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Published on: September 30, 2014
Antibacterial activity of lactoferrin and a pepsin-derived lactoferrin peptide fragment
K Yamauchi1, M Tomita, T J Giehl
1Medical Service, Department of Veterans Affairs Medical Center, Denver, Colorado.
Abstract:
Although the antimicrobial activity of lactoferrin has been well described, its mechanism of action has been poorly characterized. Recent work has indicated that in addition to binding iron, human lactoferrin damages the outer membrane of gram-negative bacteria. In this study, we determined whether bovine lactoferrin and a pepsin-derived bovine lactoferrin peptide (lactoferricin) fragment have similar activities. We found that both 20 microM bovine lactoferrin and 20 microM lactoferricin release intrinsically labeled [3H]lipopolysaccharide ([3H]LPS) from three bacterial strains, Escherichia coli CL99 1-2, Salmonella typhimurium SL696, and Salmonella montevideo SL5222. Under most conditions, more LPS is released by the peptide fragment than by whole bovine lactoferrin. In the presence of either lactoferrin or lactoferricin there is increased killing of E. coli CL99 1-2 by lysozyme. Like human lactoferrin, bovine lactoferrin and lactoferricin have the ability to bind to free intrinsically labeled [3H]LPS molecules. In addition to these effects, whereas bovine lactoferrin was at most bacteriostatic, lactoferricin demonstrated consistent bactericidal activity against gram-negative bacteria. This bactericidal effect is modulated by the cations Ca2+, Mg2+, and Fe3+ but is independent of the osmolarity of the medium. Transmission electron microscopy of bacterial cells exposed to lactoferricin show the immediate development of electron-dense "membrane blisters." These experiments offer evidence that bovine lactoferrin and lactoferricin damage the outer membrane of gram-negative bacteria. Moreover, the peptide fragment lactoferricin has direct bactericidal activity. As lactoferrin is exposed to proteolytic factors in vivo which could cleave the lactoferricin fragment, the effects of this peptide are of both mechanistic and physiologic relevance.
Insights
Bovine lactoferrin and its peptide fragment, lactoferricin, damage bacterial outer membranes. Lactoferricin exhibits direct bactericidal activity against gram-negative bacteria, offering mechanistic and physiological insights.
Area of Science:
- Microbiology
- Biochemistry
- Immunology
Background:
- Antimicrobial activity of lactoferrin is known, but its mechanism is poorly understood.
- Human lactoferrin damages gram-negative bacterial outer membranes.
- Bovine lactoferrin and its peptide fragment, lactoferricin, were investigated for similar activities.
Purpose of the Study:
- To determine if bovine lactoferrin and lactoferricin damage bacterial outer membranes.
- To characterize the bactericidal mechanism of lactoferrin and lactoferricin.
- To assess the physiological relevance of lactoferricin's activity.
Main Methods:
- Lipopolysaccharide (LPS) release assay using [3H]LPS.
- Lysozyme-mediated bacterial killing assay.
- Transmission electron microscopy (TEM) of bacterial cells.
- Cation and osmolarity modulation studies.
Main Results:
- Both bovine lactoferrin and lactoferricin released [3H]LPS from E. coli, Salmonella typhimurium, and Salmonella montevideo.
- Lactoferricin released more LPS than bovine lactoferrin.
- Lactoferricin demonstrated consistent bactericidal activity, while bovine lactoferrin was bacteriostatic.
- TEM revealed membrane blisters upon lactoferricin exposure.
Conclusions:
- Bovine lactoferrin and lactoferricin damage the outer membrane of gram-negative bacteria.
- Lactoferricin possesses direct bactericidal activity, independent of osmolarity but modulated by cations.
- The findings are mechanistically and physiologically relevant, especially considering in vivo proteolytic cleavage of lactoferrin.

