Department of Chemical and Biological Engineering, Iowa State University, 618 Bissell Rd., Ames, Iowa 50011, United States.
Department of Chemistry, Iowa State University, Ames, Iowa 50011, United States.
ACS Appl Mater Interfaces. 2024 Nov 13;16(45):62547-62556. doi: 10.1021/acsami.4c13800. Epub 2024 Oct 30.
Single walled carbon nanotubes (SWCNT) have recently been demonstrated as modular, near-infrared (nIR) probes for reporting hydrolase activity; however, these have been limited to naturally amphipathic substrate targets used to noncovalently functionalize the hydrophobic nanoparticles. Many relevant substrate targets are hydrophobic (such as recalcitrant biomass) and pose a challenge for modular functionalization. In this work, a facile mechanochemistry approach was used to couple insoluble substrates, such as lignin, to SWCNT using l-lysine amino acid as a linker and tip sonication as the mechanochemical energy source. The proposed coupling mechanism is ion pairing between the lysine amines and lignin carboxylic acids, as evidenced by FTIR, NMR, SEM, and elemental analyses. The limits of detection for the lignin-lysine-SWCNT (LLS) probe were established using commercial enzymes and found to be 0.25 ppm (volume basis) of the formulated product. Real-world use of the LLS probes was shown by evaluating soil hydrolase activities of soil samples gathered from different corn root proximal locations and soil types. Additionally, the probes were used to determine the effect of storage temperature on the measured enzyme response. The modularity of this mechanochemical functionalization approach is demonstrated with other substrates such as zein and 9-anthracenecarboxylic acid, which further corroborate the mechanochemical mechanism.
单壁碳纳米管(SWCNT)最近被证明是用于报告水解酶活性的模块化近红外(nIR)探针;然而,这些探针仅限于用于非共价功能化疏水性纳米粒子的天然两亲性底物靶标。许多相关的底物靶标都是疏水性的(如难处理的生物质),这对模块化功能化提出了挑战。在这项工作中,使用简便的机械化学方法将不溶性底物(如木质素)与 SWCNT 偶联,使用 l-赖氨酸氨基酸作为连接体,尖端超声作为机械化学能量源。提出的偶联机制是赖氨酸胺和木质素羧酸之间的离子配对,这可以通过 FTIR、NMR、SEM 和元素分析来证明。使用商业酶确定木质素-赖氨酸-SWCNT(LLS)探针的检测限,发现配方产品的检测限为 0.25ppm(体积基础)。通过评估从不同玉米根近位收集的土壤样品和不同土壤类型的土壤水解酶活性,展示了 LLS 探针的实际应用。此外,还使用探针来确定储存温度对测量酶响应的影响。这种机械化学功能化方法的模块化通过其他底物(如玉米醇溶蛋白和 9-蒽羧酸)得到了证明,这进一步证实了机械化学机制。