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Updated: May 1, 2026

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Alternative splicing variants of human Fbx4 disturb cyclin D1 proteolysis in human cancer
Xiufeng Chu1, Ting Zhang1, Jie Wang1
1Department of Microbiology & Infectious Disease Center, School of Basic Medical Sciences, Peking University Health Science Center, Beijing 100191, China.
Abstract:
Fbx4 is a specific substrate recognition component of SCF ubiquitin ligases that catalyzes the ubiquitination and subsequent degradation of cyclin D1 and Trx1. Two isoforms of human Fbx4 protein, the full length Fbx4α and the C-terminal truncated Fbx4β have been identified, but their functions remain elusive. In this study, we demonstrated that the mRNA level of Fbx4 was significantly lower in hepatocellular carcinoma tissues than that in the corresponding non-tumor tissues. More importantly, we identified three novel splicing variants of Fbx4: Fbx4γ (missing 168-245 nt of exon1), Fbx4δ (missing exon6) and a N-terminal reading frame shift variant (missing exon2). Using cloning sequencing and RT-PCR, we demonstrated these novel splice variants are much more abundant in human cancer tissues and cell lines than that in normal tissues. When expressed in Sk-Hep1 and NIH3T3 cell lines, Fbx4β, Fbx4γ and Fbx4δ could promote cell proliferation and migration in vitro. Concordantly, these isoforms could disrupt cyclin D1 degradation and therefore increase cyclin D1 expression. Moreover, unlike the full-length isoform Fbx4α that mainly exists in cytoplasm, Fbx4β, Fbx4γ, and Fbx4δ locate in both cytoplasm and nucleus. Since cyclin D1 degradation takes place in cytoplasm, the nuclear distribution of these Fbx4 isoforms may not be involved in the down-regulation of cytoplasmic cyclin D1. These results define the impact of alternative splicing on Fbx4 function, and suggest that the attenuated cyclin D1 degradation by these novel Fbx4 isoforms provides a new insight for aberrant cyclin D1 expression in human cancers.
Insights
Novel Fbx4 splice variants promote cancer progression by disrupting cyclin D1 degradation. These variants are more abundant in cancer tissues, leading to increased cell proliferation and migration, offering new insights into cancer development.
Area of Science:
- Molecular Biology
- Cancer Research
- Cell Biology
Background:
- Fbx4 is a component of SCF ubiquitin ligases, targeting cyclin D1 and Trx1 for degradation.
- Two known Fbx4 isoforms (Fbx4α and Fbx4β) exist, but their functions are not fully understood.
- Fbx4 mRNA levels are reduced in hepatocellular carcinoma.
Purpose of the Study:
- To investigate the functional roles of Fbx4 isoforms and novel splice variants.
- To explore the association between Fbx4 expression and hepatocellular carcinoma.
- To elucidate the mechanism by which Fbx4 variants affect cyclin D1 regulation.
Main Methods:
- Cloning and sequencing to identify novel Fbx4 splice variants.
- RT-PCR to quantify variant abundance in normal and cancer tissues.
- Cell line expression studies (Sk-Hep1, NIH3T3) to assess functional effects.
- Western blotting to analyze cyclin D1 degradation and expression.
Main Results:
- Three novel Fbx4 splice variants (Fbx4γ, Fbx4δ, and a reading frame shift variant) were identified.
- These novel variants are significantly more abundant in human cancer tissues and cell lines.
- Fbx4β, Fbx4γ, and Fbx4δ promote cell proliferation and migration by inhibiting cyclin D1 degradation.
- Unlike Fbx4α, these variants localize to both cytoplasm and nucleus.
Conclusions:
- Alternative splicing significantly impacts Fbx4 function.
- Novel Fbx4 isoforms contribute to aberrant cyclin D1 expression in cancer.
- These findings provide new insights into the role of Fbx4 in hepatocellular carcinoma development.
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