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  • Does dibutyl phthalate pollution affect the soil-vegetable ecosystem?
  • However, there have been few reports about the effect of this toxic pollutant on the soil-vegetable system, especially on plant microbial community (include the phyllospheric and endophytic bacterial communities). In this study, we constructed a soil-vegetable ecosystem with a gradient of dibutyl phthalate (DBP) pollution.
  • What is dibutyl phthalate (DBP)?
  • Among them, dibutyl phthalate (DBP) is one of the top PAEs in terms of usage (Cheng et al., 2019a). As DBP and plastic polymers are linked by unstable chemical bonds (e.g., hydrogen bonds), it is easy to escape from plastics to the natural environment (Zhang et al., 2015).
  • What is dibutyl phthalate used for?
  • It is commonly used as a plasticizer and additive in a number of applications such as agricultural mulch and medical devices (Liu et al., 2022b; Wu et al., 2022). Among them, dibutyl phthalate (DBP) is one of the top PAEs in terms of usage (Cheng et al., 2019a).
  • How does DBP affect the environment?
  • These results indicate that DBP contamination accelerates carbon metabolism, which makes more carbon in soil converted to CO 2 and methane, causing loss of soil carbon pool, while inhibiting carbon flux from the atmosphere to soil, exacerbating the greenhouse effect and negatively affecting the environment.
  • How does DBP affect microbial communities?
  • Zhu et al. (2022) studied the effects of DBP on the nitrogen cycle and microbial communities. They revealed that DBP decreases one of the archaeal taxonomic units involved in the nitrogen cycle, resulting in increased levels of NH 4+ and decreased levels of NO 3− in the soil.
  • Does DBP exposure affect carbon degradation and methanogenesis?
  • Among them, the bacterial 16S rRNA, sga, cex, glx, and mcrA genes were the more sensitive indicators of DBP, indicating that DBP exposure had a relatively strong influence on carbon degradation and methanogenesis processes. The IBR values of DBP exposure concentration and time are shown in Fig. 7 d–e.