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Covacu, R.

Publications and source records attributed to Covacu, R..

3 recordsLinked to original sources

Systematic comparison of dCas9-based DNA methylation epimodifiers over time indicates efficient on-target and widespread off-target effects

CRISPR/dCas9-based epigenome editing systems, including DNA methylation epimodifiers, have greatly advanced molecular functional studies revolutionizing their precision and applicability. Despite their promise, challenges such as the magnitude and stability of the on-target editing and unwanted off-target effects underscore the need for improved tool characterization and design. We systematically compared specific targeting of the BACH2 gene promoter and genome-wide off-target effects of available and novel dCas9-based DNA methylation editing tools over time. We demonstrate that multimerization of the catalytic domain of DNA methyltransferase 3A enhances editing potency but also induces widespread, early methylation deposition at low-to-medium methylated promoter-related regions with specific gRNAs and, interestingly, also with non-targeting gRNAs. A small fraction of the methylation changes associated with transcriptional dysregulation and mapped predominantly to bivalent chromatin associating both with transcriptional repression and activation. Additionally, specific non-targeting control gRNA caused pervasive and long-lasting methylation-independent transcriptional alterations particularly in genes linked to RNA and energy metabolism. CRISPRoff emerged as the most efficient tool for stable targeting of the BACH2 promoter, with fewer and less stable off-target effects compared to other epimodifiers but with persistent transcriptome alterations. Our findings highlight the delicate balance between potency and specificity of epigenome editing and provide critical insights into the design and application of future tools to improve their precision and minimize unintended consequences.

molecular biology↗

ATF4 orchestrates IL-1α-induced senescence in adult neural stem cells

Adult neural stem cells (NSC) are a potential source for the regeneration of damaged tissue during neuropathological conditions, but much remains unexplored. In an attempt to study the influence of neuroinflammation on NSCs, we generated a transgenic reporter rat strain that expresses the Discosoma sp. red (DsRed) fluorophore in NSCs and subjected it to traumatic brain injury (TBI). Transcriptomic analysis of NSCs isolated from TBI revealed an enrichment of stress response genes that pertained to endoplasmic reticulum (ER) stress and integrated stress response (ISR). Downstream analysis on NSC cultures pinpointed IL-1 as a trigger of ISR in these cells. At concentration levels similar to the ones measured post-TBI in rats, IL-1 induced the translation of activating transcription factor 4 (ATF4), an ISR master regulator. Further, ATF4 was necessary for the IL-1 -dependent induction of a senescent profile in NSCs, which included a metabolic shift towards glycolysis, induction of senescence-associated secretory phenotype, SASP, and cell cycle arrest. In summary, the ISR/ATF4 pathway seems to play a major role in NSC function during neuroinflammation and provides a therapeutic tool for protecting the NSC pool during these conditions.

neuroscience↗

Melanoma plasticity is controlled by a TRIM28-JUNB mediated switch

The introduction of immune checkpoint blockade has revolutionized the treatment of metastatic melanoma1. However, 40-60% of patients with metastatic melanoma do not respond to immune checkpoint blockade, and a significant fraction of patients acquire resistance to treatment2,3. This resilience and aggressiveness of melanoma tumors is partly due to their ability to switch between invasive and proliferative states4,5. The transition between phenotypic states indicates that phenotype switching occurs through reversible epigenetic mechanisms rather than by acquisition of mutations6,7. Identifying the epigenetic mechanisms that underlie phenotype switching of melanoma cells could potentially lead to new therapeutic strategies. Here we report that the bromodomain protein TRIM28 (KAP1/TIF1{beta}) regulates a JUNB dependent phenotypic switch in melanoma cells. Knockdown of TRIM28 in melanoma cells reduced the expression of pro-invasive YAP1 signature genes, and led to reduced invasiveness and lung colonization. In contrast, TRIM28 knockdown increased the expression of KRAS signature genes and promoted tumor growth. TRIM28 interacted with the transcriptional elongation factors CDK9 and HEXIM1, and negatively regulated the transcriptional elongation of JUNB by RNA polymerase II. Rescue experiments demonstrated that the effects of TRIM28 knockdown were directly mediated by JUNB. Mechanistically, JUNB played a pivotal role in phenotype switching by inhibiting the invasiveness of melanoma cells and increasing the growth of melanoma tumors. Our results contribute to the understanding of melanoma plasticity, and suggest that cancer drugs inhibiting the transcriptional elongation of RNA polymerase II should be carefully evaluated in melanoma to exclude the risk for increased metastasis.

cancer biology↗