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豌豆(Pisum sativum)种子中原花青素代谢的表征

Characterization of proanthocyanidin metabolism in pea (Pisum sativum) seeds.

作者信息

Ferraro Kiva, Jin Alena L, Nguyen Trinh-Don, Reinecke Dennis M, Ozga Jocelyn A, Ro Dae-Kyun

机构信息

Department of Biological Sciences, University of Calgary, 2500 University Dr. NW, Calgary, Alberta, Canada.

Plant BioSystems, Department of Agricultural, Food, and Nutritional Science, University of Alberta, Edmonton, Alberta, Canada.

出版信息

BMC Plant Biol. 2014 Sep 16;14:238. doi: 10.1186/s12870-014-0238-y.

Abstract

BACKGROUND

Proanthocyanidins (PAs) accumulate in the seeds, fruits and leaves of various plant species including the seed coats of pea (Pisum sativum), an important food crop. PAs have been implicated in human health, but molecular and biochemical characterization of pea PA biosynthesis has not been established to date, and detailed pea PA chemical composition has not been extensively studied.

RESULTS

PAs were localized to the ground parenchyma and epidermal cells of pea seed coats. Chemical analyses of PAs from seeds of three pea cultivars demonstrated cultivar variation in PA composition. 'Courier' and 'Solido' PAs were primarily prodelphinidin-types, whereas the PAs from 'LAN3017' were mainly the procyanidin-type. The mean degree of polymerization of 'LAN3017' PAs was also higher than those from 'Courier' and 'Solido'. Next-generation sequencing of 'Courier' seed coat cDNA produced a seed coat-specific transcriptome. Three cDNAs encoding anthocyanidin reductase (PsANR), leucoanthocyanidin reductase (PsLAR), and dihydroflavonol reductase (PsDFR) were isolated. PsANR and PsLAR transcripts were most abundant earlier in seed coat development. This was followed by maximum PA accumulation in the seed coat. Recombinant PsANR enzyme efficiently synthesized all three cis-flavan-3-ols (gallocatechin, catechin, and afzalechin) with satisfactory kinetic properties. The synthesis rate of trans-flavan-3-ol by co-incubation of PsLAR and PsDFR was comparable to cis-flavan-3-ol synthesis rate by PsANR. Despite the competent PsLAR activity in vitro, expression of PsLAR driven by the Arabidopsis ANR promoter in wild-type and anr knock-out Arabidopsis backgrounds did not result in PA synthesis.

CONCLUSION

Significant variation in seed coat PA composition was found within the pea cultivars, making pea an ideal system to explore PA biosynthesis. PsANR and PsLAR transcript profiles, PA localization, and PA accumulation patterns suggest that a pool of PA subunits are produced in specific seed coat cells early in development to be used as substrates for polymerization into PAs. Biochemically competent recombinant PsANR and PsLAR activities were consistent with the pea seed coat PA profile composed of both cis- and trans-flavan-3-ols. Since the expression of PsLAR in Arabidopsis did not alter the PA subunit profile (which is only comprised of cis-flavan-3-ols), it necessitates further investigation of in planta metabolic flux through PsLAR.

摘要

背景

原花青素(PAs)在包括重要粮食作物豌豆(Pisum sativum)种皮在内的多种植物的种子、果实和叶片中积累。PAs与人类健康有关,但豌豆PA生物合成的分子和生化特征迄今尚未明确,且豌豆PA的详细化学成分也未得到广泛研究。

结果

PAs定位于豌豆种皮的基本薄壁组织和表皮细胞中。对三个豌豆品种种子中的PAs进行化学分析,结果表明不同品种的PA组成存在差异。“Courier”和“Solido”的PAs主要是原飞燕草素类型,而“LAN3017”的PAs主要是原花青素类型。“LAN3017”的PAs平均聚合度也高于“Courier”和“Solido”的PAs。对“Courier”种皮cDNA进行的二代测序产生了种皮特异性转录组。分离出三个编码花青素还原酶(PsANR)、无色花青素还原酶(PsLAR)和二氢黄酮醇还原酶(PsDFR)的cDNA。PsANR和PsLAR转录本在种皮发育早期最为丰富。随后种皮中PA积累达到最大值。重组PsANR酶能高效合成所有三种顺式黄烷-3-醇(没食子儿茶素、儿茶素和阿夫儿茶素),并具有良好的动力学性质。PsLAR和PsDFR共孵育合成反式黄烷-3-醇的速率与PsANR合成顺式黄烷-3-醇的速率相当。尽管PsLAR在体外具有活性,但在野生型和anr基因敲除的拟南芥背景中,由拟南芥ANR启动子驱动的PsLAR表达并未导致PA的合成。

结论

在豌豆品种中发现种皮PA组成存在显著差异,这使得豌豆成为探索PA生物合成的理想系统。PsANR和PsLAR的转录谱、PA定位和PA积累模式表明,在发育早期特定的种皮细胞中会产生一批PA亚基,用作聚合形成PAs的底物。具有生化活性的重组PsANR和PsLAR活性与由顺式和反式黄烷-3-醇组成的豌豆种皮PA谱一致。由于PsLAR在拟南芥中的表达并未改变PA亚基谱(仅由顺式黄烷-3-醇组成),因此有必要进一步研究PsLAR在植物体内的代谢通量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1a23/4175280/58098dac8088/12870_2014_238_Fig1_HTML.jpg

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