The Multifaceted Antibacterial Mechanisms of the Pioneering Peptide Antibiotics Tyrocidine and Gramicidin S
Journal article, 2018

Cyclic β-sheet decapeptides from the tyrocidine group and the homologous gramicidin S were the first commercially used antibiotics, yet it remains unclear exactly how they kill bacteria. We investigated their mode of action using a bacterial cytological profiling approach. Tyrocidines form defined ion-conducting pores, induce lipid phase separation, and strongly reduce membrane fluidity, resulting in delocalization of a broad range of peripheral and integral membrane proteins. Interestingly, they also cause DNA damage and interfere with DNA-binding proteins. Despite sharing 50% sequence identity with tyrocidines, gramicidin S causes only mild lipid demixing with minor effects on membrane fluidity and permeability. Gramicidin S delocalizes peripheral membrane proteins involved in cell division and cell envelope synthesis but does not affect integral membrane proteins or DNA. Our results shed a new light on the multifaceted antibacterial mechanisms of these antibiotics and explain why resistance to them is virtually nonexistent.

IMPORTANCE Cyclic β-sheet decapeptides, such as tyrocidines and gramicidin S, were among the first antibiotics in clinical application. Although they have been used for such a long time, there is virtually no resistance to them, which has led to a renewed interest in this peptide class. Both tyrocidines and gramicidin S are thought to disrupt the bacterial membrane. However, this knowledge is mainly derived from in vitro studies, and there is surprisingly little knowledge about how these long-established antibiotics kill bacteria. Our results shed new light on the antibacterial mechanism of β-sheet peptide antibiotics and explain why they are still so effective and why there is so little resistance to them.

bacterial cytological profiling

bacterial cell biology

cell membranes

mode of action.

antibiotics

antimicrobial peptides

Author

Michaela Wenzel

University of Amsterdam

Marina Rautenbach

Stellenbosch University

J. Arnold Vosloo

Stellenbosch University

Tjalling K. Siersma

University of Amsterdam

Christopher H. M. Aisenbrey

University of Strasbourg

Ekaterina Zaitseva

University of Freiburg

Wikus E. Laubscher

Stellenbosch University

Wilma van Rensburg

Stellenbosch University

Jan C. Behrends

University of Freiburg

Burkhard Bechinger

University of Strasbourg

Leendert W. Hamoen

University of Amsterdam

mBio

2161-2129 (ISSN) 2150-7511 (eISSN)

Vol. 9 5 e00802-e00818

Subject Categories (SSIF 2025)

Molecular Biology

Cell and Molecular Biology

Cell Biology

Microbiology

Biophysics

DOI

10.1128/mBio.00802-18

More information

Latest update

3/23/2026