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Published on: May 14, 2016
DYNLL1 accelerates cell cycle via ILF2/CDK4 axis to promote hepatocellular carcinoma development and palbociclib
Yuechen Liu1,2, Zhenkang Li1,2, Jinchao Zhang1,2
1Department of General Surgery, Nanfang Hospital, Southern Medical University, Guangzhou, Guangdong Province, 510515, China.
Background:
Disorder of cell cycle represents as a major driver of hepatocarcinogenesis and constitutes an attractive therapeutic target. However, identifying key genes that respond to cell cycle-dependent treatments still facing critical challenges in hepatocellular carcinoma (HCC). Increasing evidence indicates that dynein light chain 1 (DYNLL1) is closely related to cell cycle progression and plays a critical role in tumorigenesis. In this study, we explored the role of DYNLL1 in the regulation of cell cycle progression in HCC.
Methods:
We analysed clinical specimens to assess the expression and predictive value of DYNLL1 in HCC. The oncogenic role of DYNLL1 was determined by gain or loss-of-function experiments in vitro, and xenograft tumour, liver orthotopic, and DEN/CCl4-induced mouse models in vivo. Mass spectrometry analysis, RNA sequencing, co-immunoprecipitation assays, and forward and reverse experiments were performed to clarify the mechanism by which DYNLL1 activates the interleukin-2 enhancer-binding factor 2 (ILF2)/CDK4 signalling axis. Finally, the sensitivity of HCC cells to palbociclib and sorafenib was assessed by apoptosis, cell counting kit-8, and colony formation assays in vitro, and xenograft tumour models and liver orthotopic models in vivo.
Results:
DYNLL1 was significantly higher in HCC tissues than that in normal liver tissues and closely related to the clinicopathological features and prognosis of patients with HCC. Importantly, DYNLL1 was identified as a novel hepatocarcinogenesis gene from both in vitro and in vivo evidence. Mechanistically, DYNLL1 could interact with ILF2 and facilitate the expression of ILF2, then ILF2 could interact with CDK4 mRNA and delay its degradation, which in turn activates downstream G1/S cell cycle target genes CDK4. Furthermore, palbociclib, a selective CDK4/6 inhibitor, represents as a promising therapeutic strategy for DYNLL1-overexpressed HCC, alone or particularly in combination with sorafenib.
Conclusions:
Our work uncovers a novel function of DYNLL1 in orchestrating cell cycle to promote HCC development and suggests a potential synergy of CDK4/6 inhibitor and sorafenib for the treatment of HCC patients, especially those with increased DYNLL1.
Insights
Dynein light chain 1 (DYNLL1) drives hepatocellular carcinoma (HCC) by activating the ILF2/CDK4 pathway. Targeting CDK4/6 with palbociclib, especially combined with sorafenib, shows promise for treating DYNLL1-overexpressed HCC.
Area of Science:
- Hepatology
- Oncology
- Molecular Biology
Background:
- Cell cycle dysregulation is a key driver of hepatocarcinogenesis.
- Identifying effective therapeutic targets for hepatocellular carcinoma (HCC) remains challenging.
- Dynein light chain 1 (DYNLL1) is implicated in cell cycle progression and tumorigenesis.
Purpose of the Study:
- To investigate the role of DYNLL1 in regulating cell cycle progression in HCC.
- To elucidate the molecular mechanism underlying DYNLL1's function in HCC.
- To evaluate DYNLL1 as a predictive biomarker and therapeutic target in HCC.
Main Methods:
- Analysis of clinical HCC specimens for DYNLL1 expression and prognostic value.
- In vitro and in vivo gain/loss-of-function experiments in various HCC models.
- Mass spectrometry, RNA sequencing, and co-immunoprecipitation to define the DYNLL1/ILF2/CDK4 signaling axis.
- Assessment of sensitivity to palbociclib and sorafenib in HCC cells and models.
Main Results:
- DYNLL1 expression is elevated in HCC tissues and correlates with poor prognosis.
- DYNLL1 promotes hepatocarcinogenesis through in vitro and in vivo models.
- DYNLL1 interacts with ILF2, enhancing its expression, which subsequently stabilizes CDK4 mRNA, activating G1/S cell cycle genes.
- Palbociclib, a CDK4/6 inhibitor, demonstrates therapeutic potential in DYNLL1-overexpressed HCC.
Conclusions:
- DYNLL1 plays a critical role in promoting HCC development by orchestrating cell cycle progression.
- The DYNLL1/ILF2/CDK4 axis represents a novel pathway in HCC pathogenesis.
- Combined therapy with CDK4/6 inhibitors (palbociclib) and sorafenib offers a promising strategy for DYNLL1-high HCC patients.
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