Digital microfluidics methods for nucleic acid detection: A mini review

Author:

Xing Youqiang1ORCID,Wang Yan2,Li Xiang3,Pang Shangran4ORCID

Affiliation:

1. School of Mechanical Engineering, Southeast University 1 , Nanjing 211189, Jiangsu Province, People’s Republic of China

2. Clinical Laboratory, Yantai Yuhuangding Hospital 2 , Yantai 264000, Shandong Province, People’s Republic of China

3. Bio-manufacturing Engineering Laboratory, Tsinghua Shenzhen International Graduate School, Tsinghua University 3 , Guangdong 518000, Shenzhen, People’s Republic of China

4. Jinzhong Normal Junior College 4 , 189 Guang'an Street, Yuci District, Jinzhong 030600, Shanxi Province, People’s Republic of China

Abstract

Many serious infectious diseases have occurred throughout human history. Rapid and accurate detection as well as the isolation of infected individuals, through nucleic acid testing, are effective means of containing the spread of these viruses. However, traditional nucleic acid testing methods rely on complex machines and specialized personnel, making it difficult to achieve large-scale, high-throughput, and rapid detection. In recent years, digital microfluidics has emerged as a promising technology that integrates various fields, including electrokinetics, acoustics, optics, magnetism, and mechanics. By leveraging the advantages of these different technologies, digital microfluidic chips offer several benefits, such as high detection throughput, integration of multiple functions, low reagent consumption, and portability. This rapid and efficient testing is crucial in the timely detection and isolation of infected individuals to prevent the virus spread. Another advantage is the low reagent consumption of digital microfluidic chips. Compared to traditional methods, these chips require smaller volumes of reagents, resulting in cost savings and reduced waste. Furthermore, digital microfluidic chips are portable and can be easily integrated into point-of-care testing devices. This enables testing to be conducted in remote or resource-limited areas, where access to complex laboratory equipment may be limited. Onsite testing reduces the time and cost associated with sample transportation. In conclusion, bioassay technologies based on digital microfluidic principles have the potential to significantly improve infectious disease detection and control. By enabling rapid, high-throughput, and portable testing, these technologies enhance our ability to contain the spread of infectious diseases and effectively manage public health outbreaks.

Funder

Natural Science Foundation of Jiangsu Province

Zhishan Young Scholar Foundation of Southeast University

Publisher

AIP Publishing

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