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Published on: May 14, 2016
CD44-targeted N-benzyltetrahydroisoquinoline derivatives as anticancer agents with high tumor-to-normal cell
Soledad Romero-Tamudo1, M Dora Carrión2, Meriem Chayah3
1Department of Medicinal and Organic Chemistry and Excellence Research Unit of Chemistry Applied to Biomedicine and the Environment, Faculty of Pharmacy, University of Granada, Campus Cartuja s/n, 18071, Granada, Spain; GENYO, Centre for Genomics and Oncological Research, Pfizer/University of Granada/Andalusian Regional Government, PTS Granada, Avda. Ilustración 114, 18016, Granada, Spain; Instituto de Investigación Biosanitaria ibs.GRANADA, 18012, Granada, Spain.
Abstract:
CD44, a cell surface glycoprotein, plays a crucial role in cancer progression by enhancing cell proliferation and resistance to apoptosis. Targeting CD44 with small molecules is a promising cancer therapy strategy. Building on our previous work with the tetrahydroisoquinoline (THIQ) derivative SRT1, we designed and synthesized a series of analogues (SRT2-SRT10) to explore their anticancer potential. Among these, the sulfonate esters SRT5 and SRT6 were the most promising in CD44+ MDA-MB-231 breast cancer cells. They effectively inhibited the HA-CD44 interaction, as demonstrated by binding assays and cell viability studies. In addition, molecular dynamics simulations predict that these esters interact with the same key residues within the CD44-HABD domain as those involved in HA recognition. In CD44+ lung cancer cell lines (A549 and NCI-H23), SRT1 exhibited the strongest antiproliferative activity (EC50 = 0.88 and 0.42 μM, respectively), while SRT5 and SRT6 also showed significant efficacy, particularly in NCI-H23 cells. Interestingly, only SRT1 induced apoptosis, suggesting distinct mechanisms of cell death. Kinase profiling revealed that SRT5 and SRT6 inhibited CD44-associated kinases, particularly SRC, contributing to their anticancer effects. In contrast, SRT1 appeared to act through a kinase-independent pathway. All compounds displayed high selectivity for cancer cells over non-tumoral lung cells. ADME predictions suggested favorable pharmacokinetic properties. Overall, our results underscore the potential of N-benzylTHIQ derivatives, as selective agents for targeted therapy of lung cancer and support further in vivo validation and mechanistic investigations.
Insights
New tetrahydroisoquinoline (THIQ) derivatives show promise as targeted cancer therapies. SRT5 and SRT6 inhibit CD44 interactions, while SRT1 demonstrates potent antiproliferative effects in lung cancer cells, with favorable selectivity and pharmacokinetics.
Area of Science:
- Medicinal Chemistry
- Cancer Biology
- Molecular Pharmacology
Background:
- CD44, a cell surface glycoprotein, is implicated in cancer progression, making it a target for small molecule therapeutics.
- Previous research established the anticancer potential of tetrahydroisoquinoline (THIQ) derivatives.
Purpose of the Study:
- To design, synthesize, and evaluate novel N-benzylTHIQ derivatives (SRT2-SRT10) as potential anticancer agents targeting CD44.
- To investigate the mechanism of action and selectivity of these compounds in breast and lung cancer models.
Main Methods:
- Synthesis of a series of N-benzylTHIQ analogues.
- In vitro assays including binding assays, cell viability studies, and apoptosis induction.
- Molecular dynamics simulations to predict drug-target interactions.
- Kinase profiling and ADME predictions.
Main Results:
- SRT5 and SRT6 effectively inhibited the hyaluronic acid-CD44 interaction in breast cancer cells.
- SRT1 exhibited potent antiproliferative activity in CD44+ lung cancer cell lines (A549, NCI-H23).
- SRT5 and SRT6 inhibited CD44-associated kinases (e.g., SRC), while SRT1 acted via a kinase-independent pathway.
- All compounds demonstrated high selectivity for cancer cells over non-tumoral lung cells with favorable ADME predictions.
Conclusions:
- N-benzylTHIQ derivatives, particularly SRT1, SRT5, and SRT6, show significant potential as selective agents for targeted lung cancer therapy.
- Distinct mechanisms of action were observed, highlighting the versatility of this chemical scaffold.
- Further in vivo validation and mechanistic studies are warranted to advance these compounds towards clinical application.
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