Department of Biomedical Engineering, Rutgers, the State University of New Jersey, Piscataway, NJ, 08854, USA.
Department of Electrical and Computer Engineering, Rutgers, the State University of New Jersey, Piscataway, NJ, 08854, USA.
Biosens Bioelectron. 2023 Dec 1;241:115661. doi: 10.1016/j.bios.2023.115661. Epub 2023 Sep 3.
The growing need for personalized, accurate, and non-invasive diagnostic technology has resulted in significant advancements, from pushing current mechanistic limitations to innovative modality developments across various disease-related biomarkers. However, there still lacks clinical solutions for analyzing multiple biomarkers simultaneously, limiting prognosis for patients suffering with complicated diseases or comorbidities. Here, we conceived, fabricated, and validated a multifrequency impedance cytometry apparatus with novel frequency-sensitive barcoded metal oxide Janus particles (MOJPs) as cell-receptor targeting agents. These microparticles are modulated by a metal oxide semi-coating which exhibit electrical property changes in a multifrequency electric field and are functionalized to target CD11b and CD66b membrane proteins on neutrophils. A multi-modal system utilizing supervised machine learning and simultaneous high-speed video microscopy classifies immune-specific surface receptors targeted by MOJPs as they form neutrophil-MOJP conjugates, based on multivariate multifrequency electrical recordings. High precision and sensitivity were determined based on the type of MOJPs conjugated with cells (>90% accuracy between neutrophil-MOJP conjugates versus cells alone). Remarkably, the design could differentiate the number of MOJPs conjugated per cell within the same MOJP class (>80% accuracy); which also improved comparing electrical responses across different MOJP types (>75% accuracy) as well. Such trends were consistent in individual blood samples and comparing consolidated data across multiple samples, demonstrating design robustness. The configuration may further expand to include more MOJP types targeting critical biomarker receptors in one sample and increase the modality's multiplexing potential.
个性化、准确且非侵入性的诊断技术的需求不断增长,推动了各种与疾病相关生物标志物的创新模式的发展,从而取得了重大进展。然而,目前仍然缺乏同时分析多种生物标志物的临床解决方案,限制了患有复杂疾病或合并症的患者的预后。在这里,我们设计、制造和验证了一种多频阻抗细胞仪,该仪器使用新型频率敏感的带条码金属氧化物 Janus 粒子(MOJPs)作为细胞受体靶向剂。这些微粒子由金属氧化物半涂层调制,在多频电场中表现出电特性变化,并被功能化以靶向中性粒细胞上的 CD11b 和 CD66b 膜蛋白。基于监督机器学习和同时高速视频显微镜的多模态系统,根据多变量多频电记录,对 MOJPs 形成中性粒细胞-MOJP 缀合物时靶向的免疫特异性表面受体进行分类。高精度和高灵敏度是基于与细胞结合的 MOJP 类型确定的(中性粒细胞-MOJP 缀合物与细胞单独结合的准确率>90%)。值得注意的是,该设计可以区分同一 MOJP 类中每个细胞结合的 MOJP 数量(>80%的准确率);与不同 MOJP 类型的电响应相比,准确率也有所提高(>75%的准确率)。这种趋势在个体血液样本中是一致的,并且在多个样本的汇总数据中进行比较,证明了设计的稳健性。该配置可以进一步扩展到在一个样本中包括更多靶向关键生物标志物受体的 MOJP 类型,并增加该模式的多路复用潜力。