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Updated: Jan 26, 2026

Describing a Transcription Factor Dependent Regulation of the MicroRNA Transcriptome
Published on: June 15, 2016
MKK7 transcription positively or negatively regulated by SP1 and KLF5 depends on HDAC4 activity in glioma
Yezhong Wang1,2, Yong Xia1,2, Kunhua Hu3,4
1Department of Neurosurgery and Neurosurgical Disease Research Centre, The Second Affiliated Hospital of Guangzhou Medical University, Guangzhou, China.
Abstract:
JNK activity has been implicated in the malignant proliferation, invasion and drug-resistance of glioma cells (GCs), but the molecular mechanisms underlying JNK activation are currently unknown. Here, we reported that MKK7, not MKK4, directly activates JNK in GCs and exerts oncogenic effects on tumor formation. Notably, MKK7 expression in glioma tissues was closely correlated with the grade of the glioma and JNK/c-Jun activation. Mechanistically, MKK7 transcription critically depends on the complexes formed by HDAC4 and the transcriptional factors SP1 and Krüppel-like factor-5 (KLF5), wherein HDAC4 directly deacetylates both SP1 and KLF5 and synergistically upregulates MKK7 transcription through two SP1 sites located on its promoter. In contrast, the increases in acetylated-SP1 and acetylated-KLF5 after HDAC4 inhibition switched to transcriptionally suppress MKK7. Selective inhibition of HDAC4 by LMK235, siRNAs or blockage of SP1 and KLF5 by the ectopic dominant-negative SP1 greatly reduced the malignant capacity of GCs. Furthermore, suppression of both MKK7 expression and JNK/c-Jun activities was involved in the tumor-growth inhibitory effects induced by LMK235 in U87-xenograft mice. Interestingly, HDAC4 is highly expressed in glioma tissues, and the rate of HDAC4 nuclear import is closely correlated with glioma grade, as well as with MKK7 expression. Collectively, these findings demonstrated that highly expressed MKK7 contributes to JNK/c-Jun signaling-mediated glioma formation. MKK7 transcription, regulated by SP1 and KLF5, critically depends on HDAC4 activity, and inhibition of HDAC4 presents a potential strategy for suppressing the oncogenic roles of MKK7/JNK/c-Jun signaling in GCs.
Insights
MKK7 directly activates JNK in glioma cells, promoting tumor growth. HDAC4 regulates MKK7 transcription via SP1 and KLF5; inhibiting HDAC4 reduces glioma malignancy and tumor growth.
Area of Science:
- Oncology
- Molecular Biology
- Cell Signaling
Background:
- JNK signaling is crucial in glioma cell proliferation, invasion, and drug resistance.
- The precise mechanisms activating JNK in glioma remain unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of JNK activation in glioma cells.
- To investigate the role of MKK7 and its regulation in glioma formation.
- To evaluate HDAC4 inhibition as a therapeutic strategy.
Main Methods:
- Investigated MKK7's role in JNK activation and oncogenic effects in glioma cells.
- Analyzed MKK7 expression correlation with glioma grade and JNK/c-Jun activation.
- Elucidated MKK7 transcriptional regulation by HDAC4, SP1, and KLF5.
- Utilized HDAC4 inhibition (LMK235, siRNAs) and SP1/KLF5 blockage.
- Assessed tumor growth inhibition in U87-xenograft mouse models.
Main Results:
- MKK7, not MKK4, directly activates JNK and promotes tumor formation in glioma cells.
- MKK7 expression correlates with glioma grade and JNK/c-Jun activation.
- HDAC4 deacetylates SP1 and KLF5, upregulating MKK7 transcription; HDAC4 inhibition suppresses MKK7.
- Inhibition of HDAC4, SP1, or KLF5 reduced glioma cell malignancy.
- LMK235 treatment suppressed MKK7 expression and JNK/c-Jun activity, inhibiting tumor growth in mice.
- HDAC4 nuclear import correlates with glioma grade and MKK7 expression.
Conclusions:
- MKK7 drives JNK/c-Jun signaling-mediated glioma formation.
- HDAC4 activity, regulating MKK7 transcription via SP1/KLF5, is critical for glioma progression.
- HDAC4 inhibition represents a potential therapeutic strategy against glioma.
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