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荠蓝生殖组织在种子发育过程中的代谢协同作用。

Metabolic synergy in Camelina reproductive tissues for seed development.

机构信息

Donald Danforth Plant Science Center, St. Louis, MO, USA.

United States Department of Agriculture-Agricultural Research Service, Donald Danforth Plant Science Center, St. Louis, MO, USA.

出版信息

Sci Adv. 2022 Oct 28;8(43):eabo7683. doi: 10.1126/sciadv.abo7683.

Abstract

Photosynthesis in fruits is well documented, but its contribution to seed development and yield remains largely unquantified. In oilseeds, the pods are green and elevated with direct access to sunlight. With C labeling in planta and through an intact pod labeling system, a unique multi-tissue comprehensive flux model mechanistically described how pods assimilate up to one-half (33 to 45%) of seed carbon by proximal photosynthesis in . By capturing integrated tissue metabolism, the studies reveal the contribution of plant architecture beyond leaves, to enable seed filling and maximize the number of viable seeds. The latent capacity of the pod wall in the absence of leaves contributes approximately 79% of seed biomass, supporting greater seed sink capacity and higher theoretical yields that suggest an opportunity for crop productivity gains.

摘要

果实中的光合作用已有充分的记录,但它对种子发育和产量的贡献在很大程度上仍未被量化。在油料种子中,豆荚是绿色的,并且位置较高,可以直接接触阳光。通过在植物体内进行 C 标记和完整的豆荚标记系统,一个独特的多组织综合通量模型从机制上描述了豆荚如何通过近程光合作用同化高达一半(33%至 45%)的种子碳。通过捕获综合组织代谢,这些研究揭示了除叶片以外的植物结构对种子填充的贡献,以最大限度地提高有活力种子的数量。在没有叶片的情况下,豆荚壁的潜在能力大约贡献了种子生物量的 79%,支持更大的种子汇容量和更高的理论产量,这表明有机会提高作物的生产力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2a8/9616503/8691dfbfbcc3/sciadv.abo7683-f1.jpg

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