Natural Resources Institute Finland (Luke), Latokartanonkaari 9, 00790, Helsinki, Finland.
Institute of Environmental Sciences, Leiden University, P.O. Box 9518, 2300, RA Leiden, the Netherlands.
Environ Pollut. 2024 Dec 15;363(Pt 2):125307. doi: 10.1016/j.envpol.2024.125307. Epub 2024 Nov 12.
The development of agricultural technologies has intensified the use of plastic in this sector. Products of plastic degradation, such as microplastics (MPs), potentially threaten living organisms, biodiversity and agricultural ecosystem functioning. Thus, biodegradable plastic materials have been introduced to agriculture. However, the effects of biodegradable plastic substitutes on soil ecosystems are even less known than those of traditional ones. Here, we studied the effects of environmentally relevant concentrations of MPs prepared from a biodegradable plastic (a starch-polybutylene adipate terephthalate blend, PBAT-BD-MPs) on the growth and defense mechanisms of lettuce (Lactuca sativa) in CLIMECS system (CLImatic Manipulation of ECosystem Samples). PBAT-BD-MPs in the highest concentrations negatively affected some traits of growth, i.e., dry weight percentage, specific leaf area, and both C and N contents. We observed more profound changes in plant physiology and biochemistry, as PBAT-BD-MPs decreased chlorophyll content and triggered a concerted response of plant defense mechanisms against oxidative stress. In conclusion, exposure to PBAT-BD-MPs induced plant oxidative stress and activated plant defense mechanisms, leading to oxidative homeostasis that sustained plant growth and functioning. Our study highlights the need for in-depth understanding of the effect of bioplastics on plants.
农业技术的发展加剧了该领域对塑料的使用。塑料降解产物,如微塑料(MPs),可能会威胁到生物体、生物多样性和农业生态系统功能。因此,可生物降解的塑料材料已经被引入到农业中。然而,可生物降解塑料替代品对土壤生态系统的影响甚至比传统塑料更不为人知。在这里,我们在 CLIMECS 系统(生态系统样本的气候操纵)中研究了由可生物降解塑料(淀粉-聚丁二酸丁二醇酯共混物,PBAT-BD-MPs)制备的环境相关浓度的 MPs 对生菜(Lactuca sativa)生长和防御机制的影响。在最高浓度下,PBAT-BD-MPs 对生长的某些特性产生了负面影响,即干重百分比、比叶面积和 C 和 N 含量。我们观察到植物生理学和生物化学发生了更深刻的变化,因为 PBAT-BD-MPs 降低了叶绿素含量,并引发了植物防御机制对氧化应激的协同响应。总之,暴露于 PBAT-BD-MPs 会诱导植物氧化应激并激活植物防御机制,从而维持植物生长和功能的氧化平衡。我们的研究强调了深入了解生物塑料对植物影响的必要性。