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Published on: December 26, 2016
The SF3b complex in cancer: structural basis, molecular mechanisms, and therapeutic opportunities
Shuling Li1, Litong Shang2, Jiayi Yang3
1China-US (Henan) Hormel Cancer Institute, School of Basic Medical Sciences, Zhengzhou University, Zhengzhou 450000, Henan, China., Zhengzhou, Henan,China, China.
Abstract:
Aberrant alternative splicing is increasingly recognized as a fundamental driver of cancer initiation and progression. The splicing factor 3b (SF3b) complex, an essential component of the U2 small nuclear ribonucleoprotein (snRNP), plays a pivotal role in branch point sequence (BPS) recognition and in coordinating spliceosome assembly and activation. Recent advances in cryo-electron microscopy (cryo-EM) have revealed the structural plasticity of the SF3b complex, highlighting its dynamic transition between open and closed conformations that stabilize pre-mRNA substrates during the splicing cycle. Genetic and functional perturbations of SF3b, particularly recurrent mutations in its core subunit SF3B1, are frequently observed in human malignancies, most prominently in myelodysplastic syndromes (MDS) and chronic lymphocytic leukemia (CLL). These alterations reshape splice site selection, generate aberrant transcript isoforms, and reprogram cancer-relevant signaling pathways. In this review, we integrate current knowledge of the molecular architecture and regulatory dynamics of the SF3b complex with its emerging roles in cancer-associated splicing programs. We discuss the consequences of SF3b mutations and non-mutational dysregulation on transcriptome remodeling, genome stability, and tumor cell fitness, as well as the contribution of post-translational modifications of SF3b components to splicing control. Furthermore, we critically evaluate recent progress in targeting the SF3b complex, focusing on the structural basis of SF3b inhibitors, insights gained from preclinical studies, and lessons learned from early-phase clinical trials. Collectively, this review positions the SF3b complex as a disease-modifying hub at the intersection of RNA splicing and cancer biology, and highlights the opportunities and challenges associated with therapeutically targeting spliceosome components in oncology.
Insights
Aberrant alternative splicing driven by the SF3b complex is key in cancer. Targeting this splicing factor offers new therapeutic strategies for malignancies like MDS and CLL.
Area of Science:
- Oncology
- Molecular Biology
- RNA Splicing
Background:
- Aberrant alternative splicing is a critical driver of cancer initiation and progression.
- The SF3b complex, part of the U2 snRNP, is vital for spliceosome assembly and branch point recognition.
- SF3b complex mutations, especially in SF3B1, are common in myelodysplastic syndromes (MDS) and chronic lymphocytic leukemia (CLL).
Purpose of the Study:
- To review the molecular architecture and regulatory dynamics of the SF3b complex.
- To integrate SF3b's role in cancer-associated splicing programs.
- To evaluate therapeutic strategies targeting the SF3b complex in oncology.
Main Methods:
- Integration of current knowledge on SF3b complex structure and dynamics.
- Analysis of genetic and functional perturbations of SF3b.
- Critical evaluation of SF3b inhibitors and clinical trial data.
Main Results:
- SF3b complex alterations reshape splice site selection, generating aberrant transcripts.
- SF3b dysregulation impacts transcriptome remodeling, genome stability, and tumor cell fitness.
- Cryo-EM revealed SF3b's dynamic conformations crucial for splicing regulation.
Conclusions:
- The SF3b complex is a central hub connecting RNA splicing and cancer biology.
- Targeting the SF3b complex presents promising therapeutic opportunities in oncology.
- Understanding SF3b's role is crucial for developing novel cancer treatments.
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