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首页> 外文期刊>The ISME journal emultidisciplinary journal of microbial ecology >Sympatric inhibition and niche differentiation suggest alternative coevolutionary trajectories among Streptomycetes
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Sympatric inhibition and niche differentiation suggest alternative coevolutionary trajectories among Streptomycetes

机译:同胞抑制和利基分化建议链霉菌之间的替代进化轨迹。

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Soil bacteria produce a diverse array of antibiotics, yet our understanding of the specific roles of antibiotics in the ecological and evolutionary dynamics of microbial interactions in natural habitats remains limited. Here, we show a significant role for antibiotics in mediating antagonistic interactions and nutrient competition among locally coexisting Streptomycete populations from soil. We found that antibiotic inhibition is significantly more intense among sympatric than allopatric Streptomycete populations, indicating local selection for inhibitory phenotypes. For sympatric but not allopatric populations, antibiotic inhibition is significantly positively correlated with niche overlap, indicating that inhibition is targeted toward bacteria that pose the greatest competitive threat. Our results support the hypothesis that antibiotics serve as weapons in mediating local microbial interactions in soil and suggest that coevolutionary niche displacement may reduce the likelihood of an antibiotic arms race. Further insight into the diverse roles of antibiotics in microbial ecology and evolution has significant implications for understanding the persistence of antibiotic inhibitory and resistance phenotypes in environmental microbes, optimizing antibiotic drug discovery and developing strategies for managing microbial coevolutionary dynamics to enhance inhibitory phenotypes.
机译:土壤细菌产生各种各样的抗生素,但是我们对抗生素在自然栖息地中微生物相互作用的生态和进化动力学中的特定作用的理解仍然有限。在这里,我们显示了抗生素在介导土壤中局部存在的链霉菌种群之间的拮抗相互作用和养分竞争中的重要作用。我们发现,同种异体患者中抗生素抑制作用比同种异体链霉菌种群要明显得多,这表明对抑制表型的局部选择。对于同胞而非异种人群,抗生素抑制与小生境重叠显着正相关,表明抑制作用针对的是构成最大竞争威胁的细菌。我们的研究结果支持以下假设:抗生素可充当介导土壤中局部微生物相互作用的武器,并表明协同进化的生态位置换可降低抗生素军备竞赛的可能性。进一步了解抗生素在微生物生态学和进化中的各种作用,对于理解环境微生物中抗生素抑制和耐药表型的持久性,优化抗生素药物发现和开发管理微生物协同进化动力学以增强抑制表型的策略具有重要意义。

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