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玉米的根角影响氮的捕获,并受钙调磷酸酶 B 样蛋白(CBL)-相互作用丝氨酸/苏氨酸蛋白激酶 15(ZmCIPK15)调控。

Root angle in maize influences nitrogen capture and is regulated by calcineurin B-like protein (CBL)-interacting serine/threonine-protein kinase 15 (ZmCIPK15).

机构信息

Department of Plant Science, The Pennsylvania State University, University Park, Pennsylvania, USA.

Department of Agronomy, University of Wisconsin, Madison, Wisconsin, USA.

出版信息

Plant Cell Environ. 2022 Mar;45(3):837-853. doi: 10.1111/pce.14135. Epub 2021 Jul 8.

Abstract

Crops with reduced nutrient and water requirements are urgently needed in global agriculture. Root growth angle plays an important role in nutrient and water acquisition. A maize diversity panel of 481 genotypes was screened for variation in root angle employing a high-throughput field phenotyping platform. Genome-wide association mapping identified several single nucleotide polymorphisms (SNPs) associated with root angle, including one located in the root expressed CBL-interacting serine/threonine-protein kinase 15 (ZmCIPK15) gene (LOC100285495). Reverse genetic studies validated the functional importance of ZmCIPK15, causing a approximately 10° change in root angle in specific nodal positions. A steeper root growth angle improved nitrogen capture in silico and in the field. OpenSimRoot simulations predicted at 40 days of growth that this change in angle would improve nitrogen uptake by 11% and plant biomass by 4% in low nitrogen conditions. In field studies under suboptimal N availability, the cipk15 mutant with steeper growth angles had 18% greater shoot biomass and 29% greater shoot nitrogen accumulation compared to the wild type after 70 days of growth. We propose that a steeper root growth angle modulated by ZmCIPK15 will facilitate efforts to develop new crop varieties with optimal root architecture for improved performance under edaphic stress.

摘要

在全球农业中,迫切需要具有减少养分和水分需求的作物。根生长角度在养分和水分获取中起着重要作用。使用高通量田间表型平台筛选了一个包含 481 个基因型的玉米多样性群体,以研究根角度的变化。全基因组关联图谱鉴定出与根角度相关的几个单核苷酸多态性(SNP),包括一个位于根表达的 CBL 相互作用丝氨酸/苏氨酸蛋白激酶 15(ZmCIPK15)基因(LOC100285495)中。反向遗传学研究验证了 ZmCIPK15 的功能重要性,导致特定节间位置的根角度发生约 10°的变化。更陡峭的根生长角度可在计算机模拟和田间实际情况中提高氮素的捕获能力。OpenSimRoot 模拟预测,在 40 天的生长过程中,这种角度的变化将在低氮条件下提高 11%的氮吸收和 4%的植物生物量。在氮素供应不足的田间研究中,与野生型相比,生长角度较陡的 cipk15 突变体在生长 70 天后,地上生物量增加了 18%,地上氮积累增加了 29%。我们提出,ZmCIPK15 调节的更陡峭的根生长角度将有助于开发具有最佳根系结构的新作物品种,以在土壤胁迫下提高性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9192/9544310/4a10d2f7f5c3/PCE-45-837-g008.jpg

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