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Updated: Nov 24, 2025

Dual CRISPR-Interference Strategy for Targeting Synthetic Lethal Interactions Between Non-Coding RNAs in Cancer Cells
Published on: May 30, 2025
Synthetic Artificial Long Non-coding RNA Shows Higher Efficiency in Specific Malignant Phenotype Inhibition Compared
Lin Yao1,2,3, Quan Zhang1,2,3, Aolin Li1,2,3
1Department of Urology, Peking University First Hospital, Beijing, China.
Abstract:
Objective: Both oncogenic transcription factors (TFs) and microRNAs (miRNAs) play an important regulator in human cancer by transcriptional and post-transcriptional regulation, respectively. These phenomena raise questions about the ability of artificial device to regulate miRNAs and TFs simultaneously. In this study, we aimed to construct an artificial long non-coding RNA, "alncRNA," which imitated CRISPR/Cas systems and to illuminate its therapeutic effects in bladder cancer cell lines. At the same time, we also compared the efficiency of alncRNA and CRISPR/Cas systems in regulating gene expression. Study Design and Methods: Based on engineering principles of synthetic biology, we combined tandem arrayed cDNA sequences of aptamer for TFs with tandem arrayed cDNA copies of binding sites for the miRNAs to construct alncRNA. In order to prove the utility of this platform, we chose β -catenin, NF-κB, miR-940, and miR-495 as the functional targets and used the bladder cancer cell lines 5637 and T24 as the test models. Real-time Quantitative PCR (qPCR), dual-luciferase assay and relative phenotypic experiments were applied to severally test the expression of relative gene and therapeutic effects of our devices. Result: Dual-luciferase assay indicated alncRNA could inhibit transcriptional activity of TFs. What's more, the result of qPCR showed that expression levels of the relative TFs target genes and miRNAs were reduced by corresponding alncRNA and the inhibitory effect was better than CRIPSR dCas9-KRAB. By functional experiments, decreased cell proliferation, increased apoptosis, and motility inhibition were observed in alncRNA-infected bladder cells. Conclusion: In summary, our synthetic devices indeed function as anti-tumor regulator, which synchronously accomplish transcriptional and post-transcriptional regulation in bladder cancer cell and show higher efficiency in specific malignant phenotype inhibition compared to the CRISPR/Cas systems. Most importantly, Anti-cancer effects were induced by the synthetic alncRNA in the bladder cancer lines. Our devices, therefore, provides a novel strategy for cancer therapy and could be a useful "weapon" for cancer cell.
Insights
Researchers developed a synthetic device, artificial long non-coding RNA (alncRNA), to simultaneously regulate transcription factors and microRNAs in bladder cancer. This alncRNA demonstrated superior anti-tumor effects compared to CRISPR/Cas systems, offering a novel cancer therapy strategy.
Area of Science:
- Synthetic biology
- Molecular oncology
- Gene regulation
Background:
- Transcription factors (TFs) and microRNAs (miRNAs) are key regulators in cancer.
- Simultaneous regulation of TFs and miRNAs presents a therapeutic challenge.
- Artificial devices are being explored for combined transcriptional and post-transcriptional control.
Purpose of the Study:
- To construct an artificial long non-coding RNA (alncRNA) mimicking CRISPR/Cas systems.
- To evaluate the therapeutic effects of alncRNA in bladder cancer cell lines.
- To compare the gene regulation efficiency of alncRNA with CRISPR/Cas systems.
Main Methods:
- Engineered alncRNA by combining TF aptamer sequences with miRNA binding sites.
- Utilized bladder cancer cell lines (5637, T24) and targeted genes/miRNAs (β-catenin, NF-κB, miR-940, miR-495).
- Employed dual-luciferase assays, qPCR, and phenotypic experiments to assess function and efficacy.
Main Results:
- alncRNA successfully inhibited TF transcriptional activity.
- qPCR confirmed reduced expression of target genes and miRNAs by alncRNA.
- alncRNA demonstrated superior inhibitory effects compared to CRISPR dCas9-KRAB.
- Functional experiments showed decreased cell proliferation, increased apoptosis, and inhibited motility.
Conclusions:
- Synthetic alncRNA acts as an anti-tumor regulator in bladder cancer.
- The device achieves simultaneous transcriptional and post-transcriptional regulation.
- alncRNA exhibits higher efficiency in inhibiting malignant phenotypes than CRISPR/Cas systems.
- This alncRNA provides a novel therapeutic strategy for bladder cancer.
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