Cao Yunteng, Kim Doyoon, Koh Sally Shuxian, Li Zheng, Rigoldi Federica, Fortmueller Julia Eva, Goh Kasey, Zhang Yilin, Lim Eugene J, Sun Hui, Uyehara Elise, Cheerlavancha Raju, Han Yangyang, Ram Rajeev J, Urano Daisuke, Marelli Benedetto
Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA, USA.
Temasek Life Sciences Laboratory, Singapore, Singapore.
Nat Nanotechnol. 2025 Apr 29. doi: 10.1038/s41565-025-01923-2.
Biomaterials bridging the biotic-abiotic interface in plants offer the opportunity to precisely deliver agrochemicals and continuously monitor plant health, with the goals of increasing resilience to climate change, enhancing crop production and mitigating environmental impact. In this study we report the manipulation of silk fibroin assembly with inorganics nucleation at their phase front to nanomanufacture porous and hollow microneedles that can be interfaced with plants. Plant growth analysis and quantification of wounding gene expression show a non-significant systemic wounding response to the injection of silk microneedles in tomato plants. Microneedles with a hollow structure enable the systemic delivery of plant micronutrients to treat chlorosis in tomato plants and crop biofortification through transport of human micronutrients injected in the petiole and loaded into tomato fruits. Hollow microneedles also provide access to plant vasculature for sap sampling, enabling continuous monitoring and early detection of phytoaccumulation of environmental contaminants such as cadmium.
连接植物中生物-非生物界面的生物材料为精确输送农用化学品和持续监测植物健康提供了机会,目标是增强对气候变化的适应能力、提高作物产量并减轻环境影响。在本研究中,我们报告了通过在丝素蛋白组装的相前沿进行无机成核来纳米制造可与植物连接的多孔和中空微针。植物生长分析和创伤基因表达定量显示,向番茄植株注射丝微针后,系统性创伤反应不显著。具有中空结构的微针能够系统性地输送植物微量营养素,以治疗番茄植株的黄化病,并通过将注入叶柄并加载到番茄果实中的人类微量营养素进行运输来实现作物生物强化。中空微针还为采集植物汁液提供了进入植物维管系统的途径,从而能够持续监测和早期检测镉等环境污染物在植物中的积累。