Kyushu University · Agricultural and Biological Sciences
Professor Takeshi Zendo's research lab specializes in the discovery, characterization, and application of novel bacteriocins produced by lactic acid bacteria (LAB) and other beneficial microbes. The lab focuses on identifying bacteriocins with unique antimicrobial spectra and molecular structures, including novel nisin variants, two-peptide bacteriocins, and leaderless bacteriocins, using innovative screening and purification techniques. A key research direction involves linking genetic analysis with functional characterization to accelerate the identification of bioactive compounds for use in food preservation and microbial control.
Figures are computed from collected data and may differ slightly.
Lactococcus lactis 61-14 isolated from river water produced a bacteriocin active against a wide range of Gram-positive bacteria. N-terminal amino acid sequencing, mass spectral analysis of the purified bacteriocin, and genetic analysis using nisin-specific primers showed that the bacteriocin was a new natural nisin variant, termed nisin Q. Nisin Q and nisin A differ in four amino acids in the mature peptide and two in the leader sequence.
A new soybean isolate, Ent. mundtii QU 2 was found to be a class IIa bacteriocin producer. Factors influencing the bacteriocin production described herein are valuable for applications of the bacteriocins from Ent. mundtii strains.
A bacteriocin-producing strain, Lactococcus lactis QU 4, was isolated from corn. The bacteriocin, termed lactococcin Q, showed antibacterial activity only against L. lactis strains among a wide range of gram-positive indicator strains tested. Lactococcin Q was purified by acetone precipitation, cation exchange chromatography, and reverse-phase chromatography. Lactococcin Q consisted of two peptides, alpha and beta, whose molecular masses were determined to be 4,260.43 Da and 4,018.36 Da, respect
Bacteriocins produced by lactic acid bacteria (LAB) are expected to be safe antimicrobial agents. While the best studied LAB bacteriocin, nisin A, is widely utilized as a food preservative, various novel ones are required to control undesirable bacteria more effectively. To discover novel bacteriocins at the early step of the screening process, we developed a rapid screening system that evaluates bacteriocins produced by newly isolated LAB based on their antibacterial spectra and molecular masse
The developed system helps us to identify bacteriocins in the early stage of screening without any or with one-step pretreatment. This system is effective on not only detection of known bacteriocins but also identification of novel bacteriocins. Consequently, this system will accelerate discovery of novel bacteriocins.
<i>Apilactobacillus kunkeei</i> FF30-6 isolated from healthy honey bees synthesizes the bacteriocin, which exhibits antimicrobial activity against <i>Melissococcus plutonius</i>. The bacteriocin, kunkecin A, was purified through three-step chromatography, and mass spectrometry revealed that its relative molecular mass was 4218.3. Edman degradation of purified kunkecin A showed only the N-terminal residue, isoleucine. Hence, alkaline alkylation made the subsequent amino acid residues accessible t
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