Single-cell nucleic acid analysis aims at discovering the genetic differences between individual cells which is well known as the cellular heterogeneity. This technology facilitates cancer diagnosis, stem cell research, immune system analysis, and other life science applications. The conventional platforms for single-cell nucleic acid analysis more rely on manual operation or bulky devices. Recently, the emerging microfluidic technology has provided a perfect platform for single-cell nucleic acid analysis with the characteristic of accurate and automatic single-cell manipulation. In this review, we briefly summarized the procedure of single-cell nucleic acid analysis including single-cell isolation, single-cell lysis, nucleic acid amplification, and genetic analysis. And then, three representative microfluidic platforms for single-cell nucleic acid analysis are concluded as valve-, microwell-, and droplet-based platforms. Furthermore, we described the state-of-the-art integrated single-cell nucleic acid analysis systems based on the three platforms. Finally, the future development and challenges of microfluidics-based single-cell nucleic acid analysis are discussed as well.
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http://dx.doi.org/10.1007/s10404-021-02485-0 | DOI Listing |
Int J Biol Macromol
January 2025
Australasian Nanoscience and Nanotechnology Initiative (ANNI), Monash University LPO, Clayton, VIC 3168, Australia.
Nanotechnology involves the utilization of materials with exceptional properties at the nanoscale. Over the past few years, nanotechnologies have demonstrated significant potential in improving human health, particularly in medical treatments. The self-assembly characteristic of RNA is a highly effective method for designing and constructing nanostructures using a combination of biological, chemical, and physical techniques from different fields.
View Article and Find Full Text PDFRes Vet Sci
January 2025
Laboratory of Food and Environmental Hygiene, Joint Department of Veterinary Medicine, Gifu University, Gifu, Japan; Education and Research Center for Food Animal Health, Gifu University (GeFAH), Gifu, Japan; Joint Graduate School of Veterinary Sciences, Gifu University, Gifu, Japan. Electronic address:
Extracellular vesicles (EV), including exosomes or small EV (sEV) derived from biological fluids, such as milk, have garnered increasing interest in veterinary medicine because of their role in the pathophysiology and understanding of the disease status of the host. Bovine milk serves as a rich source of sEV, containing diverse cargoes of nucleic acids, proteins, and lipids, which play a critical role in intercellular communication and regulation of host status. Although it is more difficult to isolate and purify sEV from bovine milk than from human breast milk, challenges persist in enabling the enrichment and analysis of sEV populations, facilitating the elucidation of their functional roles and prognostic potential in cattle diseases.
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January 2025
College of Food Science and Technology, Hebei Agricultural University, Baoding, 071001, China; Hebei Provincial Key Laboratory of Analysis and Control for Zoonoses Microbial, Baoding, 071001, China; College of Life Sciences, Hebei Agricultural University, Baoding, 071001, China. Electronic address:
Zearalenone has a high level of detection and exceedance in cereals and by-products. Herein, an electrochemical aptasensor for ZEN detection was proposed. The selected aptamer, which has a high affinity for ZEN, serves as a molecular recognition element and effectively avoids interference from other toxins.
View Article and Find Full Text PDFTalanta
January 2025
School of Pharmaceutical Sciences, Nanjing Tech University, 30th Puzhu South Road, Nanjing, 211816, China. Electronic address:
Cancer is one of the most fatal diseases threatening public health globally, and tumor metastasis causes greater than 90 % of cancer-associated deaths, presenting huge challenges for detection and efficient treatment of various human cancers. Cancer stem cells (CSCs) are a rare population of cancer cells and increasing evidences indicated CSCs are the driving force of tumor metastasis. In this study, a p-AuNSs-assisted single-cell Raman spectra has been established, to extract and amplify of CSCs fingerprints with single cell sensitivity.
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January 2025
Department of Transfusion Medicine, West China Hospital of Sichuan University, Sichuan, 610041, PR China. Electronic address:
As a core genetic biomolecule in ecosystems, the metabolic processes of DNA, particularly DNA replication and damage repair, are regulated by Flap endonuclease 1 (FEN1). Abnormal expression and dysfunction of FEN1 may lead to genomic instability, which can induce a variety of chromosome-associated disorders, including tumours. FEN1 has emerged as a prominent tumour marker.
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