98%
921
2 minutes
20
Our findings shed light on the regulation of anthocyanin and proanthocyanidin biosynthesis in chickpea seed coats. Expression of R2R3-MYB transcription factors CaLAP1 and CaLAP2 enhanced the anthocyanins and proanthocyanidins content in chickpea. The seed coat color is a major economic trait in leguminous crop chickpea (Cicer arietinum). Anthocyanins and proanthocyanidins (PAs) are two classes of flavonoids that mainly contribute to the flower, seed coat and color of Desi chickpea cultivars. Throughout the land plant lineage, the accumulation of anthocyanins and PAs is regulated by MYB and bHLH transcription factors (TFs), which form an MBW (MYB, bHLH, and WD40) complex. Here, we report two R2R3-MYB TFs in chickpea belonging to the anthocyanin-specific subgroup-6, CaLAP1 (Legume Anthocyanin Production 1), and CaLAP2 (Legume Anthocyanin Production 2), which are mainly expressed in the flowers and developmental stages of the seeds. CaLAP1 and CaLAP2 interact with TT8-like CabHLH1 and WD40, forming the MBW complex, and bind to the promoter sequences of anthocyanin- and PA biosynthetic genes CaCHS6, CaDFR2, CaANS, and CaANR, leading to anthocyanins and PA accumulation in the seed coat of chickpea. Moreover, these CaLAPs partially complement the anthocyanin-deficient phenotype in the Arabidopsis thaliana sextuple mutant seedlings. Overexpression of CaLAPs in chickpea resulted in significantly higher expression of anthocyanin and PA biosynthetic genes leading to a darker seed coat color with higher accumulation of anthocyanin and PA. Our findings show that CaLAPs positively modulate anthocyanin and PA content in seed coats, which might influence plant development and resistance to various biotic and abiotic stresses.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1007/s00425-024-04470-7 | DOI Listing |
PLoS One
September 2025
Satellite Collections North, Genebank Department, Leibniz Institute of Plant Genetics and Crop Plant Research (IPK), Malchow/Poel, Germany.
Treatment of seeds with cold atmospheric pressure plasma (CAPP) is in its proof-of-concept phase with regard to its effect on germination and plant growth. To increase the germination of hardseeded red clover (Trifolium pratense L.), seeds are usually scarified, which is time-consuming and labour-intensive.
View Article and Find Full Text PDFFront Plant Sci
September 2025
College of Life Sciences, Engineering Research Center for High-Valued Utilization of Fruit Resources in Western China of Ministry of Education, Shaanxi Normal University, Xi'an, China.
Plant seeds have evolved diverse dormancy types and regulatory mechanisms to adapt to environmental conditions and seasonal changes. As a commonly used rootstock for cultivated pears, faces challenges in seedling production and large-scale cultivation due to limited understanding of seed dormancy mechanisms. In this study, we report that seeds exhibit non-deep physiological dormancy, with seed coats playing a pivotal regulatory role.
View Article and Find Full Text PDFPlant Physiol Biochem
September 2025
Co-Innovation Center for Sustainable Forestry in Southern China, College of Forestry and Grassland, Nanjing Forestry University, Nanjing, 210037, China. Electronic address:
Seeds of Sophora japonica in Nanjing during the recommended period typically exhibit permeable seed coats. It is imperative to comprehend the water absorption characteristics of the permeable seeds, as water uptake represents a critical step in seed germination. This study employed an integrated approach combining blocking experiments, scanning electron microscopy, staining tests, and magnetic resonance imaging to investigate water entry sites and movement patterns in permeable seeds.
View Article and Find Full Text PDFJ Agric Food Chem
September 2025
School of Food Science & Nutrition, University of Leeds, Leeds LS2 9JT, U.K.
This study evaluated the nutritional and antinutritional (ANFs) composition and protein profiles of different components of Ramon () seed, including the seed coat, fruit, and both roasted and green (unprocessed) seeds. Proximate composition, mineral content, ANFs quantification, amino acid profile, protein digestibility, SDS-PAGE, proteomics, and gluten ELISA were performed. Protein contents ranged from 9.
View Article and Find Full Text PDFFront Plant Sci
August 2025
London Research and Development Centre, Agriculture and Agri-Food Canada, London, ON, Canada.
Many market classes of common beans () have a significant reduction in crop value due to the postharvest darkening of the seed coat. Seed coat darkening is caused by an elevated accumulation and oxidation of proanthocyanidins (PAs). In common bean, the major color gene encodes for a bHLH protein with its allele controlling the postharvest slow darkening seed coat trait.
View Article and Find Full Text PDF