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Simplified Novel Muraymycin Analogues; using a Serine Template Strategy for Linking Key Pharmacophores
Authors:Bhautikkumar Patel  Rachel V Kerr  Dr Alpeshkumar K Malde  Dr Matthew Zunk  Prof Timothy D H Bugg  Prof Gary Grant  Dr Santosh Rudrawar
Affiliation:1. Menzies Health Institute Queensland, Griffith University, Gold Coast, QLD 4222 Australia

School of Pharmacy and Pharmacology, Griffith University, Gold Coast, QLD 4222 Australia

Quality Use of Medicines Network, Griffith University, Gold Coast, QLD 4222 Australia;2. Department of Chemistry, University of Warwick, Coventry, CV4 7AL UK;3. Institute for Glycomics, Griffith University, Gold Coast, QLD 4222 Australia;4. Menzies Health Institute Queensland, Griffith University, Gold Coast, QLD 4222 Australia

Abstract:The present status of antibiotic research requires the urgent invention of novel agents that act on multidrug-resistant bacteria. The World Health Organization has classified antibiotic-resistant bacteria into critical, high and medium priority according to the urgency of need for new antibiotics. Naturally occurring uridine-derived “nucleoside antibiotics” have shown promising activity against numerous priority resistant organisms by inhibiting the transmembrane protein MraY (translocase I), which is yet to be explored in a clinical context. The catalytic activity of MraY is an essential process for bacterial cell viability and growth including that of priority organisms. Muraymycins are one subclass of naturally occurring MraY inhibitors. Despite having potent antibiotic properties, the structural complexity of muraymycins advocates for simplified analogues as potential lead structures. Herein, we report a systematic structure-activity relationship (SAR) study of serine template-linked, simplified muraymycin-type analogues. This preliminary SAR lead study of serine template analogues successfully revealed that the complex structure of naturally occurring muraymycins could be easily simplified to afford bioactive scaffolds against resistant priority organisms. This study will pave the way for the development of novel antibacterial lead compounds based on a simplified serine template.
Keywords:antibiotics  MraY  muraymycins  nucleoside natural products  structure–activity relationships
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