TY - JOUR
T1 - Antibiotic class with potent in vivo activity targeting lipopolysaccharide synthesis in Gram-negative bacteria
AU - Huseby, Douglas L.
AU - Cao, Sha
AU - Zamaratski, Edouard
AU - Sooriyaarachchi, Sanjeewani
AU - Ahmad, Shabbir
AU - Bergfors, Terese
AU - Krasnova, Laura
AU - Pelss, Juris
AU - Ikaunieks, Martins
AU - Loza, Einars
AU - Katkevics, Martins
AU - Bobileva, Olga
AU - Cirule, Helena
AU - Gukalova, Baiba
AU - Grinberga, Solveiga
AU - Backlund, Maria
AU - Simoff, Ivailo
AU - Leber, Anna T.
AU - Berruga-Fernández, Talía
AU - Antonov, Dmitry
AU - Konda, Vivekananda R.
AU - Lindström, Stefan
AU - Olanders, Gustav
AU - Brandt, Peter
AU - Baranczewski, Pawel
AU - Lundberg, Carina Vingsbo
AU - Liepinsh, Edgars
AU - Suna, Edgars
AU - Jones, T. Alwyn
AU - Mowbray, Sherry L.
AU - Hughes, Diarmaid
AU - Karlén, Anders
N1 - Publisher Copyright:
Copyright © 2024 the Author(s). Published by PNAS.
PY - 2024/4/9
Y1 - 2024/4/9
N2 - Here, we describe the identification of an antibiotic class acting via LpxH, a clinically unexploited target in lipopolysaccharide synthesis. The lipopolysaccharide synthesis pathway is essential in most Gram-negative bacteria and there is no analogous pathway in humans. Based on a series of phenotypic screens, we identified a hit targeting this pathway that had activity on efflux-defective strains of Escherichia coli. We recognized common structural elements between this hit and a previously published inhibitor, also with activity against efflux-deficient bacteria. With the help of X-ray structures, this information was used to design inhibitors with activity on efflux-proficient, wild-type strains. Optimization of properties such as solubility, metabolic stability and serum protein binding resulted in compounds having potent in vivo efficacy against bloodstream infections caused by the critical Gram-negative pathogens E. coli and Klebsiella pneumoniae. Other favorable properties of the series include a lack of pre-existing resistance in clinical isolates, and no loss of activity against strains expressing extended-spectrum-ß-lactamase, metallo-ß-lactamase, or carbapenemase-resistance genes. Further development of this class of antibiotics could make an important contribution to the ongoing struggle against antibiotic resistance.
AB - Here, we describe the identification of an antibiotic class acting via LpxH, a clinically unexploited target in lipopolysaccharide synthesis. The lipopolysaccharide synthesis pathway is essential in most Gram-negative bacteria and there is no analogous pathway in humans. Based on a series of phenotypic screens, we identified a hit targeting this pathway that had activity on efflux-defective strains of Escherichia coli. We recognized common structural elements between this hit and a previously published inhibitor, also with activity against efflux-deficient bacteria. With the help of X-ray structures, this information was used to design inhibitors with activity on efflux-proficient, wild-type strains. Optimization of properties such as solubility, metabolic stability and serum protein binding resulted in compounds having potent in vivo efficacy against bloodstream infections caused by the critical Gram-negative pathogens E. coli and Klebsiella pneumoniae. Other favorable properties of the series include a lack of pre-existing resistance in clinical isolates, and no loss of activity against strains expressing extended-spectrum-ß-lactamase, metallo-ß-lactamase, or carbapenemase-resistance genes. Further development of this class of antibiotics could make an important contribution to the ongoing struggle against antibiotic resistance.
KW - Gram-negative
KW - LpxH
KW - antibiotics
KW - lipopolysaccharide
KW - structure-based drug design
UR - https://www.scopus.com/pages/publications/85194757767
U2 - 10.1073/pnas.2317274121
DO - 10.1073/pnas.2317274121
M3 - Article
AN - SCOPUS:85194757767
SN - 0027-8424
VL - 121
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 15
M1 - e2317274121
ER -