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Generating Transposon Insertion Libraries in Gram-Negative Bacteria for High-Throughput Sequencing
Published on: July 7, 2020
A Potent Host Defense Peptide Triggers DNA Damage and Is Active against Multidrug-Resistant Gram-Negative Pathogens
Samuel A Juliano1, Leonardo F Serafim2, Searle S Duay1
1Department of Chemistry, University of Connecticut, 55 N. Eagleville Road, Storrs, Connecticut 06269, United States.
Abstract:
Gram-negative bacteria are some of the biggest threats to public health due to a large prevalence of antibiotic resistance. The difficulty in treating bacterial infections, stemming from their double membrane structure combined with efflux pumps in the outer membrane, has resulted in a much greater need for antimicrobials with activity against these pathogens. Tunicate host defense peptide (HDP), Clavanin A, is capable of not only inhibiting Gram-negative growth but also potentiating activity in the presence of Zn(II). Here, we provide evidence that the improvements of Clavanin A activity in the presence of Zn(II) are due to its novel mechanism of action. We employed E. coli TD172 (ΔrecA::kan) and the terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL) assay to show in cellulae that DNA damage occurs upon treatment with Clavanin A. In vitro assays demonstrated that Zn(II) ions are required for the nuclease activity of the peptide. The quantum mechanics/molecular mechanics (QM/MM) calculations were used to investigate the mechanism of DNA damage. In the rate-determining step of the proposed mechanism, due to its Lewis acidity, the Zn(II) ion activates the scissile P-O bond of DNA and creates a hydroxyl nucleophile from a water molecule. A subsequent attack by this group to the electrophilic phosphorus cleaves the scissile phosphoester bond. Additionally, we utilized bacterial cytological profiling (BCP), circular dichroism (CD) spectroscopy in the presence of lipid vesicles, and surface plasmon resonance combined with electrical impedance spectroscopy in order to address the apparent discrepancies between our results and the previous studies regarding the mechanism of action of Clavanin A. Finally, our approach may lead to the identification of additional Clavanin A like HDPs and promote the development of antimicrobial peptide based therapeutics.
Insights
The antimicrobial peptide Clavanin A damages bacterial DNA, with zinc ions enabling its nuclease activity. This discovery offers a novel mechanism for developing new treatments against antibiotic-resistant Gram-negative bacteria.
Area of Science:
- Microbiology
- Biochemistry
- Medicinal Chemistry
Background:
- Gram-negative bacteria pose significant public health threats due to widespread antibiotic resistance.
- Their complex cell structure necessitates novel antimicrobial strategies.
- Tunicate host defense peptide (HDP) Clavanin A shows promise against these pathogens, especially with zinc.
Purpose of the Study:
- To elucidate the novel mechanism by which Clavanin A, potentiated by Zn(II), inhibits Gram-negative bacteria.
- To confirm DNA damage as a key effect of Clavanin A treatment.
- To investigate the role of Zn(II) in Clavanin A's antimicrobial activity.
Main Methods:
- Utilized *E. coli* TD172 (Δ*recA::kan*) and TUNEL assay for *in cellulae* DNA damage detection.
- Performed *in vitro* assays to determine the requirement of Zn(II) for nuclease activity.
- Employed QM/MM calculations to model the DNA cleavage mechanism.
- Applied bacterial cytological profiling (BCP), CD spectroscopy, and SPR with EIS to reconcile findings with prior studies.
Main Results:
- Clavanin A treatment induces DNA damage in *E. coli*.
- Zn(II) ions are essential for the observed nuclease activity of Clavanin A.
- QM/MM calculations revealed Zn(II) activates DNA cleavage by facilitating nucleophilic attack from water.
- Integrated biophysical and microbiological techniques confirmed the DNA-damaging mechanism.
Conclusions:
- Clavanin A exhibits a novel DNA-damaging mechanism of action, dependent on Zn(II) for its nuclease activity.
- This mechanism provides a new avenue for developing therapeutics against antibiotic-resistant Gram-negative bacteria.
- The findings may facilitate the discovery of similar host defense peptides for antimicrobial drug development.
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