银在高初始叶状体密度下抑制生长。

Silver Inhibits Growth at High Initial Frond Densities.

作者信息

Tran Indigo T, Heiman Jordan A, Lydy Victoria R, Kissoon La Toya

机构信息

Department of Biology, Missouri State University, Springfield, MO 65897, USA.

Department of Biology, The University of Mississippi, University, MS 38677, USA.

出版信息

Plants (Basel). 2023 Mar 1;12(5):1104. doi: 10.3390/plants12051104.

Abstract

Silver nanoparticles (AgNPs) are the most popular engineered nanomaterials in consumer products due to their antimicrobial properties. They enter aquatic ecosystems via insufficient purified wastewaters from manufacturers or consumers. AgNPs inhibit growth of aquatic plants, including duckweeds. Growth media nutrient concentration and initial duckweed frond density can affect growth. However, it is not well understood how frond density affects nanoparticle toxicity. We investigated the toxicity of 500 µg/L AgNPs and AgNO on at different initial frond densities (20, 40, and 80 fronds per 28.5 cm) over 14 days. Plants were more sensitive to silver at high initial frond densities. Growth rates based on frond number and area were lower for plants at 40 and 80 initial frond density in both silver treatments. AgNPs had no effect on frond number, biomass, and frond area at 20 initial frond density. However, AgNO plants had lower biomass than control and AgNP plants at 20 initial frond density. Competition and crowding at high frond densities resulted in reduced growth when silver was present, therefore plant density and crowding effects should be considered in toxicity studies.

摘要

由于具有抗菌特性,银纳米颗粒(AgNPs)是消费产品中最受欢迎的工程纳米材料。它们通过制造商或消费者未经充分净化的废水进入水生生态系统。AgNPs会抑制包括浮萍在内的水生植物的生长。生长培养基中的养分浓度和初始浮萍叶状体密度会影响其生长。然而,人们对叶状体密度如何影响纳米颗粒毒性还不太了解。我们在14天内研究了500µg/L的AgNPs和AgNO对不同初始叶状体密度(每28.5平方厘米20、40和80个叶状体)的毒性。在高初始叶状体密度下,植物对银更敏感。在两种银处理中,初始叶状体密度为40和80时,基于叶状体数量和面积的生长速率较低。在初始叶状体密度为20时,AgNPs对叶状体数量、生物量和叶状体面积没有影响。然而,在初始叶状体密度为20时,AgNO处理的植物生物量低于对照和AgNP处理的植物。在高叶状体密度下的竞争和拥挤导致有银存在时生长减少,因此在毒性研究中应考虑植物密度和拥挤效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c23a/10004846/aec80bfff264/plants-12-01104-g001.jpg

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