Wang Diane R, Han Rongkui, Wolfrum Edward J, McCouch Susan R
Section of Plant Breeding and Genetics, School of Integrated Plant Sciences, Cornell University, Ithaca, NY, 14853-1901, USA.
Integrated Biorefinery Research Facility, National Renewable Energy Lab, Golden, CO, 80401, USA.
New Phytol. 2017 Jul;215(2):658-671. doi: 10.1111/nph.14614. Epub 2017 May 30.
Harnessing stem carbohydrate dynamics in grasses offers an opportunity to help meet future demands for plant-based food, fiber and fuel production, but requires a greater understanding of the genetic controls that govern the synthesis, interconversion and transport of such energy reserves. We map out a blueprint of the genetic architecture of rice (Oryza sativa) stem nonstructural carbohydrates (NSC) at two critical developmental time-points using a subpopulation-specific genome-wide association approach on two diverse germplasm panels followed by quantitative trait loci (QTL) mapping in a biparental population. Overall, 26 QTL are identified; three are detected in multiple panels and are associated with starch-at-maturity, sucrose-at-maturity and NSC-at-heading. They tag OsHXK6 (rice hexokinase), ISA2 (rice isoamylase) and a tandem array of sugar transporters. This study provides the foundation for more in-depth molecular investigation to validate candidate genes underlying rice stem NSC and informs future comparative studies in other agronomically vital grass species.
利用禾本科植物茎中碳水化合物的动态变化,为满足未来对植物性食物、纤维和燃料生产的需求提供了一个机会,但需要更深入地了解控制这些能量储备合成、相互转化和运输的遗传调控机制。我们使用亚群特异性全基因组关联方法,在两个不同的种质群体上,于两个关键发育时间点绘制了水稻(Oryza sativa)茎中非结构性碳水化合物(NSC)的遗传结构蓝图,随后在一个双亲群体中进行数量性状位点(QTL)定位。总体而言,共鉴定出26个QTL;其中3个在多个群体中均被检测到,且与成熟时的淀粉、成熟时的蔗糖和抽穗时的NSC相关。它们标记了OsHXK6(水稻己糖激酶)、ISA2(水稻异淀粉酶)和一个串联排列的糖转运蛋白。本研究为更深入的分子研究奠定了基础,以验证水稻茎NSC潜在的候选基因,并为未来在其他具有重要农艺价值的禾本科物种中开展比较研究提供参考。