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Miklik, D.

Publications and source records attributed to Miklik, D..

2 recordsLinked to original sources

Long Terminal Repeats of Gammaretroviruses Retain Stable Expression After Integration Retargeting or Knock-In into the Restrictive Chromatin of Lamina-Associated Domains

Retroviruses integrate their genomes into the genomes of infected host cells and form a genetic platform for stable gene expression. Epigenetic silencing can, however, hamper the expression of integrated provirus. As gammaretroviruses ({gamma}RVs) preferentially integrate into sites of active promoters and enhancers, the high expression activity of {gamma}RVs can be attributed to the integration preference. Long terminal repeats (LTRs) of some {gamma}RVs were shown to act as potent promoters for gene expression. Here, we investigate the capacity of different {gamma}RV LTRs to drive stable expression inside a non-preferred epigenomic environment using diverse retroviral vectors and CRISPR-Cas9-directed vector knock-in. We demonstrate that different {gamma}RV LTRs are either rapidly silenced or long-term active with active proviral population prevailing under normal and retargeted integration. In addition, we show that lamina-associated domains (LADs) can be targeted by CRISPR-Cas9 for vector insertion leading to {gamma}RV LTR-driven long-term stable gene expression. Alternatively to established {gamma}RV systems, the LTRs of feline leukemia virus and koala retrovirus are capable of driving stable, albeit intensity-diverse, transgene expression in LADs. Altogether, we show that despite the occurrence of rapid silencing events, the majority of {gamma}RV LTRs can drive stable expression after retrovirus integration or CRISPR-Cas9-directed knock-in outside of the preferred chromatin landscape.

molecular biology↗

Unraveling the Palindromic and Non-Palindromic Motifsof Retroviral Integration Site Sequences by Statistical Mixture Models

A weak palindromic nucleotide motif is the hallmark of retroviral integration site alignments. Previously, the motifs were explained by an overlap of the non-palindromic motif being present on one of the half-site of targeted sequences. Here, we applied multicomponent mixture models to integration site sequences of diverse retroviruses. We demonstrate that the weak palindromic motifs result from a combination of independent sub-motifs restricted to only a few positions proximal to the site of integration. The sub-motifs are formed by either palindrome-forming nucleotide preference or nucleotide exclusion. Using the mixture models, we also identified HIV-1-favored palindromic sequences in Alu repeats serving as hotspots for integration. Our work presents a novel statistical approach to the analysis of retroviral integration site sequences, which can form a valuable tool in the analysis of DNA motifs. The presented results shed new light on the selection of target site sequences for retroviral integration.

microbiology↗