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Basurto De Santiago, C.

Publications and source records attributed to Basurto De Santiago, C..

2 recordsLinked to original sources

Reprogrammed peptidoglycan elongation reveals plasticity in bacterial growth modes

Most bacteria are enclosed by a peptidoglycan (PG) cell wall that must be expanded for growth. In rod-shaped species, PG elongation is spatially organized in a species-specific manner, occurring either at the cell poles or along the lateral wall. MreB filaments organize the Rod machinery and are typically required for dispersed, nonpolar PG elongation but are dispensable for polar growth. Whether elongation modes are inherently fixed or can be reprogrammed remains unclear. Escherichia coli and Myxococcus xanthus both elongate PG in a dispersed, nonpolar fashion. Here, we show that heterologous expression of M. xanthus MreB in E. coli relocalizes native MreB to the cell poles, thereby redirecting the Rod machinery and PG elongation to polar sites. Moreover, direct targeting of the Rod synthase PBP2 to the poles is sufficient to drive polar PG elongation in E. coli while preserving rod shape. This reprogrammed growth mode bypasses the requirement for MreB filaments, highlighting a plasticity of the Rod system that suggests polar elongation may have emerged through the evolutionary loss of MreB.

microbiology↗

Autonomous division of the outer membrane in Gram-negative bacteria

Gram-negative bacteria divide by separating two cell wall layers: peptidoglycan (PG) and the outer membrane (OM). In certain model organisms, the OMs are tethered to PG, ensuring it closely follows PG when cells constrict at division sites. In contrast, the OMs of Myxococcus xanthus exhibit slight invagination at the onset of cell division but do not follow the constriction of PG, instead separating significantly later, only after complete PG fission. However, reinforcing the OM-PG connection by overexpressing tethering proteins, either the endogenous Pal or the exogenous Lpp, synchronizes the constriction of both layers. Our findings suggest that OMs can divide by simple mechanical force. The variability in OM division mechanisms among Gram-negative bacteria reflects differences in both the mode of PG division and the strength of PG-OM interactions.

microbiology↗