Dhiman Ankita, Thaper Piyush, Naga Kailash Chandra, Agrawal Garima
School of Chemical Sciences and Advanced Materials Research Centre, Indian Institute of Technology, Mandi, Himachal Pradesh 175075, India.
ICAR- Central Potato Research Institute, Shimla, Himachal Pradesh 171001, India.
ACS Appl Bio Mater. 2025 Jul 21;8(7):5613-5624. doi: 10.1021/acsabm.5c00109. Epub 2025 Jun 23.
Stimuli-responsive, biodegradable polymeric carriers have emerged as a promising platform for the effective utilization of agrochemicals to address the challenge of environmental pollution. In this work, we present the fabrication of 3,4-dihydroxyhydrocinnamic acid (DC)-functionalized cellulose-based microgels (DC-CelP MGs) crosslinked with phosphate moieties for the sustained release of the imidacloprid (Im) insecticide. These microgels are ∼220 nm in diameter and can degrade in the presence of cellulase enzyme available in soil and salivary glands of insects. Im@DC-CelP MGs exhibit 8.6% loading efficiency and 65% encapsulation efficiency for Im. Im@DC-CelP MGs display ∼76 and ∼94% Im release in the presence of 10 and 15 U cellulase enzyme over 160 h, respectively. Notably, the encapsulation of Im in Im@DC-CelP MGs significantly improves its photostability. The developed microgels show good foliar adhesion on Chinese cabbage leaves, which is beneficial to reduce the insecticide loss by rain. Furthermore, in contrast to bare Im_UV and Confidor_UV, Im@DC-CelP MGs_UV are able to retain the insecticidal activity of Im against the green peach aphid () even after UV treatment for 12 h. Additionally, the presence of phosphate-based crosslinking units render these microgels as potential sources of P. Experimental results reveal that the spraying of the Im@DC-CelP MG formulation improves seed germination and overall plant growth in Chinese cabbage, with no visible phytotoxic effects. Also, acid phosphatase activity in Chinese cabbage roots is reduced upon treatment with DC-CelP MGs and Im@DC-CelP MGs, suggesting the availability of P upon degradation of DC-CelP MGs by the cellulase enzyme in soil. Moreover, no phytotoxicity in the case of potato plants further indicates the wider applicability of the developed microgels. Overall, these results exhibit that the developed microgel carriers with enhanced foliar adhesion and insecticide stability along with the slow release feature for P can act as a promising platform for sustainable agriculture practices.
刺激响应性、可生物降解的聚合物载体已成为有效利用农用化学品以应对环境污染挑战的一个有前景的平台。在这项工作中,我们展示了用磷酸基团交联制备3,4-二羟基肉桂酸(DC)功能化的纤维素基微凝胶(DC-CelP MGs),用于吡虫啉(Im)杀虫剂的持续释放。这些微凝胶直径约为220 nm,在土壤和昆虫唾液腺中存在的纤维素酶作用下可降解。Im@DC-CelP MGs对Im的负载效率为8.6%,包封效率为65%。在10和15 U纤维素酶存在下,Im@DC-CelP MGs在160 h内分别释放约76%和94%的Im。值得注意的是,将Im包封在Im@DC-CelP MGs中显著提高了其光稳定性。所制备微凝胶在大白菜叶片上表现出良好的叶面附着力,这有利于减少雨水造成的杀虫剂损失。此外,与裸露的Im_UV和康福多_UV相比,即使经过12 h紫外线处理,Im@DC-CelP MGs_UV仍能保持Im对桃蚜的杀虫活性。此外,基于磷酸盐的交联单元使这些微凝胶成为潜在的磷源。实验结果表明,喷施Im@DC-CelP MG制剂可提高大白菜种子萌发率和整体植株生长,且无明显的植物毒性效应。此外,用DC-CelP MGs和Im@DC-CelP MGs处理后,大白菜根中的酸性磷酸酶活性降低,这表明土壤中的纤维素酶降解DC-CelP MGs后磷的有效性。此外,马铃薯植株未出现植物毒性进一步表明所制备微凝胶具有更广泛的适用性。总体而言,这些结果表明,所开发的具有增强叶面附着力、杀虫剂稳定性以及磷缓释特性的微凝胶载体可成为可持续农业实践的一个有前景的平台。