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通过调控藜麦(Chenopodium quinoa)的生殖分配能否提高产量潜力?来自多效唑抑制赤霉素合成的证据。

Can yield potential be increased by manipulation of reproductive partitioning in quinoa (Chenopodium quinoa)? Evidence from gibberellic acid synthesis inhibition using Paclobutrazol.

作者信息

G Mez M B, Castro P Aguirre, Mignone C, Bertero H D

机构信息

Cátedra de Producción Vegetal, Facultad de Agronomía, Universidad de Buenos Aires, Av. San Martín 4453 (C1417DSE), Buenos Aires, Argentina.

出版信息

Funct Plant Biol. 2011 Jun;38(5):420-430. doi: 10.1071/FP10168.

DOI:10.1071/FP10168
PMID:32480897
Abstract

One factor conditioning quinoa (Chenopodium quinoa Willd.) adoption is the need to increase yield. This paper analyses the effect that Paclobutrazol, a GA synthesis inhibitor, produces on yield, biomass, partitioning, seed number and weight in quinoa. Two experiments were conducted under field conditions: one compared a tall genotype (2-Want) with a shorter genotype (NL-6); while the other analysed seed yield and its components using the 2-Want genotype. As a consequence of Paclobutrazol application in the one-genotype experiment, plant height decreased from 197 to 138cm, yield increased from 517 to 791gm-2, seed numbers rose from 308000 to 432000seedsperm2, and the harvest index increased from 0.282 to 0.398gg-1. Biomass accumulation and seed weight were not affected. The leaf area index was reduced by Paclobutrazol but radiation interception was only marginally reduced; soil plant analysis development (SPAD) values and specific leaf weight were increased, but radiation use efficiency was not affected by treatments. Root biomass and lateral roots tended to increase under Paclobutrazol treatment. Genotypes were compared until the end of flowering and similar responses were obtained. Higher yields could be obtained in quinoa if reproductive partitioning was increased, turning it into a good candidate in the search for high quality protein sources.

摘要

制约藜麦(Chenopodium quinoa Willd.)推广的一个因素是需要提高产量。本文分析了赤霉素合成抑制剂多效唑对藜麦产量、生物量、分配、种子数量和重量的影响。在田间条件下进行了两项试验:一项试验比较了高秆基因型(2-Want)和矮秆基因型(NL-6);另一项试验使用2-Want基因型分析了种子产量及其构成因素。在单基因型试验中,由于施用了多效唑,株高从197厘米降至138厘米,产量从517克/平方米增至791克/平方米,种子数量从308000粒/平方米增至432000粒/平方米,收获指数从0.282增至0.398克/克。生物量积累和种子重量未受影响。多效唑降低了叶面积指数,但辐射截留仅略有减少;土壤植物分析发育(SPAD)值和比叶重增加,但辐射利用效率不受处理影响。在多效唑处理下,根生物量和侧根趋于增加。在开花结束前对基因型进行了比较,并获得了类似的反应。如果增加生殖分配,藜麦可以获得更高的产量,使其成为寻找优质蛋白质来源的良好候选作物。

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