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首页> 外文期刊>Seed Science Research >Soluble carbohydrates in legume seeds.
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Soluble carbohydrates in legume seeds.

机译:豆类种子中的可溶性碳水化合物。

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摘要

Mature dry legume seeds may contain up to 30 different soluble carbohydrates. Sucrose is a major component of the total soluble carbohydrates; others include the raffinose family oligosaccharides (RFOs; raffinose, stachyose, verbascose) that are mono-, di- and tri- alpha-galactosyl derivatives of sucrose. Other galactosides may include alpha-galactosyl derivatives of the cyclitols myo-inositol (galactinol, digalactosyl myo-inositol and trigalactosyl myo-inositol), D-pinitol (galactopinitol A, digalactosyl pinitol A (ciceritol) and trigalactosyl pinitol A; and galactopinitol B; higher galactosyl oligomers of galactopintiol B have rarely been detected), D-chiro-inositol (fagopyritol B1, fagopyritol B2 and fagopyritol B3) and D-ononitol (galactosyl D-ononitol and digalactosyl D-ononitol). Small amounts of myo-inositol, D-pinitol and D-chiro-inositol may also be present. Raffinose, stachyose and verbascose increase late in seed maturation, with 70% of RFOs accumulating after maximum seed dry weight is attained. RFOs are mostly degraded during germination. Sucrose, myo-inositol, D-pinitol and D-chiro-inositol are synthesized in maternal tissues of some legumes and are transported to and unloaded by seed coats into the apoplastic space surrounding developing seed embryos. Free cyclitols may be 60% of total soluble carbohydrates in leaves and 20% in seed coat cup exudates. Increasing the supply of free cyclitols may increase the accumulation of their respective a-galactosides in mature seeds. Seeds with reduced RFO accumulation, but with normal to elevated concentrations of galactosyl cyclitols (including fagopyritols), have normal field emergence and are also tolerant to imbibitional chilling under laboratory conditions. Molecular structures, biosynthetic pathways, accumulation of soluble carbohydrates in response to seed-expressed mutations and the physiological role of galactosides are reviewed
机译:成熟的干豆类种子可能包含多达30种不同的可溶性碳水化合物。蔗糖是总可溶性碳水化合物的主要成分。其他包括蔗糖的棉子糖家族寡糖(RFO;棉子糖,水苏糖,水苏糖),它们是蔗糖的单,二和三α-半乳糖基衍生物。其他半乳糖苷可包括环糖醇肌醇(半乳糖醇,二半乳糖基肌醇和三半乳糖基肌醇)的α-半乳糖基衍生物,D-松醇(半乳糖苷醇A,二半乳糖基松醇A(环己糖醇)和三半乳糖基松露醇A; B半乳糖苷)很少检测到半乳糖苷B的高级半乳糖基低聚物),D-手性肌醇(fagopyritol B1,fagopyritol B2和fagopyritol B3)和D-肌醇(半乳糖基D-ononitol和二半乳糖基D-ononitol)。也可能存在少量的肌醇,D-松醇和D-手性肌醇。种子成熟后期,棉子糖,水苏糖和马齿ose糖增加,达到最大种子干重后,RFO就会积累70%。 RFO在发芽过程中大多降解。蔗糖,肌醇,D-松醇和D-手性肌醇是在某些豆类的母体组织中合成的,被种皮运输并卸载到发育中的种子胚周围的质外性空间中。游离环糖醇可能占叶子中总可溶性碳水化合物的60%,而种皮杯渗出物中的总可溶性碳水化合物占20%。增加游离环糖醇的供应可能会增加其各自的α-半乳糖苷在成熟种子中的积累。 RFO积累减少,但半乳糖基环糖醇(包括前gogopyritols)浓度正常至升高的种子,具有正常的田间出苗率,并且在实验室条件下也能耐受随意低温。综述了分子结构,生物合成途径,响应种子表达突变的可溶性碳水化合物的积累以及半乳糖苷的生理作用

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