生物膜
枯草芽孢杆菌
聚合物
化学
流变学
生物物理学
肿胀 的
化学工程
粘弹性
细菌
相变
细胞外基质
渗透(战争)
胞外聚合物
相(物质)
拉伤
生物化学
多糖
渗透压
基质(化学分析)
芽孢杆菌目
双层
杆菌科
微生物学
原位
材料科学
地氯酸
细胞外
右旋糖酐
葡聚糖
作者
Ayantika Saha,Joshua M. Jones,Abigail Plummer,Joseph Larkin
标识
DOI:10.1073/pnas.2608188123
摘要
Microbes across diverse species and environments form biofilms, living materials composed of cells and extracellular polymers. Biofilm-dwelling cells benefit from emergent soft matter physics, which sculpts three-dimensional morphologies and facilitates osmotic nutrient uptake. Although biofilms are modeled as viscoelastic gels, the physical origins of the phase transition underlying their conversion from groups of cells to living gels have not been systematically investigated. Here, we show that Bacillus subtilis biofilms use polymer composition to tune their physical properties and drive gel formation. Using imaging, water immersion experiments, and rheological measurements with matrix knockout strains, we demonstrate the complementary roles of two polymers in this developmental transition: hydrophilic poly- γ -glutamic acid swells colonies by absorbing water while exopolysaccharides serve as effective cross-linkers, causing a sol–gel-like phase transition that imparts structural integrity. With matrix knockout coculture biofilms, we independently modulate the production of each polymer and reveal a phase space of biofilm morphologies. Colonies that produce both polymers develop macroscopic wrinkles. A thin-film model predicts biofilm wrinkling from swelling-induced internal strain coupled with elasticity. The model reproduces the shape of our observed morphological phase diagram. Our results demonstrate that bacteria leverage gelation to vary their material properties and morphologies, with implications for microbial ecology and engineering living matter.
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