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Plant Translocation of Organic Compounds: Molecular and Physicochemical Predictors

机译:有机化合物的植物易位:分子和物理化学预测因子

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The root-soil boundary represents one of the largest global biotic-abiotic mass-transfer interfaces and is a primary pollutant entry point to the food chain. This interface is also critically important in phytoremediation efforts and herbicide design. Experimental data and single-parameter models have resulted in the current understanding that moderately hydrophobic organic compounds are most likely to be translocated by plants, although recent evidence indicates plants can also translocate some hydro- philic compounds. Molecular descriptors initially applied for drug discovery and for transmembrane migration in mammalian systems were applied here to determine the physicochemical domains and weighted desirability functions to identify compounds amenable to translocation by plants. Considering molecular descriptor cutoffs defined in this work, chemicals likely to be translocated by plants more closely resemble those that can cross the blood-brain barrier as compared to the intestine. Desirability functions were also used to generate quantitative estimates of plant translocation, and these results revealed similarities to the human system, as well. Knowledge of the physicochemical domain encompassing plant-translocatable contaminants from this work allows in silico screening of emerging contaminants for better estimates of exposure.
机译:根-土边界代表了全球最大的生物-非生物传质界面之一,并且是食物链的主要污染物进入点。该界面在植物修复工作和除草剂设计中也至关重要。实验数据和单参数模型已使当前的理解认为,中等疏水性有机化合物最有可能被植物转移,尽管最近的证据表明植物也可以使某些亲水性化合物转移。最初用于哺乳动物系统中的药物发现和跨膜迁移的分子描述符在这里用于确定理化结构域和加权期望功能,以鉴定适合植物转运的化合物。考虑到这项工作中定义的分子描述符截止值,与肠道相比,植物可能易位的化学物质更类似于可以穿越血脑屏障的化学物质。需求函数还用于生成植物易位的定量估计,这些结果也显示出与人类系统的相似性。这项工作对涉及植物易位污染物的物理化学领域的了解,可以对新兴污染物进行计算机筛选,以更好地估算暴露量。

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