Related Experiment Video
Updated: Jan 6, 2026

An Orthotopic Bladder Cancer Model for Gene Delivery Studies
Published on: December 1, 2013
A novel, safe, fast and efficient treatment for Her2-positive and negative bladder cancer utilizing an EGF-anthrax
Sherwin Jack1,2, Kayalvizhi Madhivanan1,2, Swetha Ramadesikan1,2
1Purdue University Center for Cancer Research, West Lafayette, IN.
Abstract:
Bladder cancer is the sixth most common cancer in the United States, and it exhibits an alarming 70% recurrence rate. Thus, the development of more efficient antibladder cancer approaches is a high priority. Accordingly, this work provides the basis for a transformative anticancer strategy that takes advantage of the unique characteristics of the bladder. Unlike mucin-shielded normal bladder cells, cancer cells are exposed to the bladder lumen and overexpress EGFR. Therefore, we used an EGF-conjugated anthrax toxin that after targeting EGFR was internalized and triggered apoptosis in exposed bladder cancer cells. This unique agent presented advantages over other EGF-based technologies and other toxin-derivatives. In contrast to known agents, this EGF-toxin conjugate promoted its own uptake via receptor microclustering even in the presence of Her2 and induced cell death with a LC50 < 1 nM. Furthermore, our data showed that exposures as short as ≈3 min were enough to commit human (T24), mouse (MB49) and canine (primary) bladder cancer cells to apoptosis. Exposure of tumor-free mice and dogs with the agent resulted in no toxicity. In addition, the EGF-toxin was able to eliminate cells from human patient tumor samples. Importantly, the administration of EGF-toxin to dogs with spontaneous bladder cancer, who had failed or were not eligible for other therapies, resulted in ~30% average tumor reduction after one treatment cycle. Because of its in vitro and in vivo high efficiency, fast action (reducing treatment time from hours to minutes) and safety, we propose that this EGF-anthrax toxin conjugate provides the basis for new, transformative approaches against bladder cancer.
Insights
A novel epidermal growth factor (EGF)-anthrax toxin conjugate effectively targets and eliminates bladder cancer cells by exploiting EGFR overexpression. This innovative approach shows high efficacy, rapid action, and minimal toxicity in preclinical models and canine patients, offering a promising new bladder cancer therapy.
Area of Science:
- Oncology
- Biotechnology
- Toxicology
Background:
- Bladder cancer has a high recurrence rate (70%), necessitating novel therapeutic strategies.
- Cancer cells overexpress epidermal growth factor receptor (EGFR), unlike normal bladder cells shielded by mucin.
Purpose of the Study:
- To develop a targeted therapy for bladder cancer using an EGF-conjugated anthrax toxin.
- To evaluate the efficacy, safety, and mechanism of action of this novel conjugate.
Main Methods:
- An EGF-anthrax toxin conjugate was designed to target EGFR on bladder cancer cells.
- In vitro studies assessed cytotoxicity and apoptosis induction in human, mouse, and canine bladder cancer cells.
- In vivo studies evaluated toxicity in healthy mice and dogs, and therapeutic efficacy in dogs with spontaneous bladder cancer.
Main Results:
- The EGF-toxin conjugate induced apoptosis in bladder cancer cells with a low LC50 (<1 nM) and rapid action (≈3 min exposure).
- No toxicity was observed in tumor-free mice and dogs.
- Treatment of dogs with spontaneous bladder cancer resulted in an average tumor reduction of ~30% after one cycle.
Conclusions:
- The EGF-anthrax toxin conjugate is a highly efficient and rapidly acting agent against bladder cancer.
- This targeted therapy demonstrates significant potential for treating bladder cancer with minimal toxicity.
- The conjugate represents a transformative approach for future bladder cancer treatment strategies.
More Related Videos
08:43An Orthotopic Bladder Tumor Model and the Evaluation of Intravesical saRNA Treatment
Published on: July 28, 2012
11:02Induction of Invasive Transitional Cell Bladder Carcinoma in Immune Intact Human MUC1 Transgenic Mice: A Model for Immunotherapy Development
Published on: October 30, 2013