Physical Chemistry of Polymers, Max-Planck-Institut für Polymerforschung, Mainz, Germany.
IBWF gGmbH, Institute for Biotechnology and Drug Research, Kaiserslautern, Germany.
Biopolymers. 2020 Dec;111(12):e23413. doi: 10.1002/bip.23413. Epub 2020 Dec 11.
The delivery of agrochemicals is typically achieved by the spraying of fossil-based polymer dispersions, which might accumulate in the soil and increase microplastic pollution. A potentially sustainable alternative is the use of biodegradable nano- or micro-formulations based on biopolymers, which can be degraded selectively by fungal enzymes to release encapsulated agrochemicals. To date, no hemicellulose nanocarriers for drug delivery in plants have been reported. Xylan is a renewable and abundant feedstock occurring naturally in high amounts in hemicellulose - a major component of the plant cell wall. Herein, xylan from corncobs was used to produce the first fungicide-loaded xylan-based nanocarriers by interfacial polyaddition in an inverse miniemulsion using toluene diisocyanate (TDI) as a crosslinking agent. The nanocarriers were redispersed in water and the aqueous dispersions were proven to be active in vitro against several pathogenic fungi, which are responsible for fungal plant diseases in horticulture or agriculture. Besides, empty xylan-based nanocarriers stimulated the growth of fungal mycelium, which indicated the degradation of xylan in the presence of the fungi, and underlined the degradation as a trigger to release a loaded agrochemical. This first example of crosslinked xylan-based nanocarriers expands the library of biodegradable and biobased nanocarriers for agrochemical release and might play a crucial role for future formulations in plant protection.
农用化学品的传递通常通过喷洒基于化石的聚合物分散体来实现,这些分散体可能会在土壤中积累并增加微塑料污染。一种潜在可持续的替代品是使用基于生物聚合物的可生物降解的纳米或微配方,这些配方可以通过真菌酶选择性降解,从而释放封装的农用化学品。迄今为止,尚未有用于植物中药物传递的半纤维素纳米载体的报道。木聚糖是一种可再生且丰富的原料,天然存在于半纤维素中,半纤维素是植物细胞壁的主要成分之一。在此,使用玉米芯中的木聚糖,通过使用甲苯二异氰酸酯(TDI)作为交联剂的反相微乳液中的界面聚加成反应,生产出第一批负载杀菌剂的基于木聚糖的纳米载体。纳米载体在水中重新分散,并且证明水基分散体在体外对几种致病真菌具有活性,这些真菌是园艺或农业中真菌植物病害的罪魁祸首。此外,空的基于木聚糖的纳米载体刺激真菌菌丝的生长,这表明木聚糖在真菌存在下的降解,并强调了降解作为释放负载农用化学品的触发因素。交联木聚糖基纳米载体的这第一个实例扩展了用于农用化学品释放的可生物降解和生物基纳米载体库,并可能在未来的植物保护配方中发挥关键作用。