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Boskovic, S.

Publications and source records attributed to Boskovic, S..

2 recordsLinked to original sources

Target RNA abundance controls the collateral activity of RfxCas13d in human cells and zebrafish embryos

Collateral RNA cleavage by CRISPR-Cas13 effectors presents a critical obstacle to their application in biological research and therapeutics, yet the molecular determinants of this activity remain poorly understood. Here, we systematically investigate the collateral activity of various Cas13 variants in human cells in vitro and zebrafish embryos in vivo. Among these nucleases, RfxCas13d displays robust collateral activity that is highly dependent on target abundance. Targeting moderately expressed RNAs activates only a limited subset of RfxCas13d molecules, resulting in selective degradation of ectopically expressed transcripts, while endogenous RNAs remain largely protected. This selectivity indicates higher accessibility to exogenous RNAs through spatial proximity and temporal colocalization with activated RfxCas13d nuclease domains. In contrast, the recognition of highly abundant RNA targets drives simultaneous activation of a large fraction of cellular RfxCas13d, leading to widespread collateral cleavage of cellular RNAs, disruption of proteome homeostasis, and consequent cell toxicity and developmental defects in zebrafish embryos. Notably, transgenic zebrafish with target RNA expression restricted to endothelial or neuronal cell lineages exhibit localized collateral activity, leading to tissue-specific developmental abnormalities and motility deficits. These findings reveal that RfxCas13ds collateral activity is threshold-dependent, with abundant target RNA acting as a molecular switch for widespread collateral RNA degradation. This work underscores the need for careful consideration of target abundance when deploying RfxCas13d, and highlights PspCas13b as an alternative for RNA silencing free of collateral activity.

molecular biology↗

ankrd1a consistently marks cardiomyocytes bordering the injury or scar area and affects their dedifferentiation during zebrafish heart regeneration after cryoinjury

In contrast to humans, zebrafish have a remarkable ability to regenerate injured heart through a highly orchestrated process involving all cardiac structures. To replace the lost myocardium, resident cardiomyocytes (CMs) dedifferentiate and proliferate, invading the injured area. The response of the myocardium is preceded by the activation of the epicardium and endocardium, which form active scaffolds to provide mechanical and paracrine support to guide regeneration. New CMs use protrusions to migrate and invade fibrotic injured tissue, to replace it with functional myocardium. Here, we investigated the expression profile of the stress-responsive ankrd1a gene in different cardiac structures, at key time points during regeneration, aiming to gain insight into its precise roles during zebrafish heart regeneration. In the TgBAC(ankrd1a:EGFP) reporter line, transgene upregulation was restricted to the myocardium, initiated as early as 15 hours post-cryoinjury, and consistently marked CMs bordering the injury or scar area during regeneration. Transcriptome profiling and immunostaining revealed a potential role of ankrd1a in regulating CMs dedifferentiation, as well as changes in expression of genes associated with antigen presentation and extracellular matrix composition in the ankrd1a mutant. Our results indicate that the ankrd1a is dispensable for ventricle regeneration after cryoinjury and may be considered as a marker and fine-tuner in the healing process of injured cardiac muscle.

cell biology↗