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Dix, T. C.

Publications and source records attributed to Dix, T. C..

3 recordsLinked to original sources

Stochastic splicing and deterministic inclusion of exon variables promote diversification of Down Syndrome Cell Adhesion Molecule expression

Mutually alternative splicing in Down Syndrome Cell Adhesion Molecule (Dscam) gene of arthropods generates extraordinary molecular diversity producing tens of thousands of isoforms. From three clusters of variable exons directing homophilic interactions, one single exon is selected. Homophilic repulsion of identical isoforms directs branching of axons running in neuronal tracts, and of dendrites for generation of overlapping dendritic fields through selection of different variants in neighbouring cells. Here, we investigate the spatial inclusion of Dscam alternative exons in Drosophila and honey bees using reporter genes and in situ hybridizations, respectively. In Drosophila, we find that Dscam variable clusters 4 and 9 splicing is not always productive in reporters, resulting in suppressed expression in optic lobes and variable expression across identical cells in salivary glands and photoreceptor fields. However, in photoreceptor neurons in larvae, we find repetitive inclusion of specific variants suggesting that stochastic expression is generated at the level of splicing of the variable cluster, but inclusion of variants follows a deterministic path. Likewise, we find in larval brains, inclusion of exon 4 and 9 variants in compartmentalised and repetitive patterns. In foraging honey bees, inclusion of exon 4 and 10 variants occurs in compartmentalised patterns differing between mushroom body lobes and individuals. This indicates that initial equal inclusion of exon variants is directed to compartmentalised inclusion through experience. These findings detail a new model of experience directed alternative splicing in Dscam incorporating stochasticity through splicing productivity and deterministic selection of individual isoforms.

molecular biology↗

TET dioxygenases localize at splicing speckles and promote RNA splicing

The dynamic regulation of RNA metabolism plays a crucial part in cellular function, with emerging evidence suggesting an important role for RNA modifications in this process. This study explores the relationship between RNA splicing and the TET dioxygenase activity, shedding light on the role of hm5C (RNA 5-hydroxymethylcytosine), and TET proteins, in RNA metabolism. Integrating data from mass spectrometry, AlphaFold structural modeling, microscopic analysis, and different functional assays including in vitro splicing, TET proteins were found to regulate splicing. We show that TET1, TET2, and TET3 interact with the splicing factors U2AF1 and U2AF2. Interestingly, TET dioxygenases localize in splicing speckles in mammalian and Drosophila cells. TET speckles association is RNA dependent, as it is TET interaction with splicing factors. Furthermore, in vitro splicing assays revealed that all three TET proteins promote splicing efficiency, and the oxidation of m5C to hm5C can restore splicing efficiency in vitro. The latter highlights the regulatory role of cytosine modifications in RNA metabolism. These findings provide insights into the complex interplay between RNA modifications and splicing, suggesting a multifaceted role for TET proteins in RNA metabolism beyond its canonical DNA demethylation function. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=104 SRC="FIGDIR/small/641893v1_ufig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@1a304bborg.highwire.dtl.DTLVardef@18b91d3org.highwire.dtl.DTLVardef@12efeforg.highwire.dtl.DTLVardef@1464355_HPS_FORMAT_FIGEXP M_FIG C_FIG Highlights- TET1 localizes in splicing speckles in an RNA-dependent manner - TET proteins, especially TET1, interact with the splicing factors U2AF1 and U2AF2 - TET proteins increase splicing efficiency, independent of their catalytic activity - RNA 5-methylcytosine (m5C) oxidation to 5-hydroxymethylcytosine (hm5C) restores splicing efficiently in vitro

cell biology↗

sgRNA structural constraints and genetic limitations for efficient Cas9 genome editing to generate knock-outs

A single guide RNA (sgRNA) directs Cas9 nuclease for gene-specific scission of double-stranded DNA. High Cas9 activity is essential for efficient gene editing to generate gene deletions and gene replacements by homologous recombination. However, cleavage efficiency is below 50% for more than half of randomly selected sgRNA sequences in human cell culture screens or model organisms. We used in vitro assays to determine intrinsic molecular parameters for maximal sgRNA activity including correct folding of sgRNAs and Cas9 structural information. From comparison of over 10 data sets, we find major constraints in sgRNA design originating from defective secondary structure of the sgRNA, sequence context of the seed region, GC context and detrimental motifs, but we also find considerable variation among different prediction tools when applied to different data sets. To aid selection of efficient sgRNAs, we developed web-based PlatinumCRISPr, an sgRNA design tool to evaluate base-pairing and sequence composition parameters for optimal design of highly efficient sgRNAs for Cas9 genome editing named PlatinumCRISPr. We applied this tool to select sgRNAs to efficiently generate gene deletions in Drosophila Ythdc1 and Ythdf, that bind to N6 methylated adenosines (m6A) in mRNA. However, we discovered, that generating small deletions with sgRNAs and Cas9 leads to ectopic reinsertion of the deleted DNA fragment elsewhere in the genome. These insertions can be removed by standard genetic recombination and chromosome exchange. These new insights into sgRNA design and the mechanisms of CRISPR-Cas9 genome editing advances efficient use of this technique for safer applications in humans.

molecular biology↗