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Integration of Point-of-Care Technology in the Decoding Process of Single Nucleotide Polymorphism for Healthcare Application .

Title: Integration of Point-of-Care Technology in the Decoding Process of Single Nucleotide Polymorphism for Healthcare Application .
Authors: Trinh TND; Biotechnology Institute, Tra Vinh University, Vinh Long 98000, Vietnam.; Nguyen HA; Department of Molecular Biology, Institute of Food and Biotechnology, Can Tho University, Can Tho 95000, Vietnam.; Thi NPA; Department of Molecular Biology, Institute of Food and Biotechnology, Can Tho University, Can Tho 95000, Vietnam.; Ho TXT; Institute for Global Health Innovations, Duy Tan University, Da Nang 58000, Vietnam.; Trinh KTL; Advanced Materials Technology Institute, Vietnam National University Ho Chi Minh City, Ho Chi Minh City 70000, Vietnam.; Vietnam National University, Ho Chi Minh City 70000, Vietnam.; Tran NKS; NTT Hi-Tech Institute, Nguyen Tat Thanh University, District 09, Ho Chi Minh City 70000, Vietnam.; Nguyen Tat Thanh University Center for Hi-Tech Development, Saigon Hi-Tech Park, Ho Chi Minh City 70000, Vietnam.
Source: Micromachines [Micromachines (Basel)] 2025 Oct 13; Vol. 16 (10). Date of Electronic Publication: 2025 Oct 13.
Publication Type: Journal Article; Review
Language: English
Journal Info: Publisher: MDPI Country of Publication: Switzerland NLM ID: 101640903 Publication Model: Electronic Cited Medium: Print ISSN: 2072-666X (Print) Linking ISSN: 2072666X NLM ISO Abbreviation: Micromachines (Basel) Subsets: PubMed not MEDLINE
Imprint Name(s): Original Publication: Basel, Switzerland : MDPI, [2010]-
Abstract: Single nucleotide polymorphism (SNP) involves plenty of genetic disorders in organisms that can be passed down to the next generation or cause the stimulant signal that leads to early mortality in infants, especially within humankind. In medical field, real-time polymerase chain reaction (RT-PCR) is the most popular method for disease diagnosis. The investigation of genetic maps for the prediction of inherited illnesses needs the collaboration of sequencing technique and genome analysis. Although these methods are popular now, the cost for each test is quite high. Moreover, there is the requirement of extra machines and skillful technician or specialist level. Among these popular methods, the allele-specific polymerase chain reaction (AS-PCR), allele-specific loop isothermal mediated amplification (AS-LAMP), and allele-specific recombinase polymerase amplification (AS-RPA) are brought up for screening the nucleotide differences in the genetic sequence which will be noticed in this review as their availability, novelty, and potential for quick distinguishing of disease caused by SNP. Point-of-care testing (POCT) is a system built in a portable size but can perform the entire process of SNP recognition. Along with that, the POCT is intersected with the mentioned amplification methods and the genetic material preparation steps to become a united framework for higher efficiency and accuracy and lower cost. According to that, this review will focus on three common amplification techniques and their combination with POCT in the upstream and downstream process to genotype SNP related to human diseases.
