Key Laboratory for Information System of Mountainous Areas and Protection of Ecological Environment of Guizhou Province, Guizhou Normal University, Guiyang 550001, People's Republic of China.
Key Laboratory for Information System of Mountainous Areas and Protection of Ecological Environment of Guizhou Province, Guizhou Normal University, Guiyang 550001, People's Republic of China.
Ecotoxicol Environ Saf. 2024 Jan 15;270:115946. doi: 10.1016/j.ecoenv.2024.115946. Epub 2024 Jan 9.
With a growing number of research reports on microplastics (MPs), there is increasing concern regarding MPs-induced contamination in soil ecological systems. Notwithstanding, the interaction between the plastisphere and rhizosphere microbial hotspots in soil-plant systems, as well as the diversity and composition of plastisphere microbial communities in such systems, remain largely unexplored. This study evaluated the response of rhizosphere bacterial communities to MPs at three growth stages of pepper and examined the bacterial communities present on MPs (plastisphere). The 16 S rRNA revealed that, under the stress of MPs, the Chao1 and Shannon index of the pepper soil bacterial community decreased. Meanwhile the relative abundance of Actinobacteriota was decreased, and that of Proteobacteria was increased. Furthermore, the plastisphere serves as a unique microbial habitat (niche) that recruits the colonization of specific bacterial groups, including potential plastic-degrading bacteria and potential pathogens (e.g., Massilia and Pseudomonas). Simultaneously, the plastisphere recruits specific bacteria that may impact the rhizosphere soil bacterial communities, thus indirectly affecting plant growth. Functional prediction using PICRUSt2 revealed higher activity in the plastisphere for Metabolism of terpenoids and polyketides, Human diseases, and Xenobiotics biodegradation and metabolism. Notably, the human diseases metabolic pathway exhibited increased activity, suggesting potential ecological risks associated with pathogens. These results highlighted that the plastisphere serves as a unique microbial habitat (niche) in the soil ecological systems, recruiting specific bacteria and potentially interfering with the surrounding soil microbial community, thereby influencing the functional characteristics of the soil ecological systems.
随着越来越多的关于微塑料(MPs)的研究报告的出现,人们对 MPs 对土壤生态系统造成的污染的担忧日益增加。然而,土壤-植物系统中塑料圈与根际微生物热点之间的相互作用,以及这些系统中塑料圈微生物群落的多样性和组成,在很大程度上仍未得到探索。本研究评估了根际细菌群落对辣椒三个生长阶段的 MPs 的响应,并研究了 MPs 上存在的细菌群落(塑料圈)。16S rRNA 表明,在 MPs 的胁迫下,辣椒土壤细菌群落的 Chao1 和 Shannon 指数下降。与此同时,放线菌门的相对丰度减少,而变形菌门的相对丰度增加。此外,塑料圈作为一个独特的微生物栖息地(小生境),招募了特定细菌群体的定殖,包括潜在的塑料降解细菌和潜在的病原体(如 Massilia 和 Pseudomonas)。同时,塑料圈招募了可能影响根际土壤细菌群落的特定细菌,从而间接影响植物的生长。使用 PICRUSt2 进行功能预测显示,在代谢萜类和聚酮类、人类疾病和外来生物降解和代谢方面,塑料圈的活性更高。值得注意的是,人类疾病代谢途径的活性增加,表明与病原体相关的潜在生态风险。这些结果表明,塑料圈作为土壤生态系统中一个独特的微生物栖息地(小生境),招募特定的细菌,并可能干扰周围的土壤微生物群落,从而影响土壤生态系统的功能特征。