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Measuring Growth and Gene Expression Dynamics of Tumor-Targeted S. Typhimurium Bacteria
Published on: July 6, 2013
Attenuated Salmonella Typhimurium with truncated LPS and outer membrane-displayed RGD peptide for cancer therapy
Kang Liang1, Zhenyuan Tian1, Xin Chen1
1College of Veterinary Medicine, Southwest University, Chongqing 400715, China.
Abstract:
Gram-negative, facultatively anaerobic bacteria Salmonella Typhimurium is a candidate agent or delivery vector for cancer therapy. Effective targeted therapies in addition to radiotherapy, chemotherapy and surgery have been urgently needed as an alternative or supplement. This study expected to further improve the tumor-targeting ability of Salmonella bacteria through genetic modifications. Based on an auxotrophic Salmonella bacterial strain (D2), we constructed Salmonella mutants with altered LPS length to facilitate displaying the RGD4C targeting peptide on the outer membrane surface of Salmonella. The expression of RGD4C peptide in fusion with OmpA was identified by outer membrane protein extraction and WB detection in different mutant strains. However, flow cytometry analysis following immunofluorescence staining demonstrated that the extracellular length of Salmonella LPS did affect the surface display of RGD4C peptide. The strain D2-RGD4C that synthesized intact LPS including lipid A, core oligosaccharides and O antigen polysaccharides could hardly display RGD4C peptide, showing the same fluorescence signal intensity as the strains not expressing RGD4C peptide. Among different strains, D2 ∆rfaJ-RGD4C that synthesized truncated LPS including lipid A and partial core oligosaccharides was capable of displaying RGD4C peptide most efficiently and showed the highest ability to target HUVECs expressing αV integrin and tumor tissue with abundant neovascularization. Animal experiments also demonstrated that this tumor-targeting attenuated Salmonella strain to simultaneously deliver endostatin and TRAIL, two agents with different anti-tumor activities, could significantly inhibit tumor growth and prolong mouse survival. Thus, our studies revealed that Salmonella could be genetically engineered to improve its tumor targeting via the truncation of LPS and surface display of targeting peptides, thereby eliciting superior anti-tumor effects through targeted delivery of drug molecules.
Insights
Genetically engineered Salmonella bacteria with truncated LPS display targeting peptides effectively, enhancing tumor targeting and anti-cancer effects when delivering therapeutic agents.
Area of Science:
- Microbiology
- Biotechnology
- Cancer Therapy
Background:
- Salmonella Typhimurium is a potential agent for cancer therapy.
- There is a need for improved targeted cancer therapies beyond traditional treatments.
- Genetic modification of Salmonella can enhance its tumor-targeting capabilities.
Purpose of the Study:
- To genetically modify Salmonella Typhimurium to improve its tumor-targeting ability.
- To investigate the effect of lipopolysaccharide (LPS) length on the surface display of targeting peptides.
- To evaluate the anti-tumor efficacy of engineered Salmonella delivering therapeutic agents.
Main Methods:
- Constructed Salmonella mutants with altered LPS length.
- Displayed RGD4C targeting peptide on the bacterial outer membrane.
- Utilized outer membrane protein extraction, Western blot, and flow cytometry for analysis.
- Conducted animal experiments to assess tumor growth inhibition and survival rates.
Main Results:
- Truncating Salmonella LPS (D2 ∆rfaJ-RGD4C) significantly improved RGD4C peptide surface display.
- Engineered Salmonella efficiently targeted HUVECs and tumor tissues.
- The modified Salmonella strain delivered endostatin and TRAIL, significantly inhibiting tumor growth and prolonging survival in mice.
Conclusions:
- Genetic engineering of Salmonella, specifically LPS truncation, enhances tumor targeting via peptide display.
- This approach offers a promising strategy for targeted delivery of anti-cancer agents.
- Engineered Salmonella holds potential as an effective delivery vector for cancer therapy.

