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Mapping Isoflavone QTL with Main Epistatic and QTL × Environment Effects in Recombinant Inbred Lines of Soybean

机译:大豆重组自交系异黄酮QTL与主要上位性和QTL×环境效应的作图

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摘要

Soybean (Glycine max (L.) Merr.) isoflavone is important for human health and plant defense system. To identify novel quantitative trait loci (QTL) and epistatic QTL underlying isoflavone content in soybean, F5:6, F5:7 and F5:8 populations of 130 recombinant inbred (RI) lines, derived from the cross of soybean cultivar ‘Zhong Dou 27′ (high isoflavone) and ‘Jiu Nong 20′ (low isoflavone), were analyzed with 95 new SSR markers. A new linkage map including 194 SSR markers and covering 2,312 cM with mean distance of about 12 cM between markers was constructed. Thirty four QTL for both individual and total seed isoflavone contents of soybean were identified. Six, seven, ten and eleven QTL were associated with daidzein (DZ), glycitein (GC), genistein (GT) and total isoflavone (TI), respectively. Of them 23 QTL were newly identified. The qTIF_1 between Satt423 and Satt569 shared the same marker Satt569 with qDZF_2, qGTF_1 and qTIF_2. The qGTD2_1 between Satt186 and Satt226 was detected in four environments and explained 3.41%-10.98% of the phenotypic variation. The qGTA2_1, overlapped with qGCA2_1 and detected in four environments, was close to the previously identified major QTL for GT, which were responsible for large a effects. QTL (qDZF_2, qGTF_1 and qTIF_2) between Satt144-Satt569 were either clustered or pleiotropic. The qGCM_1, qGTM_1 and qTIM_1 between Satt540-Sat_244 explained 2.02%–9.12% of the phenotypic variation over six environments. Moreover, the qGCE_1 overlapped with qGTE_1 and qTIE_1, the qTIH_2 overlapped with qGTH_1, qGCI_1 overlapped with qDZI_1, qTIL_1 overlapped with qGTL_1, and qTIO_1 overlapped with qGTO_1. In this study, some of unstable QTL were detected in different environments, which were due to weak expression of QTL, QTL by environment interaction in the opposite direction to a effects, and/or epistasis. The markers identified in multi-environments in this study could be applied in the selection of soybean cultivars for higher isoflavone content and in the map-based gene cloning.
机译:大豆(Glycine max(L.)Merr。)异黄酮对人体健康和植物防御系统很重要。为了鉴定大豆中异黄酮含量的新型定量性状位点(QTL)和上位QTL,从大豆品种'Zhong Dou 27的杂交品种中选出130个重组自交(RI)品系的F5:6,F5:7和F5:8种群使用95种新的SSR标记分析了``(高异黄酮)和'久农20'(低异黄酮)。构建了一个新的连锁图谱,包括194个SSR标记并覆盖了2,312 cM,标记之间的平均距离约为12 cM。确定了大豆个体异黄酮和总种子异黄酮含量的34个QTL。六个,七个,十个和十一个QTL分别与大豆苷元(DZ),糖蛋白(GC),染料木素(GT)和总异黄酮(TI)相关。其中新确定了23个QTL。 Satt423和Satt569之间的qTIF_1与qDZF_2,qGTF_1和qTIF_2共享了相同的标记Satt569。在四个环境中检测到Satt186和Satt226之间的qGTD2_1,并解释了表型变异的3.41%-10.98%。与qGCA2_1重叠并在四个环境中检测到的qGTA2_1与先前确定的GT主要QTL接近,后者是造成重大影响的原因。 Satt144-Satt569之间的QTL(qDZF_2,qGTF_1和qTIF_2)是聚类的或多效的。 Satt540-Sat_244之间的qGCM_1,qGTM_1和qTIM_1解释了在六个环境中表型变异的2.02%– 9.12%。此外,qGCE_1与qGTE_1和qTIE_1重叠,qTIH_2与qGTH_1重叠,qGCI_1与qDZI_1重叠,qTIL_1与qGTL_1重叠,而qTIO_1与qGTO_1重叠。在这项研究中,在不同的环境中检测到一些不稳定的QTL,这是由于QTL的弱表达所致,QTL是通过与作用和/或上位性相反的环境相互作用引起的。在这项研究中,在多环境中鉴定出的标记可用于选择大豆异黄酮含量较高的品种,以及基于图谱的基因克隆。

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