| Literature DB >> 35009042 |
Dmitry A Afonnikov1,2,3, Evgenii G Komyshev1,2,3, Vadim M Efimov1, Mikhail A Genaev1,2,3, Vasily S Koval1,3, Peter U Gierke4, Andreas Börner5.
Abstract
Seed storage is important to farmers, breeders and for germplasm preservation. During storage, seeds accumulate damage at the structural and metabolic level, which disrupt their function and reduce resistance to adverse external conditions. In this regard, issues related to seed aging prove to be relevant for maintaining the viability of genetic collections. We analyzed morphological characteristics of grains and their coat color for 44 recombinant inbred lines (RILs) of bread wheat grown in four different seasons, 2003, 2004, 2009 and 2014. Our investigations were performed in 2020. For 19 RILs from the same seasons germination was evaluated. Our results demonstrate that genotype significantly affects the variability of all seed traits, and the year of harvesting affects about 80% of them (including all the traits of shape and size). To identify the trend between changes in grain characteristics and harvesting year, we estimated correlation coefficients between them. No significant trend was detected for the grain shape/size traits, while 90% of the color traits demonstrated such a trend. The most significant negative correlations were found between the harvesting year and the traits of grain redness: the greater the storage time, the more intensive is red color component for the grains. At the same time, it was shown that grains of longer storage time (earlier harvesting year) have lighter coat. Analysis of linear correlations between germination of wheat seeds of different genotypes and harvesting years and their seed traits revealed a negative linear relationship between the red component of coat color and germination: the redder the grains, the lower their germination rate. The results obtained demonstrate manifestations of metabolic changes in the coat of grains associated with storage time and their relationship with a decrease of seed viability.Entities:
Keywords: germination; image analysis; seed aging; seed coat color; seed traits; wheat grains
Year: 2021 PMID: 35009042 PMCID: PMC8747681 DOI: 10.3390/plants11010035
Source DB: PubMed Journal: Plants (Basel) ISSN: 2223-7747
Figure 1Clustering of wheat grain traits based on the analysis of 44 RILs from ITMI population. Four clusters of traits are highlighted with different colors: large cluster of color traits (orange), seed shape traits (green), traits of seed size and Cb component of the YCrCb color space (red), rugosity (blue).
Figure 2RILs clustering diagram in the space of the grain traits. Three distinct clusters shown by different colors, orange, green and red.
Traits of grain color with the most pronounced correlation with the harvesting year (YearRank coding) and estimates of the Pearson correlation coefficients for them in the real sample (r) and their minimum (rmin) and maximum (rmax) values for the permutation and bootstrap tests.
| Trait | Permutation, | Permutation, | Bootstrap, | Bootstrap, | |
|---|---|---|---|---|---|
| HSV_mH | 0.511 | −0.051 | 0.052 | −0.051 | 0.067 |
| YCrCb_mCr | −0.509 | −0.052 | 0.058 | −0.048 | 0.058 |
| YCrCb_dCCr_2 | −0.513 | −0.063 | 0.052 | −0.052 | 0.059 |
| Lab_dCa_2 | −0.599 | −0.063 | 0.051 | −0.055 | 0.048 |
| Lab_dCa_1 | −0.610 | −0.062 | 0.050 | −0.057 | 0.066 |
| Lab_ma | −0.639 | −0.067 | 0.058 | −0.056 | 0.056 |
Figure 3Bar plots for the distribution of the normalized HSV_mH (a), Lab_ma (b), HSV_mV (c) and sL (d) trait values (Y axis) in the seed samples from different harvesting years (X axis).
Figure 4Germination of plants in the ITMI population for 19 genotypes evaluated in 2003, 2004, 2009, and 2014. (a) Germination values (Y-axis) for genotypes (X-axis) in different years shown by lines of different colors (see legend at bottom of graph); (b) Distribution of germination values after subtracting the annual average.
Grain color traits with the most pronounced correlation with germination values, estimates of the Pearson correlation coefficients for them in the real sample (r) and their minimum (rmin) and maximum (rmax) values for the permutation and bootstrap tests.
| Trait | Permutation, | Permutation, | Bootstrap, | Bootstrap, | |
|---|---|---|---|---|---|
| HSV_mH | 0.164 | −0.088 | 0.080 | −0.082 | 0.089 |
| YCrCb_dCCr_1 | −0.177 | −0.077 | 0.100 | −0.088 | 0.104 |
| YCrCb_dCCr_2 | −0.190 | −0.082 | 0.096 | −0.088 | 0.095 |
| YCrCb_mCr | −0.197 | −0.084 | 0.094 | −0.077 | 0.104 |
| Lab_dCa_1 | −0.201 | −0.100 | 0.124 | −0.083 | 0.090 |
| Lab_dCa_2 | −0.224 | −0.101 | 0.096 | −0.088 | 0.091 |
| Lab_ma | −0.235 | −0.100 | 0.083 | −0.086 | 0.114 |
Figure 5Scatter diagrams for germination values (X axis) and grain color traits (Y axis) of the RIL seeds (dots correspond to seeds): (a) Lab_ma, (b) YCrCb_mCr, (c) HSV_mH. Ellipsoids are shown at the 95% significance level.
Figure 6Image of grains of the ITMI_110 RIL.