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Biology subjects

Chan, W. C.

Publications and source records attributed to Chan, W. C..

2 recordsLinked to original sources

Targeted engagement of β-catenin-Ikaros complexes in refractory B-cell malignancies

In most cell types, nuclear {beta}-catenin functions as prominent oncogenic driver and pairs with TCF7-family factors for transcriptional activation of MYC. Surprisingly, B-lymphoid malignancies not only lacked expression and activating lesions of {beta}-catenin but critically depended on GSK3{beta} for effective {beta}-catenin degradation. Our interactome studies in B-lymphoid tumors revealed that {beta}-catenin formed repressive complexes with lymphoid-specific Ikaros factors at the expense of TCF7. Instead of MYC-activation, {beta}-catenin was essential to enable Ikaros-mediated recruitment of nucleosome remodeling and deacetylation (NuRD) complexes for transcriptional repression of MYC. To leverage this previously unrecognized vulnerability of B-cell-specific repressive {beta}-catenin-Ikaros-complexes in refractory B-cell malignancies, we examined GSK3{beta} small molecule inhibitors to subvert {beta}-catenin degradation. Clinically approved GSK3{beta}-inhibitors that achieved favorable safety prof les at micromolar concentrations in clinical trials for neurological disorders and solid tumors were effective at low nanomolar concentrations in B-cell malignancies, induced massive accumulation of {beta}-catenin, repression of MYC and acute cell death. Preclinical in vivo treatment experiments in patient-derived xenografts validated small molecule GSK3{beta}-inhibitors for targeted engagement of lymphoid-specific {beta}-catenin-Ikaros complexes as a novel strategy to overcome conventional mechanisms of drug-resistance in refractory malignancies. HIGHLIGHTSO_LIUnlike other cell lineages, B-cells express nuclear {beta}-catenin protein at low baseline levels and depend on GSK3{beta} for its degradation. C_LIO_LIIn B-cells, {beta}-catenin forms unique complexes with lymphoid-specific Ikaros factors and is required for Ikaros-mediated tumor suppression and assembly of repressive NuRD complexes. C_LIO_LICRISPR-based knockin mutation of a single Ikaros-binding motif in a lymphoid MYC superenhancer region reversed {beta}-catenin-dependent Myc repression and induction of cell death. C_LIO_LIThe discovery of GSK3{beta}-dependent degradation of {beta}-catenin as unique B-lymphoid vulnerability provides a rationale to repurpose clinically approved GSK3{beta}-inhibitors for the treatment of refractory B-cell malignancies. C_LI GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=150 SRC="FIGDIR/small/532152v1_ufig1.gif" ALT="Figure 1"> View larger version (43K): org.highwire.dtl.DTLVardef@1b70e4dorg.highwire.dtl.DTLVardef@10bfcc8org.highwire.dtl.DTLVardef@b10eorg.highwire.dtl.DTLVardef@1683a3e_HPS_FORMAT_FIGEXP M_FIG C_FIG O_LIAbundant nuclear {beta}-catenin C_LIO_LI{beta}-catenin pairs with TCF7 factors for transcriptional activation of MYC C_LIO_LIB-cells rely on efficient degradation of {beta}-catenin by GSK3{beta} C_LIO_LIB-cell-specific expression of Ikaros factors C_LI Unique vulnerability in B-cell tumors: O_LIGSK3{beta}-inhibitors induce nuclear accumulation of {beta}-catenin. C_LIO_LI{beta}-catenin pairs with B-cell-specific Ikaros factors for transcriptional repression of MYC C_LI

cancer biology↗

MGA deletion leads to Richter's transformation via modulation of mitochondrial OXPHOS

Richters transformation (RT) is a progression of chronic lymphocytic leukemia (CLL) to aggressive lymphoma. MGA (Max gene associated), a functional MYC suppressor, is mutated at 3% in CLL and 36% in RT. However, genetic models and molecular mechanisms of MGA deletion driving CLL to RT remain elusive. We established a novel RT mouse model by knockout of Mga in the Sf3b1/Mdr CLL model via CRISPR-Cas9 to determine the role of Mga in RT. Murine RT cells exhibit mitochondrial aberrations with elevated oxidative phosphorylation (OXPHOS). We identified Nme1 (Nucleoside diphosphate kinase) as a Mga target through RNA sequencing and functional characterization, which drives RT by modulating OXPHOS. As NME1 is also a known MYC target without targetable compounds, we found that concurrent inhibition of MYC and ETC complex II significantly prolongs the survival of RT mice in vivo. Our results suggest that Mga-Nme1 axis drives murine CLL-to-RT transition via modulating OXPHOS, highlighting a novel therapeutic avenue for RT. Statement of SignificanceWe established a murine RT model through knockout of Mga in an existing CLL model based on co-expression of Sf3b1-K700E and del(13q). We determined that the MGA/NME1 regulatory axis is essential to the CLL-to-RT transition via modulation of mitochondrial OXPHOS, highlighting this pathway as a novel target for RT treatment.

cancer biology↗