Genomic Tools for Assessing Plant Diversity in the 2020s: From PCR-Based Markers to High-Throughput Sequencing and eDNA
Abstract
1. Overview
2. Introduction
Comparative Genome and Conservation
3. Theoretical Frameworks for Assessing Plant Genetic Diversity
3.1. Assessing Genetic Diversity General Aspect
3.2. Assessing Genetic Diversity in Autogamous Versus Allogamous Species
4. Current Genomic Approaches in Plant Conservation: Integrating Molecular Data for Conservation Insight
5. Molecular and Genomic Tools for Plant Conservation: Methods and Applications
5.1. Molecular Markers
5.1.1. Without Prior Sequence Information
5.1.2. With Prior Sequence Information
5.2. Next-Generation Sequencing (NGS)
5.3. Genotyping-by-Sequencing (GBS)
5.4. DNA Barcoding
5.5. Environmental DNA
5.6. Genome-Wide Association Studies (GWAS)
5.7. CRISPR-Cas9 Technology
5.8. Genomic Database
6. Gaps in Knowledge and Future Directions
7. Conclusions
Supplementary Materials
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| AFLP | amplified fragment length polymorphism |
| AP-PCR | arbitrarily primed PCR |
| BSA | Bulked Segregant Analysis |
| DAF | DNA amplification fingerprinting |
| DArT | diversity arrays technology |
| DSB | DNA break |
| eDNA | Environmental DNA |
| FST | Fixation Index |
| GBS | Genotyping-by-Sequencing |
| GWAS | genome-wide association studies |
| HDR | homology-directed repair |
| ISSR | inter-simple sequence repeat |
| LD | linkage disequilibrium |
| MAS | Marker-assisted selection |
| NGS | next-generation sequencing |
| NHEJ | non-homologous end joining |
| PAM o NGG | protospacer adjacent motif |
| PCA | principal component analysis |
| PCR | Polymerase Chain Reaction |
| RAPD | random amplified polymorphic DNA |
| RFLP | restriction fragment length polymorphism |
| sgRNA | single-guide RNA |
| SNP | single-nucleotide polymorphisms |
| SSR | simple sequence repeat |
| QTLs | quantitative trait loci |
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Pagnotta, M.A. Genomic Tools for Assessing Plant Diversity in the 2020s: From PCR-Based Markers to High-Throughput Sequencing and eDNA. Diversity 2026, 18, 208. https://doi.org/10.3390/d18040208
Pagnotta MA. Genomic Tools for Assessing Plant Diversity in the 2020s: From PCR-Based Markers to High-Throughput Sequencing and eDNA. Diversity. 2026; 18(4):208. https://doi.org/10.3390/d18040208
Chicago/Turabian StylePagnotta, Mario A. 2026. "Genomic Tools for Assessing Plant Diversity in the 2020s: From PCR-Based Markers to High-Throughput Sequencing and eDNA" Diversity 18, no. 4: 208. https://doi.org/10.3390/d18040208
APA StylePagnotta, M. A. (2026). Genomic Tools for Assessing Plant Diversity in the 2020s: From PCR-Based Markers to High-Throughput Sequencing and eDNA. Diversity, 18(4), 208. https://doi.org/10.3390/d18040208
