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Tan, S. L.

Publications and source records attributed to Tan, S. L..

2 recordsLinked to original sources

Degradation of IKAROS prevents epigenetic progression of T cell exhaustion in a novel antigen-specific assay

In cancer, chronic antigen stimulation drives effector T cells to exhaustion, limiting the efficacy of T cell therapies. Recent studies have demonstrated that epigenetic rewiring governs the transition of T cells from effector to exhausted states and makes a subset of exhausted T cells non-responsive to PD1 checkpoint blockade. Here, we describe an antigen-specific assay for T cell exhaustion that generates T cells that are phenotypically and transcriptionally similar to those found in human tumors. We performed a screen of human epigenetic regulators, identifying and validating IKAROS as a driver of T cell exhaustion. We found that the IKAROS degrader iberdomide prevents exhaustion by blocking chromatin remodeling at T cell effector enhancers and preserving binding of AP-1, NF-{kappa}B, and NFAT. Thus, our study uncovered a role for IKAROS as a driver of T cell exhaustion through epigenetic modulation, providing a rationale for the potential use of iberdomide in solid tumors to prevent T cell exhaustion. HighlightsO_LINovel in vitro assay generates antigen-specific exhausted T cells from human T cells C_LIO_LIIKAROS (IKZF1) is a key driver of T cell exhaustion C_LIO_LIIberdomide (IKZF1/3 degrader) prevents the progression of exhaustion C_LIO_LITF footprinting reveals IKAROS silences effector genes by inhibiting AP-1, NF-{kappa}B and NFAT binding C_LI

genomics↗

Substrate reduction therapy in a Drosophila melanogaster model of Sanfilippo syndrome

Sanfilippo syndrome, or mucopolysaccharidosis (MPS) types A, B, C or D, are neurodegenerative lysosomal storage disorders resulting from the lack of a specific enzyme involved in heparan sulfate (HS) catabolism. Several treatments are under evaluation for these conditions including substrate reduction therapy, with the most studied compound of this class being the isoflavone genistein. However, recent outcomes from a Phase III clinical trial have shown that high dose oral genistein does not significantly improve neurodevelopmental outcomes in MPS III patients. Here, we have tested an N-acetylglucosamine (GlcNAc) analogue inhibitor, 4-deoxy-GlcNAc peracetate, at reducing HS accumulation in cells from patients with Sanfilippo syndrome as a novel substrate reduction therapy. We then confirmed the capacity of this compound to modulate substrate accumulation in vivo in a Sanfilippo Drosophila model. Treatment with this compound significantly reduced HS in cultured MPS IIIA patient fibroblasts in a time-dependent manner. Neuronal and ubiquitous knockdown Drosophila models of MPS IIIC displaying elevated heparan sulfate and behavioural defects exhibited reduced HS burden relative to vehicle-treated controls following oral feeding with the GlcNAc analogue inhibitor. These findings indicate that this compound may be beneficial in slowing the accumulation of HS and may represent a novel therapeutic for Sanfilippo syndrome.

neuroscience↗