References: Structure. 2016 Nov 1;24(11):1960-1971. (PMID: 27773688); Lab Chip. 2012 Dec 21;12(24):5146-54. (PMID: 23037501); Anal Chem. 2024 Jul 23;96(29):12093-12101. (PMID: 38975860); ACS Appl Mater Interfaces. 2022 Jun 22;14(24):27666-27674. (PMID: 35687651); Talanta. 2022 Jun 1;243:123393. (PMID: 35325745); Proc Natl Acad Sci U S A. 2004 Sep 28;101(39):14036-9. (PMID: 15381774); Nat Commun. 2024 Feb 24;15(1):1695. (PMID: 38402240); Lab Chip. 2019 Apr 9;19(8):1397-1405. (PMID: 30847458); Sci Rep. 2023 Dec 15;13(1):22488. (PMID: 38110478); Genomics. 2016 Jan;107(1):1-8. (PMID: 26554401); Analyst. 2019 Nov 18;144(23):7032-7040. (PMID: 31651914); Biosens Bioelectron. 2019 Jun 15;135:120-128. (PMID: 31004922); Lab Chip. 2025 Mar 11;25(6):1429-1438. (PMID: 39589462); Mol Med Rep. 2018 Apr;17(4):5734-5743. (PMID: 29436623); Lab Chip. 2016 Jan 7;16(1):132-41. (PMID: 26562630); Transfusion. 1990 Jul-Aug;30(6):491-4. (PMID: 1974089); Biosens Bioelectron. 2016 Jan 15;75:28-33. (PMID: 26283588); PLoS One. 2016 Mar 21;11(3):e0151654. (PMID: 26999437); ACS Sens. 2023 Dec 22;8(12):4478-4483. (PMID: 38010835); Anal Chem. 2021 Mar 23;93(11):4832-4840. (PMID: 33689292); Cell Rep Methods. 2022 Jun 13;2(7):100242. (PMID: 35880021); Anal Chem. 2022 Sep 27;94(38):13061-13067. (PMID: 36106671); Parasitol Int. 2017 Feb;66(1):964-971. (PMID: 27816495); PLoS One. 2022 Jun 16;17(6):e0270060. (PMID: 35709204); Lab Chip. 2021 May 4;21(9):1634-1660. (PMID: 33705507); Chem Commun (Camb). 2012 Jun 21;48(49):6160-2. (PMID: 22588332); Biosens Bioelectron. 2022 Feb 15;198:113802. (PMID: 34847361); BMC Med Genet. 2013 Feb 19;14:27. (PMID: 23419238); RSC Adv. 2021 Jan 27;11(9):4971-4982. (PMID: 35424451); Theor Appl Genet. 2006 Jan;112(2):358-65. (PMID: 16328233); Biosens Bioelectron. 2018 Sep 15;115:70-76. (PMID: 29803102); Proc Natl Acad Sci U S A. 1990 Jun;87(12):4580-4. (PMID: 1972276); Anal Chem. 2018 Oct 16;90(20):11972-11980. (PMID: 30226760); Sci Rep. 2021 Mar 11;11(1):5697. (PMID: 33707547); Anal Chem. 2014 Oct 21;86(20):10461-6. (PMID: 25242282); Microfluid Nanofluidics. 2022;26(9):69. (PMID: 35991118); JACS Au. 2024 Oct 25;4(12):4571-4591. (PMID: 39735918); Analyst. 2016 Dec 19;142(1):140-146. (PMID: 27917431); Int J Mol Sci. 2024 May 26;25(11):. (PMID: 38891961); Sci Rep. 2025 Apr 8;15(1):12025. (PMID: 40199931); J Hum Genet. 2007;52(11):871-880. (PMID: 17928948); Microsyst Nanoeng. 2024 May 20;10:62. (PMID: 38770032); Talanta. 2020 Dec 1;220:121432. (PMID: 32928436); Biosens Bioelectron. 2012 May 15;35(1):327-334. (PMID: 22464916); Nanoscale. 2020 Aug 7;12(29):15604-15610. (PMID: 32672272); J Lab Clin Med. 1989 Aug;114(2):105-13. (PMID: 2787825); Talanta. 2025 Mar 1;284:127193. (PMID: 39549643); Lab Chip. 2022 Aug 23;22(17):3229-3235. (PMID: 35861177); Commun Biol. 2021 Aug 19;4(1):988. (PMID: 34413466); Biotechniques. 2015 Feb 01;58(2):59-68. (PMID: 25652028); PLoS One. 2023 Aug 3;18(8):e0288906. (PMID: 37535577); Lab Chip. 2012 Jan 7;12(1):174-81. (PMID: 22068336); Analyst. 2012 Jul 7;137(13):3132-7. (PMID: 22624147); Nat Commun. 2022 Oct 29;13(1):6480. (PMID: 36309521); Anal Chim Acta. 2023 Dec 1;1283:341973. (PMID: 37977768); ACS Nano. 2019 Feb 26;13(2):1244-1252. (PMID: 30586498); Nat Protoc. 2021 Jun;16(6):3141-3162. (PMID: 33931780); Anal Chem. 2011 Dec 1;83(23):8945-52. (PMID: 21988285)
Contributed Indexing: Keywords: loop-mediated isothermal amplification; point-of-care testing; polymerase chain reaction; recombinase polymerase amplification; single nucleotide polymorphism
Entry Date(s): Date Created: 20251029 Date Completed: 20251029 Latest Revision: 20251101
Update Code: 20260130
PubMed Central ID: PMC12566449
DOI: 10.3390/mi16101159
PMID: 41156406
Database: MEDLINE

Journal Article; Review