An effective non-viral platform for in vivo delivery of dCas9-KRAB/RNPs, which could be adapted for the repression of any oncogene is characterized.
Abstract
Despite the revolutionary impact of genome engineering tools in medicine, the safe and effective intracellular delivery of CRISPR remains a major obstacle for clinical applications. Here, we utilize precision molecular targeting and delivery strategies based on CRISPR/dCas9 systems adapted for epigenetic repression (dCas9-KRAB) to silence oncogenic drivers with high selectivity. As proof-of-principle, we target the EWSR1-FLI1 translocation, which encodes a chimeric and hard-to-drug oncogenic transcription factor driving approximately 85% of the cases of Ewing Sarcoma (EWS)-an aggressive childhood malignancy. We describe the development of a programmable non-viral polymeric system for the delivery of dCas9-KRAB as ribonucleoprotein (RNP) payloads for EWSR1-FLI1 repression. We demonstrate highly efficient intracellular delivery of RNPs loaded in polyamide-amine (PAMAM) polymers functionalized by guanidino groups, resulting in robust silencing of EWSR1-FLI1 both in established cell line xenografts and in EWS-related patient-derived xenografts (PDXs) of EWS. We show that silencing of EWSR1-FLI1 is accompanied by potent anti-tumor effects. Collectively, we characterize an effective non-viral platform for in vivo delivery of dCas9-KRAB/RNPs, which could be adapted for the repression of any oncogene. We further outline dCas9/RNP formulations for future therapeutic applications to treat poor-prognosis cancers driven by hard-to-drug oncogenes.
It is demonstrated that expression of SNHG1, SNHG12, and SNHG30 in EWS cells contributes to the maintenance of cancer cell fitness via their role in intron-processed snoRNAs encoded in SNHG1 and SNHG12.
Marcela Briones-Martin-Del-Campo, Alex G. Lee, Truc Dinh et al.· NAR Cancer· 0 citations
The identification of the splicing factor RBM39 as a vulnerability in ES is supported by the extraordinary sensitivity of these tumors to monotherapy with RBM39 degrader indisulam, highlighting the potential of this approach as a novel and promising therapeutic strategy for Ewing sarcoma.
Irene Cuervas, Sophie Bonnal, Evelyn Andrades et al.· bioRxiv· 0 citations
The strategies detailed here define a next-generation precision-oncology paradigm capable of anticipating tumor evolution, overcoming resistance, and preventing metastatic relapse, by uniting AI-guided design, circadian reprogramming, dormancy eradication, and logic-gated delivery.
Anmar Ghanim Taki, Abdulkareem Shareef, Vimal Arora et al.· Iranian Journal of Basic Med...· 0 citations
Children with high-risk neuroblastomas (NB) marked by in-frame fusion mutations in the ATRX chromatin remodeler (“ATRX-IFF”) display highly chemoresistant disease. As a result, despite multi-modality therapies, these children have poor overall survival. At present, there are no molecularly-targeted agents for these t...
M. A. Mohammad Nezhady, S. Sati, D. E. Prado et al.· Cancer Research· 0 citations
Ewing sarcoma tumors are defined by chromosomal translocations fusing
EWSR1
to ETS family genes, most commonly
FLI1
. The resulting EWS::FLI1 fusion oncoprotein drives tumorigenesis while simultaneously generating unique metabolic and molecular dependencies that may be exploited for Ewing sarcoma–specific therapi...
Mian T. Mhindu, S. Koppenhafer, Mason G. Lyons et al.· Frontiers in Oncology· 0 citations
The limited precision of controlled drug release remains a major challenge for precision cancer therapy. Herein, a protein and nucleic acid dual-biomarker-responsive CRISPR AND logic nanodevice, termed LogiCas, is developed by integrating APE1 and miRNA-21 as dual inputs for precise tumor therapy. Leveraging the string...
Jing-Ge Zhang, Yu-He Yang, Yong-Hua Wu et al.· Journal of Controlled Releas...· 0 citations
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