MOE Key Laboratory of Bioinorganic and Synthetic Chemistry, School of Chemistry, Sun Yat-sen University, Guangzhou510275, China.
Guangzhou Municipal and Guangdong Provincial Key Laboratory of Molecular Target & Clinical Pharmacology, the NMPA and State Key Laboratory of Respiratory Disease, School of Pharmaceutical Sciences and The Fifth Affiliated Hospital, Guangzhou Medical University, Guangzhou511436, China.
Anal Chem. 2022 Oct 18;94(41):14385-14393. doi: 10.1021/acs.analchem.2c03138. Epub 2022 Oct 7.
Enzymes featuring high catalytic efficiency and selectivity have been widely used as the sensing element in analytical chemistry. However, the structural fragility and poor machinability of an enzyme significantly limit its practicability in biosensors. Herein, we develop a robust and sensitive hybrid biosensor by means of co-encapsulating enzymes into a defective metal-organic framework (MOF), followed by a double-crosslinked alginate gelatinization. The defective MOF encapsulation can enhance the stability of enzymes, yet well preserve their biocatalytic function, while the alginate gelatinization allows the MOF biohybrid high stretchability and mechanical strength, which facilitates the integration of a bead-, fiber-, and sheet-like portable biosensor. In this work, the enzymes consisting of glucose oxidase and peroxidase are co-encapsulated into this MOF hydrogel, and it can efficiently convert glucose into a blue-violet product through the biocatalytic cascade of encapsulated enzymes, enabling the colorimetric biosensing of glucose on a miniaturized MOF hydrogel when coupling with a smartphone. Interestingly, this MOF biohybrid hydrogel outputs a stronger sensing signal than the free biohybrid powders, attributed to the catalytic product-accumulated effect of the highly hydrophilic microenvironment of the hydrogel. As a result, this portable biosensor can sensitively and selectively sense glucose with a linear range from 0.05 to 4 mM. Importantly, both the hydrophilic hydrogel and MOF "armor" endow enzymes with high durability, and its sensing activity was well-maintained even after placing the biosensor at room temperature for 30 d. We believe that this MOF biohybrid hydrogel has huge potential for the engineering of next-generation portable biosensors.
具有高催化效率和选择性的酶已被广泛用作分析化学中的传感元件。然而,酶的结构脆弱性和较差的可加工性显著限制了其在生物传感器中的实用性。在此,我们通过将酶共包封到缺陷金属-有机骨架(MOF)中,然后进行双交联海藻酸盐凝胶化,开发了一种稳健且灵敏的混合生物传感器。缺陷 MOF 包封可以增强酶的稳定性,同时很好地保留其生物催化功能,而海藻酸盐凝胶化允许 MOF 生物杂化具有高拉伸性和机械强度,这有利于珠状、纤维状和片状便携式生物传感器的集成。在这项工作中,将包含葡萄糖氧化酶和过氧化物酶的酶共包封到这种 MOF 水凝胶中,并且它可以通过包封酶的生物催化级联有效地将葡萄糖转化为蓝紫色产物,从而通过与智能手机耦合实现对葡萄糖的比色生物传感。有趣的是,这种 MOF 生物杂化水凝胶比游离生物杂化粉末输出更强的传感信号,这归因于水凝胶高亲水性微环境中催化产物的积累效应。结果,这种便携式生物传感器可以灵敏且选择性地检测 0.05 至 4 mM 范围内的葡萄糖。重要的是,亲水性水凝胶和 MOF“装甲”都赋予了酶高度的耐用性,即使将生物传感器放置在室温下 30 天后,其传感活性也得到了很好的维持。我们相信,这种 MOF 生物杂化水凝胶具有用于下一代便携式生物传感器工程的巨大潜力。