Liu Xinyuan, Wang Zhaoqiang, Wang Lili, Cheng Yukun, Bai Bin, Geng Hongwei, Ma Mengyao
High Quality Special Wheat Crop Engineering Technology Research Center of Xinjiang Agricultural University, Urumqi, China.
Joint International Research Laboratory of Crop Biological Breeding along the Silk Road Economic Belt, Urumqi, China.
Plant Genome. 2025 Sep;18(3):e70103. doi: 10.1002/tpg2.70103.
Peroxidase (POD) is one of the key factors affecting the wheat flour quality. Characterization and development of functional markers, as well as expression analysis of POD genes, will help in breeding wheat cultivars and advanced lines with better flour quality. Here, we cloned a POD gene, TaPod-A3, on chromosome 7AL and developed its functional marker in common wheat (Triticum aestivum L). Based on single nucleotide polymorphisms (SNPs) and Indel between TaPod-A3 allele sequences, functional markers POD-7A1, POD-7A2, and POD-7A3 were developed, amplifying 216, 882, and 156 bp fragments in wheat cultivars and advanced lines with lower, middle, and higher POD activities, respectively. The analysis of variance of 228 wheat cultivars and advanced lines showed that the mean POD activity (668.6 U min g) of 113 wheat cultivars and advanced lines supplemented with TaPod-A3a was lower than 17 wheat cultivars and advanced lines supplemented with TaPod-A3b (679.7 U min g) and the 98 wheat cultivars and advanced lines supplemented with TaPod-A3c (731.2 U min g). A total of 228 wheat cultivars and advanced lines were found using the functional markers of TaPod-A1, TaPod-D1, and TaPod-A3 genes located on chromosomes 3A, 7D, and 7AL of the functional markers developed in this study. The wheat cultivars and advanced lines with favorable allele combination of TaPod-A1b/TaPod-A3c/TaPod-D1b had higher POD activity (mean POD activity 780.6 U min g) than those with alleles TaPod-A1a/TaPod-A3a/TaPod-D1a (625.7 U min g). Six wheat cultivars and advanced lines with the same genotype and phenotype were selected for quantitative real-time polymerase chain reaction, and we found that the expression level of F49-70 in wheat cultivars and advanced lines with high POD activity was significantly higher than that in Wanmai 29 with low POD activity at each stage after flowering (p < 0.05). Based on correction analyses on the TaPod-A3 gene expression, the expression level was positively correlated with POD activity. This study provides useful information on the POD genes in bread wheat, insight into the TaPod-A3 gene structure and functional markers, as well as valuable resources for improving the quality of wheat flour.
过氧化物酶(POD)是影响小麦面粉品质的关键因素之一。功能标记的表征与开发以及POD基因的表达分析,将有助于培育面粉品质更佳的小麦品种和高级品系。在此,我们在7AL染色体上克隆了一个POD基因TaPod - A3,并在普通小麦(Triticum aestivum L)中开发了其功能标记。基于TaPod - A3等位基因序列之间的单核苷酸多态性(SNP)和插入缺失,开发了功能标记POD - 7A1、POD - 7A2和POD - 7A3,分别在POD活性较低、中等和较高的小麦品种和高级品系中扩增出216、882和156 bp的片段。对228个小麦品种和高级品系的方差分析表明,113个携带TaPod - A3a的小麦品种和高级品系的平均POD活性(668.6 U min g)低于17个携带TaPod - A3b的小麦品种和高级品系(679.7 U min g)以及98个携带TaPod - A3c的小麦品种和高级品系(731.2 U min g)。利用本研究开发的位于3A、7D和7AL染色体上的TaPod - A1、TaPod - D1和TaPod - A3基因的功能标记,共检测了228个小麦品种和高级品系。具有TaPod - A1b/TaPod - A3c/TaPod - D1b有利等位基因组合的小麦品种和高级品系的POD活性(平均POD活性780.6 U min g)高于具有TaPod - A1a/TaPod - A3a/TaPod - D1a等位基因的品种和品系(625.7 U min g)。选择了六个基因型和表型相同的小麦品种和高级品系进行定量实时聚合酶链反应,我们发现开花后各阶段POD活性高的小麦品种和高级品系中F49 - 70的表达水平显著高于POD活性低的皖麦29(p < 0.05)。基于对TaPod - A3基因表达的校正分析,表达水平与POD活性呈正相关。本研究为面包小麦中的POD基因提供了有用信息,深入了解了TaPod - A3基因结构和功能标记,以及为改善小麦面粉品质提供了宝贵资源。