Sachin Kumar Gupta, Ananya Anurag Anand, Sarfraz Anwar, Sreyanki Chandra, Ayush Amod, Sintu Kumar Samanta
β-Lactamases (BLs) are a principal cause of antimicrobial resistance in Gram-negative bacteria, hydrolysing β-lactam antibiotics and rendering them ineffective. Among these, the chromosomally encoded AmpC is unusual: unlike plasmid-borne BLs, its expression is tightly and inducibly controlled by the transcriptional regulator AmpR, which senses peptidoglycan-recycling intermediates and switches from repressor to activator under β-lactam pressure. This review re-examines AmpR not as an isolated genetic switch but as a metabolic sensor that reads the intracellular muropeptide pool and converts it into a proportionate resistance response. Building on this, we propose a conceptual FtsZ-AmpR-AmpC axis: because FtsZ orchestrates septal peptidoglycan remodelling during cell division, it shapes the very muropeptide landscape that AmpR monitors, offering an indirect route by which division dynamics may modulate AmpC induction. This is the first review to frame AmpC regulation in this way. We further note the framework's principal limitations: the FtsZ contribution remains inferential, the physiological AmpR activators are still unidentified and the AmpR-AmpC system is not conserved across all Gram-negative bacteria. Resolving these gaps through time-resolved muropeptide profiling and controlled FtsZ perturbation may reveal new, division-linked vulnerabilities for countering β-lactam resistance.