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Pelea, O.

Publications and source records attributed to Pelea, O..

2 recordsLinked to original sources

Precise engineering of chimeric antigen receptor expression levels defines T cell identity and function

Chimeric Antigen Receptor (CAR) T therapy is a potent treatment for haematological malignancies, but T cell exhaustion reduces its efficacy in many patients. Although high CAR transgene levels appear to drive T cell exhaustion, the relationship between CAR expression levels, T cell function, and transcriptional identity is yet to be mapped at high resolution. Here, we harness a high-resolution microRNA-based control system to precisely modulate CAR transgene expression levels and assess the impact on T cell activation, gene expression and function. By post-transcriptionally modulating CAR abundance, we show that differential CAR levels significantly impact T cell proliferation, cytokine production and tonic signalling. T cells with high CAR expression become strongly activated even at low target antigen densities, while those with low CAR expression are triggered only by high concentrations of their target. Single-cell RNA sequencing of primary T cells expressing a broad range of CAR transcript levels revealed global transcriptional programmes that become dysfunctional with increased CAR abundance, expanding our understanding of T cell exhaustion. Notably, we identified a narrow CAR expression range where the exhaustion transcriptional state is not triggered, demonstrating that T cell exhaustion can be controlled by fine-tuning CAR levels. This work demonstrates that CAR expression levels are key determinants of T cell transcriptional identity and function and introduces a tractable method to precisely tune CAR expression and T cell activity.

synthetic biology↗

Specific Modulation of CRISPR Transcriptional Activators through RNA-Sensing Guide RNAs in Mammalian Cells and Zebrafish Embryos

Cellular transcripts encode important information regarding cell identity and disease status. The activation of CRISPR in response to RNA biomarkers holds the potential for controlling CRISPR activity with spatiotemporal precision. This would enable the restriction of CRISPR activity to specific cell types expressing RNA biomarkers of interest while preventing unwanted activity in other cells. Here, we present a simple and specific platform for modulating CRISPR activity in response to RNA detection through engineering Streptococcus pyogenes Cas9 single-guide RNAs (sgRNAs). sgRNAs are engineered to fold into complex secondary structures that, in the ground state, inhibit their activity. The engineered sgRNAs become activated upon recognising complementary RNAs, thus enabling Cas9 to perform its function. Our approach enables CRISPR activation in response to RNA detection in both HEK293T cells and zebrafish embryos. Iterative design optimisations allowed the development of computational tools for generating sgRNAs capable of detecting RNA sequences of choice. Mechanistic investigations reveal that engineered sgRNAs are cleaved during RNA detection, and we identify key positions that benefit from chemical modifications to improve the stability of engineered sgRNAs in vivo. Our sensors open up novel opportunities for developing new research and therapeutic applications using CRISPR activation in response to endogenous RNA biomarkers.

synthetic biology↗