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Kotecha, R.

Publications and source records attributed to Kotecha, R..

2 recordsLinked to original sources

A small molecule inhibitor of RNA-binding protein IGF2BP3 shows anti-leukemic activity

The RNA-binding protein IGF2BP3 is an oncofetal protein overexpressed in B-acute lymphoblastic leukemia and is critical for leukemogenesis in experimental models. With cancer-specific expression, functional dispensability for normal development, and an unleveraged pro-oncogenic function in mRNA homeostasis, IGF2BP3 represents an excellent target. With no small molecule inhibitors of IGF2BP3 in clinical use, we undertook an effort to identify new IGF2BP3 inhibitors using biochemical methods. A biochemical screen, followed by a cell-based counter screen, led to the identification of compounds with protein-RNA interaction inhibition and leukemic cell growth-inhibitory activity. One of these compounds, designated I3IN-002, shows consistent cell growth-inhibitory activity, altered cell cycle and increased apoptosis in multiple leukemia cell lines, and is the most potent inhibitor of IGF2BP3 reported to date. I3IN-002 was tolerated in mice when administered intraperitoneally and showed potent anti-leukemic activity in a syngeneic transplantation model of MLL-Af4 leukemia. I3IN-002 inhibits the function of IGF2BP3, disrupting in situ binding of IGF2BP3 to target mRNAs, and altering IGF2BP3-dependent gene expression regulation. Furthermore, cell-free and cellular thermal shift assays as well as drug affinity responsive target stability assays support on target activity of I3IN-002 for IGF2BP3. Thus, the identification of I3IN-002 paves the way for the discovery of potent and selective small molecule inhibitors of IGF2BP3.

cancer biology↗

A microRNA expression signature in infant t(4;11) MLL-AF4+ BCP-ALL uncovers novel therapeutic targets

Infants and children with MLL-AF4+ leukemia have an urgent need for more efficient and less aggressive therapy. In this study, we studied three microRNAs that are downregulated in MLL-AF4+ B-cell precursor acute lymphoblastic leukemia (BCP-ALL): miR-194, miR-99b and miR-125a-5p. When overexpressed, all three microRNAs impaired the survival of MLL-AF4+ leukemic blasts and the maintenance of MLL-AF4+ BCP-ALL. We identified microRNA target genes responsible for this phenotype that are upregulated in MLL-AF4+ BCP-ALL: CA5B, PPP3CA and PPP2R5C. Using CRISPR-Cas9 and specific inhibitors, we confirmed that CA5B, PPP3CA and PPP2R5C downregulation/inhibition severely compromised the proliferation and survival of MLL-AF4+ leukemic blasts. Importantly, CA5B, PPP3CA and PP2A inhibition by acetazolamide, tacrolimus and LB-100, respectively, showed high toxicity towards MLL-AF4+ leukemic blasts and reduced leukemia burden in vivo. This study highlights how the unique microRNA expression signature of patients with MLL-AF4+ BCP-ALL can be used to uncover novel therapeutic avenues and accelerate drug repurposing. Statement of significanceThere is an urgent need to identify novel therapeutic avenues for patients with MLL-AF4+ BCP-ALL that are more effective and less aggressive. This study identified three clinically available drugs (acetazolamide, tacrolimus and LB-100) with high and selective toxicity towards MLL-AF4+ leukemic cells.

cancer biology↗