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乙烯生物合成基因CitACS4调控西瓜(Citrullus lanatus)的雌雄同株/雄型两性花现象。

The Ethylene Biosynthesis Gene CitACS4 Regulates Monoecy/Andromonoecy in Watermelon (Citrullus lanatus).

作者信息

Manzano Susana, Aguado Encarnación, Martínez Cecilia, Megías Zoraida, García Alicia, Jamilena Manuel

机构信息

Departamento de Biología y Geología, Agrifood Campus of International Excellence (ceiA3) and BITAL, Universidad de Almería, La Cañada de San Urbano s/n, 04120, Almería, Spain.

出版信息

PLoS One. 2016 May 5;11(5):e0154362. doi: 10.1371/journal.pone.0154362. eCollection 2016.

Abstract

Monoecious and andromonoecious cultivars of watermelon are characterised by the production of male and female flower or male and hermaphrodite flowers, respectively. The segregation analysis in the offspring of crosses between monoecious and andromonoecious lines has demonstrated that this trait is controlled by a single gene pair, being the monoecious allele M semi-dominant to the andromonoecious allele A. The two studied F1 hybrids (MA) had a predominantly monoecious phenotype since both produced not only female flowers, but also bisexual flowers with incomplete stamens, and hermaphrodite flowers with pollen. Given that in other cucurbit species andromonoecy is conferred by mutations in the ethylene biosynthesis genes CmACS7, CsACS2 and CpACS27A we have cloned and characterised CitACS4, the watermelon gene showing the highest similarity with the formers. CitACS4 encoded for a type ACS type III enzyme that is predominantly expressed in pistillate flowers of watermelon. In the andromonoecious line we have detected a missense mutation in a very conserved residue of CitACS4 (C364W) that cosegregates with the andromonoecious phenotype in two independent F2 populations, concomitantly with a reduction in ethylene production in the floral buds that will develop as hermaphrodite flowers. The gene does not however co-segregates with other sex expression traits regulated by ethylene in this species, including pistillate flowering transition and the number of pistillate flowers per plant. These data indicate that CitAC4 is likely to be involved in the biosynthesis of the ethylene required for stamen arrest during the development of female flowers. The C364W mutation would reduce the production of ethylene in pistillate floral buds, promoting the conversion of female into hermaphrodite flowers, and therefore of monoecy into andromonoecy.

摘要

西瓜的雌雄同株和雄花两性花同株品种分别以产生雄花和雌花或雄花和两性花为特征。对雌雄同株和雄花两性花同株品系杂交后代的分离分析表明,该性状由一对单基因控制,其中雌雄同株等位基因M对雄花两性花同株等位基因A呈半显性。所研究的两个F1杂种(MA)主要表现为雌雄同株表型,因为它们不仅都产生雌花,还产生雄蕊不完全的两性花以及有花粉的两性花。鉴于在其他葫芦科物种中,雄花两性花同株是由乙烯生物合成基因CmACS7、CsACS2和CpACS27A的突变导致的,我们克隆并鉴定了西瓜中与这些基因相似度最高的基因CitACS4。CitACS4编码一种III型ACS酶,主要在西瓜的雌花中表达。在雄花两性花同株品系中,我们在CitACS4一个非常保守的位点(C364W)检测到一个错义突变,该突变在两个独立的F2群体中与雄花两性花同株表型共分离,同时在将发育为两性花的花芽中乙烯产量降低。然而,该基因与该物种中由乙烯调控的其他性别表达性状,包括雌花开花转变和每株雌花数量,并不共分离。这些数据表明,CitAC4可能参与雌花发育过程中雄蕊停止发育所需乙烯的生物合成。C364W突变会降低雌花中乙烯的产量,促进雌花向两性花的转变,从而导致雌雄同株向雄花两性花同株的转变。

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