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Open AccessDOI: 10.3724/abbs.2026084Original Research

HDAC6 promotes osimertinib resistance evolution in non-small cell lung cancer by activating EGFR degradation through the ubiquitin-proteasome pathway

CHENG Yang¹,XU Danlei¹,ZHU Zifang¹,KANG Zhen¹,REN Kangkang¹,YANG Yihan¹,HUANG Ye¹,ZHANG Wei¹,CHE Jun¹,XU Xinping¹,LI Xiaolei¹

Jiangxi Provincial Key Laboratory of Respiratory Diseases, Jiangxi Institute of Respiratory Diseases, Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital, Jiangxi Medical College, Nanchang University

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HDAC6 promotes osimertinib resistance evolution in non-small cell lung cancer by activating EGFR degradation through the ubiquitin-proteasome pathway
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Acta Biochimica et Biophysica Sinica
Published:January 15, 2026Edition:Vol 68, Issue 12 • pp. 100-112Citation:CHENG Yang et al. (2026), Acta Biochimica et Biophysica Sinica
Impact FactorPremier Chinese Biomedical Journal indexed in SinoBioData: Acta Biochimica et Biophysica Sinica (生物化学与生物物理学报).
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Key Takeaways & Executive Findings

  • • An in vitro osimertinib resistance evolution model was established using continuous high-dose drug induction, yielding cell lines with permanent resistance. • HDAC6 is significantly upregulated in osimertinib-resistant cells, and its knockdown or pharmacological inhibition restores drug sensitivity. • Overexpression of HDAC6 in sensitive cells reduces drug efficacy and accelerates resistance onset. • HDAC6 promotes osimertinib resistance by enhancing EGFR degradation via the ubiquitin-proteasome pathway, suggesting HDAC6 as a potential therapeutic target.
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Abstract

Osimertinib is the standard first-line treatment for patients with non-small cell lung cancer (NSCLC) harboring EGFR-sensitive mutations. However, drug resistance inevitably develops, highlighting the critical need for strategies to overcome this resistance and prolong therapeutic efficacy. Understanding the mechanisms underlying drug resistance is essential, and drug-resistant cell models serve as valuable tools for investigating acquired resistance. In this study, we establish an osimertinib resistance evolution model in vitro by continuous high-dose drug induction and identify cell lines exhibiting “permanent” resistance to osimertinib (osimertinib resistant, OR). Transcriptome sequencing (RNA-seq), gain- and loss-of-function assay, including lentiviral-mediated overexpression and RNAi knockdown, pharmacological inhibition, and protein degradation analysis reveal significant alterations in genes associated with epigenetic regulation, notably a marked upregulation of histone deacetylase 6 (HDAC6) in OR cells. Knockdown of HDAC6 or pharmacological inhibition of HDAC6 restores the sensitivity of OR cells to osimertinib, whereas overexpression of HDAC6 in sensitive cells reduces drug efficacy and accelerates the onset of resistance. Furthermore, we find that HDAC6 upregulation promotes EGFR degradation, thereby contributing to resistance. Collectively, our findings demonstrate the utility of drug resistance evolution models in identifying key resistance factors. HDAC6 plays a pivotal role in osimertinib resistance, and targeting HDAC6 may represent a novel therapeutic strategy to overcome resistance and enhance treatment efficacy.

1. Introduction

In 2022, lung cancer accounted for approximately 2.5 million new cases and 1.8 million deaths worldwide [1], underscoring its persistent global health burden [2]. The identification of driver genes and the development of targeted therapies have substantially improved treatment outcomes for lung cancer patients with specific genetic mutations [3]. However, the inevitable emergence of drug resistance remains a major clinical challenge, adversely affecting patient survival and limiting the durability of treatment response. Therefore, extending the effective use of targeted therapies and delaying or overcoming resistance represent urgent and unresolved priorities in clinical oncology.

EGFR was the first driver gene identified in lung cancer [4]. Osimertinib, a third-generation EGFR tyrosine kinase inhibitor (TKI), is now used as a first-line treatment in clinical practice [5]. It extends progression-free survival (PFS) in lung cancer patients to 10–18.9 months [6,7], with a median overall survival (OS) of 26.8–38.6 months [7]. Several studies have characterized key mechanisms of osimertinib resistance, including target mutations, bypass signaling activation and histological transformation [8,9]. However, these studies have largely focused on patients after resistance has already developed. Drug resistance is a dynamic process, and understanding its evolution along with developing effective interventions is critical to overcoming clinical resistance. Traditional resistance models typically involve gradually increasing drug concentrations to induce resistance, yielding a homogeneous population of resistant cells [10]. In contrast, high-dose “hard-hit” approaches more closely recapitulate the clinical onset of resistance and provide a superior platform for mechanistic investigation [11,12]. In this approach, a high concentration of osimertinib eliminate most sensitive cells, while the surviving cells gradually evolve drug-resistant traits under continuous drug pressure and ultimately establish stable drug resistance through adaptive mutagenesis [13].

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Cite This Research Paper
CHENG Yang, XU Danlei, ZHU Zifang, KANG Zhen, REN Kangkang, YANG Yihan, HUANG Ye, ZHANG Wei, CHE Jun, XU Xinping, LI Xiaolei (2026). HDAC6 promotes osimertinib resistance evolution in non-small cell lung cancer by activating EGFR degradation through the ubiquitin-proteasome pathway. Acta Biochimica et Biophysica Sinica. https://doi.org/10.3724/abbs.2026084
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Frequently Asked Questions

What is the role of HDAC6 in osimertinib resistance?

HDAC6 is upregulated in osimertinib-resistant NSCLC cells and promotes resistance by enhancing EGFR degradation via the ubiquitin-proteasome pathway. Knockdown or inhibition of HDAC6 restores sensitivity to osimertinib.

How was the osimertinib resistance model established?

The model was established in vitro by continuous high-dose drug induction, which more closely mimics clinical resistance onset compared to gradual dose escalation.

What are the potential therapeutic implications of targeting HDAC6?

Targeting HDAC6 may represent a novel therapeutic strategy to overcome osimertinib resistance and enhance treatment efficacy in NSCLC patients.

What methods were used to investigate HDAC6 function?

The study used transcriptome sequencing, gain- and loss-of-function assays (lentiviral overexpression and RNAi knockdown), pharmacological inhibition, and protein degradation analysis.

Does HDAC6 affect EGFR stability?

Yes, HDAC6 upregulation promotes EGFR degradation, which contributes to osimertinib resistance.

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