Department of Chemistry, Faculty of Science, Universiti Putra Malaysia, Selangor, Malaysia.
Pest Manag Sci. 2013 Jan;69(1):104-11. doi: 10.1002/ps.3371. Epub 2012 Aug 2.
Pesticides are developed with carriers to improve their physicochemical properties and, accordingly, the bioefficacy of the applied formulation. For foliar-applied herbicide, generally less than 0.1% of the active ingredient reaching the target site could reduce pesticide performance. Recently, a carrier of nanoemulsion consisting of oil, surfactant and water, with a particle size of less than 200 nm, has been shown to enhance drug permeability for skin penetration in pharmaceutical delivery systems. In the present work, the aim was to formulate a water-soluble herbicide, glyphosate isopropylamine (IPA), using a green nanoemulsion system for a biological activity study against the weeds creeping foxglove, slender button weed and buffalo grass.
The nanoemulsion formulations displayed a significantly lower spray deposition on creeping foxglove (2.9-3.5 ng cm(-2) ), slender button weed (2.6-2.9 ng cm(-2) ) and buffalo grass (1.8-2.4 ng cm(-2) ) than Roundup(®) (3.7-5.1 ng cm(-2) ). The visible injury rates of weeds treated with the nanoemulsion formulations were statistically equivalent to those relating to Roundup(®) at 14 days after treatment, with a control range of 86.67-96.67%.
It was hypothesised that the significant difference in spray deposition with equal injury rates can be attributed to enhanced bioactivity of the nanoemulsion formulations. This initial discovery could be the platform for developing better penetration of agrochemical formulations in the future.
为了改善农药的物理化学性质,并相应提高所施用剂型的生物功效,通常会将载体与农药结合使用。对于叶面施药的除草剂,只有不到 0.1%的活性成分到达靶标位置,才能降低农药的性能。最近,人们发现一种由油、表面活性剂和水组成的纳米乳液载体,其粒径小于 200nm,可增强药物透过皮肤的渗透能力,用于药物传递系统。本研究旨在采用绿色纳米乳液系统,将水溶性除草剂草甘膦异丙胺(IPA)配制成制剂,用于对匍匐风铃草、细叶婆婆纳和野牛草等杂草进行生物活性研究。
纳米乳液制剂在匍匐风铃草(2.9-3.5ng/cm²)、细叶婆婆纳(2.6-2.9ng/cm²)和野牛草(1.8-2.4ng/cm²)上的喷雾沉积量明显低于 Roundup(®)(3.7-5.1ng/cm²)。处理后 14 天,与 Roundup(®)相比,纳米乳液制剂处理的杂草可见伤害率具有统计学等效性,控制范围为 86.67%-96.67%。
我们假设,喷雾沉积量的显著差异与同等的伤害率可以归因于纳米乳液制剂的生物活性增强。这一初步发现可能为未来开发更好的农用化学品制剂渗透提供平台。