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Published on: May 14, 2016
Truncated HDAC9 identified by integrated genome-wide screen as the key modulator for paclitaxel resistance in
Bi Lian1,2, Yu-Chen Pei3, Yi-Zhou Jiang1,2
1Department of Breast Surgery, Key Laboratory of Breast Cancer in Shanghai, Fudan University Shanghai Cancer Center, Fudan University, Shanghai, China.
Abstract:
Rationale: Paclitaxel resistance is a major concern when treating triple-negative breast cancer (TNBC) patients. We aimed to identify candidates causing paclitaxel resistance and explore their significance in TNBC therapeutics. Methods: A genome-wide CRISPR screening, integrated with transcriptome analyses, was performed to identify candidates involved in paclitaxel-resistant TNBCs. Cell proliferation, cytotoxicity, immunofluorescent staining, and xenograft assays were conducted to verify the phenotypes of paclitaxel resistance induced by candidate genes, both in vitro and in vivo. RNA sequencing, Western blotting, and chromatin immunoprecipitation assays were used to explore the underlying mechanisms. Results: MEF2-interacting transcriptional repressor (MITR), the truncated isoform of histone deacetylase 9 (HDAC9) lacking the deacetylation domain, was enriched in paclitaxel-resistant cells. Elevated MITR expression resulted in increased interleukin-11 (IL11) expression and activation of downstream JAK/STAT3 signaling. Mechanistically, MITR counteracted MEF2A-induced transcriptional suppression of IL11, ultimately causing paclitaxel resistance. By contrast, pharmacological inhibition of JAK1/2 by ruxolitinib reversed paclitaxel resistance both in vitro and in vivo. Conclusion: Our in vitro and in vivo genetic and cellular analyses elucidated the pivotal role of MITR/MEF2A/IL11 axis in paclitaxel resistance and provided a novel therapeutic strategy for TNBC patients to overcome poor chemotherapy responses.
Insights
Paclitaxel resistance in triple-negative breast cancer (TNBC) is linked to MEF2-interacting transcriptional repressor (MITR). Targeting the MITR/MEF2A/IL11 pathway with JAK inhibitors like ruxolitinib can overcome chemotherapy resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Paclitaxel resistance poses a significant challenge in treating triple-negative breast cancer (TNBC).
- Identifying novel therapeutic targets is crucial for improving treatment outcomes in TNBC patients.
Purpose of the Study:
- To identify genetic factors contributing to paclitaxel resistance in TNBC.
- To explore the therapeutic potential of targeting identified resistance mechanisms.
Main Methods:
- Genome-wide CRISPR screening and transcriptome analysis were employed to identify resistance candidates.
- In vitro and in vivo assays (cell proliferation, cytotoxicity, xenografts) validated gene functions.
- RNA sequencing, Western blotting, and ChIP assays elucidated molecular mechanisms.
Main Results:
- MEF2-interacting transcriptional repressor (MITR), a truncated HDAC9 isoform, was found to be enriched in paclitaxel-resistant cells.
- Elevated MITR expression increased interleukin-11 (IL11) and activated JAK/STAT3 signaling, promoting resistance.
- MITR counteracted MEF2A-mediated IL11 suppression, leading to paclitaxel resistance.
Conclusions:
- The MITR/MEF2A/IL11 axis plays a critical role in paclitaxel resistance in TNBC.
- Pharmacological inhibition of JAK1/2 with ruxolitinib reversed paclitaxel resistance.
- This axis presents a novel therapeutic strategy to enhance chemotherapy response in TNBC.
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