4.8 Article

Temperature-Dependent Nanogel for Pesticide Smart Delivery with Improved Foliar Dispersion and Bioactivity for Efficient Control of Multiple Pests

期刊

ACS NANO
卷 16, 期 12, 页码 20622-20632

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c07517

关键词

Nanogel; Temperature-dependent; Pickering emulsion; Lambda-cyhalothrin; Controlled-release

资金

  1. National Key R&D Program of China
  2. Central Public-interest Scientific Institution Basal Research Fund
  3. National Major Science & Technology Program for Water Pollution Control and Treatment
  4. Agricultural Science and Technology Innovation Program
  5. [2021YFA0716700]
  6. [BSRF202113]
  7. [2017ZX07101-003]

向作者/读者索取更多资源

The use of nanomaterials and nanotechnology to construct a smart pesticide delivery system can increase the utilization rate of pesticides and reduce environmental pollution. The temperature-dependent nanogel can improve the controlled-release property of pesticides and adapt to the population growth trend of pests at different temperatures. The research also confirmed the relative safety of the system on cells and non-target organisms.
The use of nanomaterials and nanotechnology to construct a smart pesticide delivery system with target-oriented and controlled-release functions is important to increase the effective utilization rate and minimize environmental residue pollution. A temperature-dependent delivery system can modulate the release of pesticide with temperature to improve the efficacy and precision targeting. A series of poly(N-isopropylacrylamide) (PNIPAM)-based nanogels with high deformability and tunable structure were successfully constructed for smart pesticide delivery and effective pest control. A lambda-cyhalothrin (LC)-loaded Pickering emulsion (LC@TNPE) with a stable gel-like network structure was further formed by the temperature-dependent nanogel to encapsule the pesticide. The foliar wettability, photostability, and controlled-release property of LC@TNPE were effectively enhanced compared to the commercial formulation because of the encapsulation and stabilization of nanogel. The release rate of LC positively correlated with temperature changes and thereby adapted to the trend of pest population increase at higher temperature. The LC@TNPE displayed improved control efficacy on multiple target pests including Plutella xylostella, Aphis gossypii, and Pieris rapae compared with the commercial suspension concentrate and microcapsule suspension, and it showed marked efficacy to control Pieris rapae for an extended duration even at a 40% reduced dosage. Furthermore, the safety was evaluated systematically on cells in vitro and with a nontarget organism. Studies confirmed that the system was relatively safe for HepG2 cells and aquatic organism zebrafish. This research provides an insight into creating an efficient and environmentally friendly pesticide nanoformulation for sustainable agriculture production.

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