Scientia Silvae Sinicae ›› 2026, Vol. 62 ›› Issue (4): 142-153.doi: 10.11707/j.1001-7488.LYKX20250553
• Research papers • Previous Articles Next Articles
Hui Yang1,Haiyan Zhao1,Lan Lou1,Lingfeng Zhang2,Zimiao Zhang1,Xiaoming Jia1,Quanxin Bi2,Libing Wang1,2,*(
)
Received:2025-09-08
Online:2026-04-15
Published:2026-04-11
Contact:
Libing Wang
E-mail:wlibing@nwsuaf.edu.cn
CLC Number:
Hui Yang,Haiyan Zhao,Lan Lou,Lingfeng Zhang,Zimiao Zhang,Xiaoming Jia,Quanxin Bi,Libing Wang. Paternal Identification and Genetic Diversity Analysis of Open-Pollinated Progeny of Xanthoceras sorbifolium[J]. Scientia Silvae Sinicae, 2026, 62(4): 142-153.
Table 1
Information of 17 pairs SSR primer"
| 引物名称 Primer name | 引物序列(5'–3') Primer sequence | 重复单元 Repeat motif | 片段大小 Fragment size/bp | 标记荧光 Fluorescent | 退火温度 Annealing temperature/℃ | |
| QXH049 | F: | CCCCAACAAATGGTAAGACG | CT | 196 | FAM | 55 |
| R: | GAATTTACAAGACAAGCAACAGC | |||||
| QXH083 | F: | AGCGGTCTCCTCCACTATCA | CT | 331 | HEX | 56 |
| R: | GAATTGAAGCGCAGAAGGA | |||||
| QXH177 | F: | TGTGGTGGTTTTGGCAGAC | AG | 208 | FAM | 55 |
| R: | CACCAAATAATGTCAATATCCTGT | |||||
| QXH262 | F: | TCTAACCGAAGAAGCCAACT | CT | 250 | HEX | 55 |
| R: | AGCGTGATATTCTGTTTCAACTAC | |||||
| QXH281 | F: | CACCGTAGTATCAACGCACAA | AG | 219 | FAM | 58 |
| R: | ATTTCCACTATTTCCCTCACATT | |||||
| QXH282 | F: | CCCAACAAATGGTAAGACGT | CT | 240 | HEX | 55 |
| R: | GTTTCATTTCATTTCCAGCATC | |||||
| QXH323 | F: | CACAACCCAAATCCCAGAAC | AG | 346 | HEX | 55 |
| R: | AACGACACGCACAATCATAAC | |||||
| QXR343 | F: | CACACTTTCTGAGTCCCGTAT | TG | 318 | FAM | 58 |
| R: | TGTTTCTCCTCTAATCCAAC | |||||
| QXH365 | F: | GTATATCTCTTTTACTCGTGAC | AC | 154 | FAM | 52 |
| R: | ATGATGGGTTGGGTTGAGTT | |||||
| QXH429 | F: | TGCGACAGCAACAGCATAA | AC | 146 | FAM | 54 |
| R: | TAAGGCAGCCAAAACATCAG | |||||
| QXH643 | F: | GCAGTTATGGAAAGGAATCA | CA,CT | 268 | HEX | 56 |
| R: | ATCAGTGTCGATTATTATCT | |||||
| QXHS371 | F: | ATTGGAGTGGCCTTCATACG | GT | 241 | FAM | 54 |
| R: | GCAAGCAGCTAAAGAAACAGC | |||||
| QBLB1 | F: | CACTCCTTGACCGTGTTCTT | GA | 252 | FAM | 54 |
| R: | ATTGGATGACTTTGGTTTCG | |||||
| QBLB4 | F: | ACCCCAAACCACTATCCAA | AG | 113 | FAM | 59 |
| R: | CCCTCCCTTTTCCTTTTACT | |||||
| QBLB65 | F: | TATCTCGCCACATCTGCC | TC | 355 | HEX | 53 |
| R: | CTGAAATGCCATTAACAAACAC | |||||
| QBLB72 | F: | CCGAACTCGTCAATGTCAAC | AT, AG | 352 | HEX | 52 |
| R: | CTCTGCCTCCATCGTCATC | |||||
| QBRB203 | F: | ACAAGTAGTGCTCATCGGTTTA | AT | 371 | HEX | 56 |
