Department of Biomedical Engineering, ‡Department of Biology, and §Department of Materials Science and Engineering, Texas A&M University , College Station, Texas 77843, United States.
ACS Sens. 2017 Nov 22;2(11):1584-1588. doi: 10.1021/acssensors.7b00648. Epub 2017 Oct 20.
Continuously monitoring specific biomarkers offer a promising method to interrogate disease status and progression. In this work we have demonstrated a composite hydrogel-based sensing platform that may be used for optical detection of lactate. The sensor design consists of microsized enzymatic sensors that are embedded in an outer hydrogel matrix. In these engineered microdomains, encapsulated lactate oxidase serves as the bioactive component, phosphorescent metalloporphyrin acts as the optical transducer, and polyelectrolyte multilayers coated on the enzymatic microsensors control the permeation of lactate into the microsensors. The response of the composite hydrogel-based lactate sensors was characterized by subjecting the sensors to lactate concentration challenges at low physiological oxygen levels. The analytical range and the mean sensitivity were determined to be 9.2 ± 0.83 mg/dL and 11 ± 0.90% dL mg, respectively. Repeated cyclic exposure to high levels of lactate revealed that these sensors were extremely stable, with no significant loss in sensor response after 20 cycles. These preliminary results support the premise that these composite hydrogels are capable of continuous lactate tracking and have the potential for use as fully implantable optical lactate sensors.
连续监测特定的生物标志物为探究疾病状态和进展提供了一种很有前途的方法。在这项工作中,我们展示了一种基于复合水凝胶的传感平台,可用于乳酸的光学检测。传感器设计由嵌入在外水凝胶基质中的微尺寸酶传感器组成。在这些工程微域中,封装的乳酸氧化酶作为生物活性成分,磷光金属卟啉作为光传感器,并且涂覆在酶微传感器上的聚电解质多层控制乳酸进入微传感器的渗透。通过在低生理氧水平下使传感器经受乳酸浓度挑战来表征基于复合水凝胶的乳酸传感器的响应。分析范围和平均灵敏度分别确定为 9.2 ± 0.83 mg/dL 和 11 ± 0.90% dL mg。对高浓度乳酸的重复循环暴露表明,这些传感器非常稳定,在 20 个循环后传感器响应没有明显损失。这些初步结果支持了这样的前提,即这些复合水凝胶能够进行连续的乳酸跟踪,并有可能用作完全可植入的光学乳酸传感器。