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Updated: Feb 16, 2026

Detection of Targetable Alterations in Non-small Cell Lung Cancer using Next-generation Sequencing
Published on: October 10, 2025
Sensitization of lung cancer cells by altered dimerization of HSP27
Byeol Choi1, Seul-Ki Choi1, You Na Park1
1Graduate School of Pharmaceutical Sciences, Ewha Womans University, Seoul 120-720, Korea.
Abstract:
Heat shock protein 27 (HSP27, HSPB1) induces resistance to anticancer drugs in various cancer types, including non-small cell lung cancer (NSCLC). Therefore, pharmacological inhibition of HSP27 in NSCLC may be a good strategy for anticancer therapy. Unlike other HSPs such as HSP90 and HSP70, small molecule approaches for neutralization of HSP27 are not well established because of the absence of an ATP binding domain. Previously, small molecules with altered cross linking activity of HSP27, were identified to inhibit building a large oligomer led to sensitization in combination with radiation and chemotherapeutic drugs. In this study, a chromene compound, J2 that exhibited better cross-linking activity of HSP27 than xanthone compound, SW15 which was previously identified, was yielding sensitization to NSCLC cells with high expression of HSP27 when combined with HSP90 inhibitor and standard anticancer modalities such as taxol and cisplatin. In vivo xenograft system also showed sensitization activity of J2, as well as in vitro cell viability, cell death or apoptosis detection assay. For better druggability, several quinolone compounds, an (bio) isostere of chromone and one of well-known core in many marketed medicine, was designed and synthesized by replacement of oxygen with nitrogen in 4-pyron structure of J2. However, the cross linking activity of HSP27 disappeared by quinolone compounds and the sensitizing effects on the anticancer drugs disappeared as well, suggesting oxygene moiety of 4-pyron structure of J2 may be a pharmacophore for induction of cross linking of HSP27 and sensitization to cancer cells. In conclusion, combination of chemotherapy with small molecules that induces altered cross-linking of HSP27 may be a good strategy to overcome the resistance of anticancer drugs in HSP27-over-expressing cancer cells.
Insights
Targeting heat shock protein 27 (HSP27) with small molecules like J2 can sensitize non-small cell lung cancer cells to chemotherapy. This approach may overcome drug resistance in cancers overexpressing HSP27.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Heat shock protein 27 (HSP27) confers resistance to anticancer drugs in non-small cell lung cancer (NSCLC).
- Targeting HSP27 is a potential therapeutic strategy, but small molecule inhibitors are not well-established due to the lack of an ATP binding domain.
- Previous studies identified small molecules that alter HSP27 cross-linking activity, sensitizing cancer cells to therapies.
Purpose of the Study:
- To investigate the efficacy of a chromene compound, J2, in sensitizing NSCLC cells to anticancer drugs by targeting HSP27.
- To explore the structure-activity relationship of J2 analogs for improved druggability and HSP27 targeting.
Main Methods:
- Treatment of NSCLC cells with J2 in combination with HSP90 inhibitors, taxol, and cisplatin.
- In vivo xenograft studies to assess J2's sensitization activity.
- Synthesis and evaluation of quinolone analogs of J2 to identify key structural features for HSP27 cross-linking.
Main Results:
- The chromene compound J2 demonstrated sensitization of HSP27-expressing NSCLC cells to standard chemotherapy and HSP90 inhibition.
- J2 showed sensitization activity in both in vitro and in vivo models.
- Quinolone analogs, lacking the oxygen moiety of J2's pyran structure, lost HSP27 cross-linking activity and sensitizing effects.
Conclusions:
- The oxygen moiety in the 4-pyron structure of J2 is crucial for its pharmacophore activity, inducing HSP27 cross-linking and sensitizing cancer cells.
- Combining chemotherapy with small molecules that induce altered HSP27 cross-linking is a promising strategy to overcome drug resistance in HSP27-overexpressing cancers.
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