| R: | GAGTCTAATAGGTAAGGCTAGGAAC | |||||
Table 2
Paternity identification results of the free-pollinated offspring of yellowhorn at a 95% confidence level"
| 父本编号 Paternal parent number | 交配母本品种及其子代数 Mating female variety and number of sibs | 总子代数 Total number of sibs | 繁殖贡献率 Reproductive contribution rate (%) |
| 悄然薄壳Qiaoranboke | 中石4号(6)、中石9号(1)Zhongshi No.4(6), Zhongshi No.9(1) | 7 | 5.79 |
| 中石4号Zhongshi No.4 | 中石1号(1)Zhongshi No.1(1) | 1 | 0.83 |
| 6-161 | 中石9号(4)、悄然薄壳(1)Zhongshi No.9(4), Qiaoranboke(1) | 5 | 4.13 |
| 12-141 | 中石9号(5)Zhongshi No.9(5) | 5 | 4.13 |
| 12-150 | 中石4号(2)、中石9号(2)、中石1号(1) Zhongshi No.4(2), Zhongshi No.9(2), Zhongshi No.1(1) | 5 | 4.13 |
| 6-136 | 中石4号(2)、圆大硕种(2)Zhongshi No.4(2), Yuandashuozhong(2) | 4 | 3.31 |
| 12-128 | 中石9号(2)、圆大硕种(2)Zhongshi No.9(2), Yuandashuozhong(2) | 4 | 3.31 |
| 12-193 | 中石1号(2)、中石4号(1)、中石9号(1) Zhongshi No.1(2), Zhongshi No.4(1), Zhongshi No.9(1) | 4 | 3.31 |
| 6-107 | 悄然薄壳(3)Qiaoranboke(3) | 3 | 2.48 |
| 6-144 | 中石9号(2)、中石4号(1)Zhongshi No.9(2), Zhongshi No.4(1) | 3 | 2.48 |
| 6-150 | 中石1号(2)、圆大硕种(1)Zhongshi No.1(2), Yuandashuozhong(1) | 3 | 2.48 |
| 12-142 | 中石4号(2)、中石9号(1)Zhongshi No.4(2), Zhongshi No.9(1) | 3 | 2.48 |
| 其他(16)Others(16) | 2×16 | 1.65×16 | |
| 其他(42)Others(42) | 1×42 | 0.83×42 | |
| 合计Total | 121 | 100 |
Table 3
Analysis of paternal composition in five half-sib families of yellowhorn at 95% confidence level"
| 交配母本品种 Mating female variety | 父本编号及其子代数 Paternal parent number and number of sibs | 总子代数 Total number of sibs | 繁殖贡献率 Reproductive contribution rate (%) |
| 中石1号 Zhongshi No.1 | 中石4号(1)Zhongshi No.4(1) | 1 | 0.83 |
| 12-193(2), 6-135(2), 6-150(2) | 2×3 | 1.65×3 | |
| 其他(1)Others(1) | 1×12 | 0.83×12 | |
| 中石4号 Zhongshi No.4 | 悄然薄壳(6)Qiaoranboke(6) | 6 | 4.96 |
| 6-136(2), 12-142(2), 12-150(2) | 2×3 | 1.65×3 | |
| 其他(1)Others(1) | 1×14 | 0.83×14 | |
| 中石9号 Zhongshi No.9 | 悄然薄壳(1)Qiaoranboke(1) | 1 | 0.83 |
| 12-141(5) | 5 | 4.13 | |
| 6-161(4) | 4 | 3.31 | |
| 9-200(2), 11-161(2), 12-150(2), 12-128(2), 6-144(2) | 2×5 | 1.65×5 | |
| 其他(1)Others(1) | 1×19 | 0.83×19 | |
| 圆大硕种 Yuandashuozhong | 6-194(2), 6-100(2), 6-136(2), 12-128(2) | 2×4 | 1.65×4 |
| 其他(1)Others(1) | 1×13 | 0.83×13 | |
| 悄然薄壳 Qiaoranboke | 6-107(3) | 3 | 2.48 |
| 5-157(2) | 2 | 1.65 | |
| 其他(1)Others(1) | 1×11 | 0.83×11 | |
| 合计Total | 121 | 100 |
Table 4
Analysis on genetic diversity of open-pollinated progenies of yellowhorn"
