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Establishment and Characterization of Three Afatinib-resistant Lung Adenocarcinoma PC-9 Cell Lines Developed with Increasing Doses of Afatinib
Published on: June 26, 2019
A novel peptide encoded by circTLL1 drives osimertinib resistance in lung cancer by modulating the NT5C2/Ras/PI3K
Miao He1, Kun-Peng Li2, Wan-Xia Yang3
1The Second Hospital & Clinical Medical School, Laboratory Medicine Center, Pharmacogenomics Laboratory, Lanzhou University, Lanzhou 730030, China; Department of Laboratory Medicine, Sichuan Academy of Medical Sciences and Sichuan Provincial People's Hospital, 610054, China.
Background:
Acquired resistance to osimertinib, a third-generation EGFR tyrosine kinase inhibitor, remains a major clinical challenge in the treatment of non-small cell lung cancer (NSCLC). Although circular RNAs (circRNAs) have been increasingly implicated in drug resistance, most studies have focused on their canonical role as microRNA sponges, while their capacity to encode functional micropeptides remains largely unexplored. This study aimed to identify novel circRNAs involved in osimertinib resistance and to characterize their regulatory functions at the protein level.
Methods:
Osimertinib-resistant (OR) NSCLC cell lines were established and validated. High-throughput RNA sequencing was performed to compare the circRNA expression profiles between parental and OR cells. The function of the candidate circRNA was assessed through a series of in vitro and in vivo experiments, including cell viability assays, apoptosis analysis, and xenograft mouse models. Mechanistic investigations involved mass spectrometry, co-immunoprecipitation and western blotting to explore its protein-coding potential and downstream signaling pathways.
Results:
We identified a novel circRNA, termed circTLL1, that was stably and significantly upregulated in OR-NSCLC cells. Functionally, overexpression of circTLL1 promoted osimertinib resistance, whereas its knockdown restored drug sensitivity both in vitro and in vivo. Mechanistically, we discovered that circTLL1 harbors an open reading frame (ORF) that is translated into a novel 90-amino-acid protein, which we designated circTLL1-90aa. Further investigation revealed that circTLL1-90aa directly interacts with and promotes the degradation of 5'-nucleotidase, cytosolic II (NT5C2), thereby uncoupling nucleotide metabolism from its normal regulatory constraints. The consequent downregulation of NT5C2 leads to elevated GTP levels and leading to the sustained activation of the downstream Ras/PI3K/AKT signaling pathway.
Conclusion:
Our findings unveil a previously unrecognized circRNA/micropeptide/metabolism cascade underlying osimertinib resistance. The identification of the circTLL1-90aa/NT5C2/Ras/PI3K axis not only expands the functional repertoire of the non-coding genome but also provides new insights into the complexity of drug resistance. Given its selective upregulation in resistant cells, circTLL1-90aa holds promise both as a predictive biomarker for treatment stratification and as an actionable therapeutic target, offering a novel strategy to overcome osimertinib resistance in NSCLC patients.
Insights
A novel circular RNA, circTLL1, drives osimertinib resistance in non-small cell lung cancer by producing a micropeptide that disrupts nucleotide metabolism and activates key survival pathways. Targeting this circTLL1-90aa offers a new strategy against EGFR inhibitor resistance.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Acquired resistance to osimertinib is a significant clinical problem in non-small cell lung cancer (NSCLC).
- Circular RNAs (circRNAs) are implicated in drug resistance, but their role in protein production is understudied.
- This study investigates novel circRNAs and their protein-level functions in osimertinib resistance.
Purpose of the Study:
- Identify novel circRNAs contributing to osimertinib resistance in NSCLC.
- Characterize the protein-coding potential and regulatory mechanisms of identified circRNAs.
- Explore therapeutic strategies targeting circRNA-mediated drug resistance.
Main Methods:
- Established and validated osimertinib-resistant (OR) NSCLC cell lines.
- Utilized high-throughput RNA sequencing for circRNA profiling.
- Performed in vitro and in vivo functional assays (viability, apoptosis, xenografts).
- Employed mass spectrometry, co-immunoprecipitation, and western blotting for mechanistic studies.
Main Results:
- Identified circTLL1 significantly upregulated in OR-NSCLC cells.
- Overexpression of circTLL1 conferred osimertinib resistance; knockdown restored sensitivity.
- Discovered circTLL1 encodes a 90-amino-acid micropeptide (circTLL1-90aa).
- circTLL1-90aa targets NT5C2 for degradation, elevating GTP and activating Ras/PI3K/AKT signaling.
Conclusions:
- Unveiled a novel circRNA/micropeptide/metabolism cascade driving osimertinib resistance.
- The circTLL1-90aa/NT5C2/Ras/PI3K axis represents a new mechanism of drug resistance.
- circTLL1-90aa is a potential predictive biomarker and therapeutic target for overcoming osimertinib resistance in NSCLC.
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