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Capillary Electrophoresis to Monitor Peptide Grafting onto Chitosan Films in Real Time
Published on: October 26, 2016
Grafting MSI-78A onto chitosan microspheres enhances its antimicrobial activity
Diana R Fonseca1, Ana Moura1, Victoria Leiro2
1i3S, Instituto de Investigação e Inovação em Saúde, Rua Alfredo Allen, 208, Porto 4200-135, Portugal; INEB, Instituto de Engenharia Biomédica, Rua Alfredo Allen, 208, Porto 4200-135, Portugal; Faculdade de Engenharia, Departamento de Engenharia Metalúrgica e de Materiais, Universidade do Porto, Rua Dr. Roberto Frias, Porto 4200-465, Portugal.
Abstract:
MSI-78A (Pexiganan A) is one of the few antimicrobial peptides (AMPs) able to kill Helicobacter pylori, a pathogenic bacterium that colonizes the gastric mucosa of half of the world's population. Antibiotics fail in 20-40% of H. pylori-infected patients, reinforcing the need for alternative treatments. Herein, a bioengineered approach was developed. MSI-78A with a C-terminal cysteine was grafted onto chitosan microspheres (AMP-ChMic) by thiol-maleimide (Michael-addition) chemistry using a long heterobifunctional spacer (NHS-PEG113-MAL). Microspheres with ∼4 µm diameter (near H. pylori length) and stable at low pH were produced by spray drying using a chitosan solution with an incomplete genipin crosslinking. A 3 × 10-5 µg AMP/microsphere grafting was estimated/confirmed by UV/Vis and FTIR spectroscopies. AMP-ChMic were bactericidal against H. pylori J99 (highly pathogenic human strain) at lower concentrations than the free peptide (∼277 µg grafted MSI-78A-SH/mL vs 512 µg free MSI-78A-SH/mL), even after pre-incubation in simulated gastric conditions with pepsin. AMP-ChMic killed H. pylori by membrane destabilization and cytoplasm release in a ratio of ∼10 bacteria/microsphere. This can be attributed to H. pylori attraction to chitosan, facilitating the interaction of grafted AMP with bacterium membrane. Overall, it was demonstrated that the peptide-microsphere conjugation chemistry did not compromise the MSI-78A antimicrobial activity, instead it boosted its bactericidal performance against H. pylori. STATEMENT OF SIGNIFICANCE: Half of the world's population is infected with Helicobacter pylori, a gastric bacterium that is responsible for 90% of non-cardia gastric cancers. Therefore, H. pylori eradication is now advocated in all infected individuals. However, available antibiotic therapies fail in up to 40% patients. Antimicrobial peptides (AMPs) are appealing alternatives to antibiotics, but their high susceptibility in vivo limits their clinical translation. AMP immobilization onto biomaterials surface will overcome this problem. Herein, we demonstrate that immobilization of MSI-78A (one of the few AMPs with activity against H. pylori) onto chitosan microspheres (AMP-ChMic) enhances its anti-H. pylori activity even at acidic pH (gastric settings). These results highlight the strong potential of AMP-ChMic as an antibiotic alternative for H. pylori eradication.
Insights
Antimicrobial peptides (AMPs) like MSI-78A were grafted onto chitosan microspheres (AMP-ChMic) to combat Helicobacter pylori. This enhanced AMP-ChMic
Area of Science:
- Biomaterials Science
- Microbiology
- Drug Delivery
Background:
- Helicobacter pylori infection affects half the global population, leading to significant gastric issues.
- Current antibiotic therapies for H. pylori have failure rates of 20-40%, necessitating alternative treatments.
- Antimicrobial peptides (AMPs) show promise against H. pylori but face challenges with in vivo stability.
Purpose of the Study:
- To develop a bioengineered approach by immobilizing MSI-78A onto chitosan microspheres (AMP-ChMic).
- To enhance the bactericidal activity of MSI-78A against H. pylori, particularly under simulated gastric conditions.
- To evaluate AMP-ChMic as a potential alternative therapeutic strategy for H. pylori eradication.
Main Methods:
- MSI-78A was grafted onto chitosan microspheres using thiol-maleimide chemistry with a PEG spacer.
- Spray drying was employed to produce stable, pH-tolerant microspheres of approximately 4 µm diameter.
- UV/Vis and FTIR spectroscopies were used to confirm AMP grafting density; bactericidal activity was tested against H. pylori J99.
Main Results:
- AMP-ChMic demonstrated enhanced bactericidal efficacy against H. pylori compared to free MSI-78A.
- The immobilized AMP retained activity even after pre-incubation in simulated gastric conditions with pepsin.
- AMP-ChMic achieved bacterial killing through membrane destabilization and cytoplasm release, with an estimated ratio of 10 bacteria per microsphere.
Conclusions:
- The conjugation of MSI-78A to chitosan microspheres did not compromise its antimicrobial activity.
- AMP-ChMic exhibited improved bactericidal performance against H. pylori, suggesting synergistic effects with chitosan.
- AMP-ChMic represents a promising antibiotic alternative for H. pylori eradication, especially in acidic gastric environments.

