Designing Novel Strategies for Improving Old Legumes: An Overview from Common Vetch
Abstract
:1. Introduction
2. Taxonomy
3. A Historical Crop
4. Worldwide Vetch Cultivation
5. Nutritional and Pharmacological Properties
6. Environmental Benefits
Pollutant | Developed Assay | References |
---|---|---|
Cd | Cd tolerance. Oxidative damage accumulation. | [96] |
Cd and Zn | Zn and Cd accumulation in different tissues | [95] |
Zn | Zn tolerance | [98] |
Cu | Cu tolerance | [91,92] |
Salt | Tolerance to salt. Na and K accumulation | [84] |
Hg | Hg accumulation in different tissues | [94,100] |
Ni | Ni accumulation. Oxidative damage accumulation. | [97] |
Sulfosulfuron herbicide | Tolerance to sulfosulfuron | [85] |
Diesel fuel | Tolerance to diesel | [90] |
Phenol derivatives | Polychlorinated biphenyl (PCB) dissipation | [87] |
Phenolics | Tolerance to phenolics. Effects on biomass, nodulation and nitrogen fixation activity | [89] |
Mepiquat | Tolerance to mepiquat | [88] |
7. Pests and Diseases on Common Vetches
8. Germplasm Gene Banks and Common Vetch Genetic Diversity
9. Generating Genomic and Transcriptomic Tools
Type of Molecular Marker | Target | References |
---|---|---|
Retrotranspon-derived Sequence-Specific Amplified Polymorphism (SSAP) | Genomic sequences | [128] |
Amplified Fragment Length Polymorphism (AFLP) | Genomic sequences | [129] |
Seed reserve protein patterns | Protein | [130,132] |
Start Codon Targeted (SCoT) marker | cDNA sequences | [131] |
Inter Simple Sequence Repeats (ISSR) | Genomic sequences | [132] |
cDNA-SSR | cDNA sequences | [132,135,136,138,140,141,142] |
SNP | cDNA sequences | [132,139,142] |
double-digest restriction-site associated DNA sequencing (ddRAD-Seq) | Genomic sequences | [139] |
genomic-SSR | Genomic sequences | [140] |
9.1. Genomic Data and Transcriptomic Characterization of Some Traits and Developmental Stages
9.2. Genomic Data and Transcriptomic Characterization of Stress Responses
Process | Analyzed Plant Tissue | References |
---|---|---|
Flower Development | Floral organs (dorsal, lateral and ventral petals, sepals, stamens, carpels) leaf, and roots | [146] |
Flowering time | Aerial part at different stages | [145] |
Pod Shattering | Pod ventral sutures | [151] |
Drought Tolerance | Whole plant under different drought treatments | [137] |
Drought Stress | Root, stem, and leaf tissue under PEG treatments | [156] |
Drought Stress | Comparative leaf versus root | [155] |
Drought response and tolerance | Aerial part of tolerant and sensitive varieties | [142] |
Cold–drought combined stress | Comparative leaf versus root | [158] |
Drought Stress | Aerial part under PEG treatments | [157] |
Salinity Stress | Leaf versus root | [153] |
Hydrogen Cyanide Synthesis | Seed development | [53] |
10. Perspectives for Future Breeding Strategies
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
References
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Ramírez-Parra, E.; De la Rosa, L. Designing Novel Strategies for Improving Old Legumes: An Overview from Common Vetch. Plants 2023, 12, 1275. https://doi.org/10.3390/plants12061275
Ramírez-Parra E, De la Rosa L. Designing Novel Strategies for Improving Old Legumes: An Overview from Common Vetch. Plants. 2023; 12(6):1275. https://doi.org/10.3390/plants12061275
Chicago/Turabian StyleRamírez-Parra, Elena, and Lucía De la Rosa. 2023. "Designing Novel Strategies for Improving Old Legumes: An Overview from Common Vetch" Plants 12, no. 6: 1275. https://doi.org/10.3390/plants12061275
APA StyleRamírez-Parra, E., & De la Rosa, L. (2023). Designing Novel Strategies for Improving Old Legumes: An Overview from Common Vetch. Plants, 12(6), 1275. https://doi.org/10.3390/plants12061275