Targeting SWI/SNF ATPases reduces neuroblastoma cell plasticity.
Man XuJason J HongXiyuan ZhangMing SunXingyu LiuJeeyoun KangHannah StackWendy FangHaiyan LeiXavier LacosteReona OkadaRaina JungRosa NguyenJack F ShernCarol J ThieleZhihui LiuPublished in: The EMBO journal (2024)
Tumor cell heterogeneity defines therapy responsiveness in neuroblastoma (NB), a cancer derived from neural crest cells. NB consists of two primary subtypes: adrenergic and mesenchymal. Adrenergic traits predominate in NB tumors, while mesenchymal features becomes enriched post-chemotherapy or after relapse. The interconversion between these subtypes contributes to NB lineage plasticity, but the underlying mechanisms driving this phenotypic switching remain unclear. Here, we demonstrate that SWI/SNF chromatin remodeling complex ATPases are essential in establishing an mesenchymal gene-permissive chromatin state in adrenergic-type NB, facilitating lineage plasticity. Targeting SWI/SNF ATPases with SMARCA2/4 dual degraders effectively inhibits NB cell proliferation, invasion, and notably, cellular plasticity, thereby preventing chemotherapy resistance. Mechanistically, depletion of SWI/SNF ATPases compacts cis-regulatory elements, diminishes enhancer activity, and displaces core transcription factors (MYCN, HAND2, PHOX2B, and GATA3) from DNA, thereby suppressing transcriptional programs associated with plasticity. These findings underscore the pivotal role of SWI/SNF ATPases in driving intrinsic plasticity and therapy resistance in neuroblastoma, highlighting an epigenetic target for combinational treatments in this cancer.
Keyphrases
- transcription factor
- single cell
- gene expression
- stem cells
- genome wide
- cell proliferation
- bone marrow
- papillary thyroid
- cell therapy
- dna methylation
- induced apoptosis
- dna damage
- squamous cell
- genome wide identification
- dna binding
- cancer therapy
- locally advanced
- public health
- signaling pathway
- radiation therapy
- oxidative stress
- cell cycle arrest
- lymph node metastasis
- cell death
- copy number
- smoking cessation
- circulating tumor cells
- heat shock
- circulating tumor
- cell fate