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Cell Wall Damage Reveals Spatial Flexibility in Peptidoglycan Synthesis and a Nonredundant Role for RodA in
Emily S Melzer1, Takehiro Kado1, Alam García-Heredia2,3
1Department of Microbiology, University of Massachusetts, Amherst, Massachusetts, USA.
Abstract:
Cell wall peptidoglycan is a heteropolymeric mesh that protects the bacterium from internal turgor and external insults. In many rod-shaped bacteria, peptidoglycan synthesis for normal growth is achieved by two distinct pathways: the Rod complex, comprised of MreB, RodA, and a cognate class B penicillin-binding protein (PBP), and the class A PBPs (aPBPs). In contrast to laterally growing bacteria, pole-growing mycobacteria do not encode an MreB homolog and do not require SEDS protein RodA for in vitro growth. However, RodA contributes to the survival of Mycobacterium tuberculosis in some infection models, suggesting that the protein could have a stress-dependent role in maintaining cell wall integrity. Under basal conditions, we find here that the subcellular distribution of RodA largely overlaps that of the aPBP PonA1 and that both RodA and the aPBPs promote polar peptidoglycan assembly. Upon cell wall damage, RodA fortifies Mycobacterium smegmatis against lysis and, unlike aPBPs, contributes to a shift in peptidoglycan assembly from the poles to the sidewall. Neither RodA nor PonA1 relocalize; instead, the redistribution of nascent cell wall parallels that of peptidoglycan precursor synthase MurG. Our results support a model in which mycobacteria balance polar growth and cell-wide repair via spatial flexibility in precursor synthesis and extracellular insertion. IMPORTANCE Peptidoglycan synthesis is a highly successful target for antibiotics. The pathway has been extensively studied in model organisms under laboratory-optimized conditions. In natural environments, bacteria are frequently under attack. Moreover, the vast majority of bacterial species are unlikely to fit a single paradigm of cell wall assembly because of differences in growth mode and/or envelope structure. Studying cell wall synthesis under nonoptimal conditions and in nonstandard species may improve our understanding of pathway function and suggest new inhibition strategies. Mycobacterium smegmatis, a relative of several notorious human and animal pathogens, has an unusual polar growth mode and multilayered envelope. In this work, we challenged M. smegmatis with cell wall-damaging enzymes to characterize the roles of cell wall-building enzymes when the bacterium is under attack.
Insights
Mycobacterium smegmatis uses RodA and class A penicillin-binding proteins (aPBPs) for polar cell wall growth. Under stress, RodA aids in cell wall repair, shifting synthesis from poles to the sidewall.
Area of Science:
- Microbiology
- Cell Biology
- Biochemistry
Background:
- Bacterial cell walls are crucial for survival, with peptidoglycan synthesis being a key target for antibiotics.
- Pole-growing mycobacteria, unlike rod-shaped bacteria, lack MreB and RodA for standard growth but RodA's role in stress is unknown.
- Understanding cell wall synthesis in diverse species and conditions is vital for new antibiotic strategies.
Purpose of the Study:
- To investigate the role of RodA and class A penicillin-binding proteins (aPBPs) in Mycobacterium smegmatis cell wall synthesis under basal and stress conditions.
- To elucidate the spatial regulation of peptidoglycan assembly during cell wall damage.
- To understand how mycobacteria balance polar growth with cell-wide repair.
Main Methods:
- Subcellular localization studies of RodA and aPBP PonA1.
- Assessing the impact of cell wall damage on peptidoglycan synthesis localization.
- Tracking the redistribution of peptidoglycan precursor synthase MurG.
Main Results:
- RodA and aPBPs (like PonA1) colocalize and promote polar peptidoglycan synthesis in M. smegmatis.
- Upon cell wall damage, RodA contributes to survival and shifts peptidoglycan assembly from poles to the sidewall.
- The redistribution of nascent cell wall synthesis parallels MurG localization, not RodA or PonA1.
Conclusions:
- Mycobacteria dynamically regulate cell wall synthesis, balancing polar growth with stress-induced repair through spatial flexibility in precursor supply and insertion.
- RodA plays a critical role in cell wall integrity during stress, distinct from its basal growth function.
- This study highlights the importance of studying bacterial cell wall synthesis under non-ideal conditions and in non-model organisms.
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