DNA barcoding, an effective tool for species identification: a review
- PMID: 36308581
- DOI: 10.1007/s11033-022-08015-7
DNA barcoding, an effective tool for species identification: a review
Abstract
DNA barcoding is a powerful taxonomic tool to identify and discover species. DNA barcoding utilizes one or more standardized short DNA regions for taxon identification. With the emergence of new sequencing techniques, such as Next-generation sequencing (NGS), ONT MinION nanopore sequencing, and Pac Bio sequencing, DNA barcoding has become more accurate, fast, and reliable. Rapid species identification by DNA barcodes has been used in a variety of fields, including forensic science, control of the food supply chain, and disease understanding. The Consortium for Barcode of Life (CBOL) presents various working groups to identify the universal barcode gene, such as COI in metazoans; rbcL, matK, and ITS in plants; ITS in fungi; 16S rRNA gene in bacteria and archaea, and creating a reference DNA barcode library. In this article, an attempt has been made to analyze the various proposed DNA barcode for different organisms, strengths & limitations, recent advancements in DNA barcoding, and methods to speed up the DNA barcode reference library construction. This study concludes that constructing a reference library with high species coverage would be a major step toward identifying species by DNA barcodes. This can be achieved in a short period of time by using advanced sequencing and data analysis methods.
Keywords: Biodiversity; Consortium for barcode of life (CBOL); DNA barcoding; Next-generation sequencing (NGS); Oxford Nanopore Technologies (ONT)’s MinION™; PacBio sequencing.
© 2022. The Author(s), under exclusive licence to Springer Nature B.V.
References
-
- Feio MJ, Filipe AF, Garcia-Raventós A et al (2020) Advances in the use of molecular tools in ecological and biodiversity assessment of aquatic ecosystems. Avanços no uso de ferramentas moleculares na avaliação ecológica e biodiversidade dos ecossistemas aquáticos. Limnetica. https://doi.org/10.23818/limn.39.27 - DOI
-
- Schweiger AK, Cavender-Bares J, Townsend PA et al (2018) Plant spectral diversity integrates functional and phylogenetic components of biodiversity and predicts ecosystem function. Nat Ecol Evol 2:976–982. https://doi.org/10.1038/s41559-018-0551-1 - DOI
-
- Rico-Sánchez AE, Sundermann A, López-López E et al (2020) Biological diversity in protected areas: not yet known but already threatened. Glob Ecol Conserv 22:e01006. https://doi.org/10.1016/j.gecco.2020.e01006 - DOI
-
- Chantangsi C, Lynn DH, Brandl MT et al (2007) Barcoding ciliates: a comprehensive study of 75 isolates of the genus Tetrahymena. Int J Syst Evol Microbiol 57:2412–2423. https://doi.org/10.1099/ijs.0.64865-0 - DOI
-
- Park M-H, Jung J-H, Jo E et al (2019) Utility of mitochondrial CO1 sequences for species discrimination of Spirotrichea ciliates (Protozoa, Ciliophora). Mitochondrial DNA Part A 30:148–155. https://doi.org/10.1080/24701394.2018.1464563 - DOI
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