetic variation in a cluster of tandemly repeated SQUALENE EPOXIDASE-LIKE (SQE-like) genes, with unknown function. We show the QTL is caused by variation in the SQE5, SQE6 and SQE7 genes affecting {Phi}PSII in a dose-dependent manner, due to a combination of functional copies. Col-0 carries only one functional copy, SQE5, while Ler-0 carries functional copies of SQE6 and SQE7. Overexpression of a functional copy of SQE6 enhances {Phi}PSII to exceed that of the Ler-0 parent in Arabidopsis, but does not affect {Phi}PSII in tobacco. Phylogenetic analysis of the SQE and SQE-likes in 135 plant species revealed that the SQE-likes are evolutionary confined to two sister families, the Cleomaceae and Brassicaceae, and diversified independently. The tandem cluster of four SQE-like genes in Arabidopsis is likely the result of two recent gene duplication events, one generating SQE5 from SQE4, the next one generating SQE6 and SQE7 from SQE5. The involvement of SQE-like genes in photosynthesis will open up new avenues to determine the function of these novel genes.

plant biology↗