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Tapetum Degeneration Retardation is Critical for Aliphatic Metabolism and Gene Regulation during Rice Pollen Development

机译:绒毡层退化迟缓对于水稻花粉发育过程中的脂肪代谢和基因调控至关重要。

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As a complex wall system in flowering plants, the pollen outer wall mainly contains aliphatic sporopollenin; however, the mechanism for synthesizing these lipidic precursors during pollen development remains less well understood. Here, we report on the function of the rice tapetum-expressing TDR (Tapetum Degeneration Retardation) gene in aliphatic metabolism and its regulatory role during rice pollen development. The observations of transmission electron microscopy (TEM) and scanning electron microscopy (SEM) analyses suggested that pollen wall formation was significantly altered in the tdr mutant. The contents of aliphatic compositions of anther were greatly changed in the tdr mutant revealed by GC-MS (gas chromatography-mass spectrometry) testing,particularly less accumulated in fatty acids, primary alcohols, alkanes and alkenes, and an abnormal increase in secondary alcohols with carbon lengths from C29 to C35 in tdr. Microarray data revealed that a group of genes putatively involved in lipid transport and metabolism were significantly altered in the tdr mutant, indicating the critical role of TDR in the formation of the pollen wall. Also, a wide range of genes (236 in total--154 up-regulated and 82 down-regulated) exhibited statistically significant expressional differences between wild-type and tdr. In addition to its function in promoting tapetum PCD, TDR possibly plays crucial regulatory roles in several basic biological processes during rice pollen development.
机译:作为开花植物的复杂壁系统,花粉外壁主要含有脂肪族孢粉。然而,在花粉发育过程中合成这些脂质前体的机制仍然知之甚少。在此,我们报道了水稻绒毡层表达TDR(塔形变性退化缓和)基因在脂肪代谢中的功能及其在水稻花粉发育过程中的调控作用。透射电子显微镜(TEM)和扫描电子显微镜(SEM)分析的观察结果表明,tdr突变体中的花粉壁形成明显改变。 GC-MS(气相色谱-质谱)测试表明,tdr突变体中花药的脂肪族成分含量发生了很大变化,特别是在脂肪酸,伯醇,烷烃和烯烃中的积累较少,而仲醇的异常增加碳长度从td的C29到C35。微阵列数据显示,tdr突变体中一组推测参与脂质转运和代谢的基因发生了显着改变,表明TDR在花粉壁形成中的关键作用。而且,各种各样的基因(总共236个-上调154个,下调82个)在野生型和tdr之间表现出统计学上的显着差异。 TDR除具有促进绒毡层PCD的功能外,还可能在水稻花粉发育过程中的几个基本生物学过程中发挥关键的调节作用。

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