Bioelectromechanical Systems Laboratory, Department of Mechanical Engineering, Virginia Tech, Blacksburg, Virginia, USA.
Bioelectromechanical Systems Laboratory, Wake Forest School of Biomedical Engineering and Sciences, Virginia Tech, Blacksburg, Virginia, USA.
Electrophoresis. 2021 Dec;42(23):2423-2444. doi: 10.1002/elps.202100135. Epub 2021 Oct 20.
This paper reviews the use of dielectrophoresis for high-fidelity separations and characterizations of subpopulations to highlight the recent advances in the electrokinetic field as well as provide insight into its progress toward commercialization. The role of cell subpopulations in heterogeneous clinical samples has been studied to deduce their role in disease progression and therapy resistance for instances such as cancer, tissue regeneration, and bacterial infection. Dielectrophoresis (DEP), a label-free electrokinetic technique, has been used to characterize and separate target subpopulations from mixed samples to determine disease severity, cell stemness, and drug efficacy. Despite its high sensitivity to characterize similar or related cells based on their differing bioelectric signatures, DEP has been slowly adopted both commercially and clinically. This review addresses the use of dielectrophoresis for the identification of target cell subtypes in stem cells, cancer cells, blood cells, and bacterial cells dependent on cell state and therapy exposure and addresses commercialization efforts in light of its sensitivity and future perspectives of the technology, both commercially and academically.
本文综述了用于高保真分离和亚群特征分析的介电泳技术,重点介绍了电动领域的最新进展,并深入探讨了其向商业化迈进的进展。细胞亚群在异质临床样本中的作用已被研究,以推断它们在疾病进展和治疗耐药性(如癌症、组织再生和细菌感染)中的作用。介电泳(DEP)是一种无标记的电动技术,已被用于从混合样本中分离和表征目标亚群,以确定疾病的严重程度、细胞干性和药物疗效。尽管基于其不同的生物电特征对相似或相关细胞进行高灵敏度的表征,但 DEP 无论是在商业上还是临床上都还在缓慢采用。本文综述了 DEP 在干细胞、癌细胞、血细胞和细菌细胞中识别靶细胞亚型的应用,根据细胞状态和治疗暴露情况,探讨了其商业化的努力,以及从商业和学术角度考虑该技术的敏感性和未来前景。