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Posttranslational modification of Aurora A-NSD2 loop contributes to drug resistance in t(4;14) multiple myeloma
Hongmei Jiang1, Yixuan Wang1, Jingjing Wang1
1The Province and Ministry Co-sponsored Collaborative Innovation Center for Medical Epigenetics, Tianjin Key Laboratory of Cellular Homeostasis and Human Diseases, Department of Physiology and Pathophysiology, School of Basic Medical Science, Tianjin Medical University, Tianjin, China.
Background:
t(4;14)(p16;q32) cytogenetic abnormality renders high level of histone methyltransferase NSD2 in multiple myeloma (MM) patients, and predicts poor clinical prognosis, but mechanisms of NSD2 in promoting chemoresistance have not been well elucidated.
Methods:
An epigenetics compound library containing 181 compounds was used to screen inhibitors possessing a prior synergistic effect with bortezomib (BTZ) in vitro. Molecular biology techniques were applied to uncover underlying mechanisms. Transcriptome profile assay was performed by RNA-seq. NSG mouse-based xenograft model and intra-bone model were applied to qualify the synergistic effect in vivo.
Results:
We identified an Aurora kinase A inhibitor (MLN8237) possessed a significant synergistic effect with BTZ on t(4;14) positive MM cells. Aurora A protein level positively correlated with NSD2 level, and gain- and loss-of-functions of Aurora A correspondingly altered NSD2 protein and H3K36me2 levels. Mechanistically, Aurora A phosphorylated NSD2 at S56 residue to protect the protein from cleavage and degradation, thus methylation of Aurora A and phosphorylation of NSD2 bilaterally formed a positive regulating loop. Transcriptome profile assay of MM cells with AURKA depletion identified IL6R, STC2 and TCEA2 as the downstream target genes responsible for BTZ-resistance (BR). Clinically, higher expressions of these genes correlated with poorer outcomes of MM patients. Combined administration of MLN8237 and BTZ significantly suppressed tumour growth in LP-1 cells derived xenografts, and remarkably alleviated bone lesion in femurs of NSG mice.
Conclusions:
Aurora A phosphorylates NSD2 at S56 residue to enhance NSD2 methyltransferase activity and form a positive regulating loop in promoting MM chemoresistance, thus pharmacologically targeting Aurora A sensitizes t(4;14) positive MM to the proteasome inhibitors treatment. Our study uncovers a previously unknown reason of MM patients with t(4;14) engendering chemoresistance, and provides a theoretical basis for developing new treatment strategy for MM patients with different genomic backgrounds.
Insights
Targeting Aurora kinase A enhances bortezomib effectiveness in multiple myeloma patients with the t(4;14) genetic abnormality. This study reveals a new mechanism of chemoresistance involving Aurora A and NSD2, offering a basis for novel therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- The t(4;14)(p16;q32) cytogenetic abnormality in multiple myeloma (MM) leads to high levels of histone methyltransferase NSD2, associated with poor prognosis.
- The precise mechanisms by which NSD2 promotes chemoresistance in MM remain incompletely understood.
Purpose of the Study:
- To screen for epigenetic compounds that synergize with bortezomib (BTZ) in MM.
- To elucidate the molecular mechanisms underlying chemoresistance in t(4;14)-positive MM.
Main Methods:
- Screening of an 181-compound epigenetics library for synergy with BTZ.
- Utilizing molecular biology techniques, RNA-sequencing for transcriptome analysis, and NSG mouse models for in vivo validation.
Main Results:
- An Aurora kinase A inhibitor, MLN8237, showed significant synergy with BTZ in t(4;14)-positive MM cells.
- Aurora A positively correlates with NSD2 levels; Aurora A phosphorylates NSD2 at S56, stabilizing it and forming a positive regulatory loop.
- Downstream targets IL6R, STC2, and TCEA2 were identified as mediators of BTZ resistance, with higher expression correlating with poorer patient outcomes.
Conclusions:
- Aurora A-mediated phosphorylation of NSD2 enhances its activity, promoting MM chemoresistance.
- Targeting Aurora A sensitizes t(4;14)-positive MM to proteasome inhibitors, providing a new therapeutic avenue.
- This study reveals a novel mechanism of chemoresistance in MM and offers a theoretical basis for developing targeted treatment strategies.
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