Zhao Lisha, Ckurshumova Wenzi, Fefer Michael, Liu Jun, Hoare Todd
Department of Chemical Engineering, 1280 Main Street West, Hamilton, Ontario, CanadaL8S 4L7.
Suncor AgroScience, 2489 North Sheridan Way, Mississauga, Ontario, CanadaL5K 1A8.
J Agric Food Chem. 2022 Dec 7;70(48):15028-15037. doi: 10.1021/acs.jafc.2c05279. Epub 2022 Nov 22.
Effective delivery of agrochemicals requires control over bioactive release kinetics coupled with effective penetration of the bioactive into plants. Herein, we demonstrate the fabrication of hybrid nanovesicles based on sodium dodecylbenzenesulfonate (SDBS) and cetyltrimethylammonium bromide (CTAB) for enabling effective delivery of the biostimulant sodium copper chlorophyllin (Cu-chl) into plants. SDBS-CTAB nanovesicles exhibited a particle size of 107 nm with a well-defined spherical morphology, while modified formulations that included small fractions of the unsaturated dopant Span 80 yielded larger nanovesicles that were softer and more irregular in shape. All nanovesicles maintained high colloidal stability over >4 weeks and enabled sustained Cu-chl release, with the incorporation of Span 80 into the membranes enabling controllable acceleration of the release rate. Nanovesicle encapsulation improved the photostability of Cu-chl bioactive 3-4 × relative to that of free Cu-chl and enabled significant penetration of Cu-chl into the plant root without inducing any significant phytotoxicity.
农药的有效递送需要控制生物活性物质的释放动力学,并使生物活性物质有效渗透到植物中。在此,我们展示了基于十二烷基苯磺酸钠(SDBS)和十六烷基三甲基溴化铵(CTAB)制备的混合纳米囊泡,用于将生物刺激剂叶绿素铜钠(Cu-chl)有效递送至植物中。SDBS-CTAB纳米囊泡的粒径为107 nm,具有明确的球形形态,而包含少量不饱和掺杂剂Span 80的改性制剂产生了更大的纳米囊泡,其形状更软且更不规则。所有纳米囊泡在超过4周的时间内保持了高胶体稳定性,并实现了Cu-chl的持续释放,将Span 80掺入膜中可实现释放速率的可控加速。纳米囊泡包封相对于游离Cu-chl将Cu-chl生物活性物质的光稳定性提高了3-4倍,并使Cu-chl能够显著渗透到植物根部,而不会引起任何明显的植物毒性。