| 位点 Locus | 个体数 Number of individuals | 等位基因数 Number of alleles (Na) | 有效等位基因数 Number of effective alleles (Ne) | Shannon’s 信息指数 Shannon’s information index (I) | 观测杂合度 Observed heterozygosity (Ho) | 期望杂合度 Expected heterozygosity (He) | 固定指数 Fixation index (F) | 多态信息含量 Polymorphic information content (PIC) |
| QXH049 | 394 | 5 | 3.987 | 1.469 | 0.789 | 0.749 | –0.054 | 0.708 |
| QXH643 | 393 | 14 | 2.623 | 1.438 | 0.740 | 0.619 | –0.197 | 0.591 |
| QXH177 | 393 | 9 | 3.180 | 1.332 | 0.700 | 0.686 | –0.021 | 0.628 |
| QBLB72 | 395 | 17 | 5.328 | 1.963 | 0.833 | 0.812 | –0.02 | 0.788 |
| QBLB1 | 393 | 7 | 1.926 | 0.917 | 0.272 | 0.481 | 0.434 | 0.434 |
| QXH282 | 394 | 5 | 3.957 | 1.464 | 0.787 | 0.747 | –0.053 | 0.705 |
| QBLB4 | 391 | 7 | 2.591 | 1.100 | 0.437 | 0.614 | 0.288 | 0.549 |
| QBRB203 | 395 | 5 | 2.860 | 1.172 | 0.689 | 0.650 | –0.059 | 0.584 |
| QXHS371 | 393 | 4 | 2.069 | 0.803 | 0.583 | 0.517 | –0.128 | 0.407 |
| QXH323 | 395 | 18 | 6.603 | 2.240 | 0.848 | 0.849 | 0.001 | 0.834 |
| QBLB65 | 395 | 11 | 3.460 | 1.598 | 0.762 | 0.711 | –0.072 | 0.673 |
| QXH429 | 394 | 3 | 1.873 | 0.705 | 0.439 | 0.466 | 0.058 | 0.369 |
| QXH262 | 395 | 13 | 2.765 | 1.405 | 0.671 | 0.638 | –0.051 | 0.599 |
| QXH365 | 390 | 5 | 2.728 | 1.156 | 0.518 | 0.633 | 0.182 | 0.567 |
| QXH281 | 394 | 3 | 2.126 | 0.811 | 0.652 | 0.530 | –0.232 | 0.419 |
| QXH083 | 391 | 16 | 3.338 | 1.681 | 0.708 | 0.700 | –0.011 | 0.673 |
| QXR343 | 393 | 6 | 2.166 | 0.978 | 0.094 | 0.538 | 0.825 | 0.463 |
| 平均值 Average | 8.706 | 3.152 | 1.308 | 0.619 | 0.644 | 0.052 | 0.588 |
Table 5
Analysis on genetic diversity of open-pollinated progenies population of yellowhorn"
群体 Group | 等位基因数 Number of alleles (Na) | 有效等位基因数 Number of effective alleles (Ne) | Shannon’s 信息指数 Shannon’s information index (I) | 观测杂合度 Observed heterozygosity (I) | 期望杂合度 Expected heterozygosity (He) | 固定指数 Fixation index (F) |
| 中石1号家系 ‘Zhongshi No.1’ family | 6.353 | 2.881 | 1.200 | 0.632 | 0.607 | –0.029 |
| 中石4号家系 ‘Zhongshi No.4’ family | 6.706 | 2.864 | 1.211 | 0.584 | 0.612 | 0.058 |
| 中石9号家系 ‘Zhongshi No.9’ family | 7.882 | 2.713 | 1.206 | 0.630 | 0.598 | –0.044 |
| 圆大硕种家系 ‘Yuandashuozhong’ family | 5.882 | 2.621 | 1.136 | 0.600 | 0.582 | –0.005 |
| 悄然薄壳家系 ‘Qiaoranboke’ family | 6.706 | 2.659 | 1.166 | 0.644 | 0.581 | –0.112 |
| 平均值 Average | 6.706 | 2.747 | 1.184 | 0.618 | 0.596 | –0.026 |
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