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Updated: Jul 10, 2025

Induction of Invasive Transitional Cell Bladder Carcinoma in Immune Intact Human MUC1 Transgenic Mice: A Model for Immunotherapy Development
Published on: October 30, 2013
Engineering redirected NF-κB/OIP5 expression programs to enhance tumor responses to chemotherapy in bladder cancer
Binbin Zheng1, Liman Niu1, Haibo Xu1
1Department of Urology, Shenzhen Institute of Translational Medicine, Shenzhen Second People's Hospital, The First Affiliated Hospital of Shenzhen University, International Cancer Center of Shenzhen University, Shenzhen 518039, China; Shenzhen Institute of Synthetic Biology, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, Shenzhen 518055, China.
Abstract:
Nuclear factor kappa-B (NF-κB), a pivotal transcriptional regulator, plays a crucial role in modulating downstream genes implicated in tumor drug resistance. We establish a programmable system within bladder cancer cells to tailor drug responses by employing a synthetic clustered regularly interspaced short palindromic repeats (CRISPR)-based expression strategy that emulates natural transcriptional regulators. Our investigation uncovers the functional significance of Opa-interacting protein 5 (OIP5), upregulated upon NF-κB activation, as a key regulator governing drug-resistance to vincristine (VCR) treatment in bladder cancer. Through engineered guide RNAs (sgRNAs) targeting OIP5 to integrate NF-κB aptamers, we construct a modular scaffold RNA that encodes both the target locus and regulatory functionality. This engineered CRISPR scaffold RNA effectively responds to VCR stimulus by binding with activated NF-κB. Intriguingly, it redirects NF-κB to attenuate OIP5 expression-a reversal of its original role-while concurrently obstructing multiple NF-κB-mediated drug resistance pathways. This dual action thwarts drug resistance development. Further enhancing therapeutic potential, we develop a versatile nanoparticle system capable of co-delivering CRISPR scaffold RNAs and VCR. This synergistic approach demonstrates potent anti-tumor effects in both in vitro and in vivo settings. Our nanoparticle-mediated combination presents a compelling proof-of-concept, showcasing the utility of engineered CRISPR-based synthetic expression programs to reconfigure cellular drug responses and heighten tumor cell susceptibility to chemotherapy.
Insights
Engineered CRISPR systems reprogram bladder cancer cells to overcome drug resistance by targeting Opa-interacting protein 5 (OIP5). This synthetic biology approach, combined with nanoparticles, enhances chemotherapy effectiveness against tumors.
Area of Science:
- Synthetic biology
- Cancer research
- Molecular oncology
Background:
- Nuclear factor kappa-B (NF-κB) is a key regulator of genes involved in tumor drug resistance.
- Opa-interacting protein 5 (OIP5) is upregulated by NF-κB and contributes to vincristine (VCR) resistance in bladder cancer.
Purpose of the Study:
- To develop a programmable system using CRISPR technology to re-sensitize bladder cancer cells to chemotherapy.
- To investigate the role of OIP5 in NF-κB-mediated drug resistance and engineer a system to counteract it.
Main Methods:
- Designed a synthetic CRISPR-based expression strategy using engineered guide RNAs (sgRNAs) with NF-κB aptamers.
- Constructed a modular scaffold RNA to integrate NF-κB binding and OIP5 targeting.
- Developed a nanoparticle system for co-delivery of CRISPR scaffold RNAs and VCR.
Main Results:
- The engineered CRISPR scaffold RNA successfully bound activated NF-κB in response to VCR.
- NF-κB was redirected to attenuate OIP5 expression, reversing its pro-resistance role.
- The system effectively blocked multiple NF-κB-mediated drug resistance pathways, thwarting resistance.
- Co-delivery via nanoparticles showed potent anti-tumor effects in vitro and in vivo.
Conclusions:
- Engineered CRISPR systems can be programmed to reconfigure cellular drug responses and overcome chemotherapy resistance.
- This synthetic biology approach offers a novel strategy to enhance tumor cell susceptibility to VCR and potentially other chemotherapeutics.
- Nanoparticle-mediated co-delivery of CRISPR and drugs presents a promising therapeutic combination for bladder cancer.
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