Data from: The physical boundaries of public goods cooperation between surface-attached bacterial cells
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Bacteria secrete a variety of compounds important for nutrient scavenging, competition mediation and infection establishment. While there is a general consensus that secreted compounds can be shared and therefore have social consequences for the bacterial collective, we know little about the physical limits of such bacterial social interactions. Here, we address this issue by studying the sharing of iron-scavenging siderophores between surface-attached microcolonies of the bacterium Pseudomonas aeruginosa. Using single-cell fluorescent microscopy, we show that siderophores, secreted by producers, quickly reach non-producers within a range of 100 μm, and significantly boost their fitness. Producers in turn respond to variation in sharing efficiency by adjusting their pyoverdine investment levels. These social effects wane with larger cell-to-cell distances and on hard surfaces. Thus, our findings reveal the boundaries of compound sharing, and show that sharing is particularly relevant between nearby yet physically separated bacteria on soft surfaces, matching realistic natural conditions such as those encountered in soft tissue infections.
细菌可分泌多种对营养获取、竞争调控及感染定植至关重要的化合物。尽管学界普遍认为,分泌的化合物可被共享并因此对细菌群体产生社会效应,但我们对这类细菌社会互动的物理边界仍知之甚少。本研究以铜绿假单胞菌(Pseudomonas aeruginosa)表面附着的微菌落间的铁载体(iron-scavenging siderophores)共享为研究对象,以此探讨该问题。借助单细胞荧光显微镜技术,我们发现:由铁载体产生菌分泌的铁载体可在100微米范围内快速扩散至非产生菌,并显著提升后者的适合度(fitness)。而铁载体产生菌也会根据共享效率的差异,调整其假单胞菌素(pyoverdine)的合成投入水平。这类社会效应会随细胞间距增大以及在硬质表面培养时而减弱。综上,本研究揭示了化合物共享的边界,并证实:在柔软表面上,物理分隔的邻近细菌间的化合物共享尤为关键,这与软组织感染等真实自然环境中的情况相符。



