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利用基因编码的荧光共振能量转移传感器检测根中的脱落酸动态变化。

Abscisic acid dynamics in roots detected with genetically encoded FRET sensors.

作者信息

Jones Alexander M, Danielson Jonas Ah, Manojkumar Shruti N, Lanquar Viviane, Grossmann Guido, Frommer Wolf B

机构信息

Department of Plant Biology, Carnegie Institution for Science, Stanford, United States.

出版信息

Elife. 2014 Apr 15;3:e01741. doi: 10.7554/eLife.01741.

Abstract

Cytosolic hormone levels must be tightly controlled at the level of influx, efflux, synthesis, degradation and compartmentation. To determine ABA dynamics at the single cell level, FRET sensors (ABACUS) covering a range ∼0.2-800 µM were engineered using structure-guided design and a high-throughput screening platform. When expressed in yeast, ABACUS1 detected concentrative ABA uptake mediated by the AIT1/NRT1.2 transporter. Arabidopsis roots expressing ABACUS1-2µ (Kd∼2 µM) and ABACUS1-80µ (Kd∼80 µM) respond to perfusion with ABA in a concentration-dependent manner. The properties of the observed ABA accumulation in roots appear incompatible with the activity of known ABA transporters (AIT1, ABCG40). ABACUS reveals effects of external ABA on homeostasis, that is, ABA-triggered induction of ABA degradation, modification, or compartmentation. ABACUS can be used to study ABA responses in mutants and quantitatively monitor ABA translocation and regulation, and identify missing components. The sensor screening platform promises to enable rapid fine-tuning of the ABA sensors and engineering of plant and animal hormone sensors to advance our understanding of hormone signaling. DOI: http://dx.doi.org/10.7554/eLife.01741.001.

摘要

胞质激素水平必须在流入、流出、合成、降解和区室化水平上受到严格控制。为了在单细胞水平上确定脱落酸(ABA)的动态变化,利用结构导向设计和高通量筛选平台构建了覆盖约0.2 - 800µM范围的荧光共振能量转移(FRET)传感器(ABACUS)。当在酵母中表达时,ABACUS1检测到由AIT1/NRT1.2转运蛋白介导的ABA浓缩摄取。表达ABACUS1 - 2µ(解离常数Kd约为2µM)和ABACUS1 - 80µ(Kd约为80µM)的拟南芥根对ABA灌注呈浓度依赖性反应。在根中观察到的ABA积累特性似乎与已知的ABA转运蛋白(AIT1、ABCG40)的活性不相符。ABACUS揭示了外部ABA对稳态的影响,即ABA触发的ABA降解、修饰或区室化诱导。ABACUS可用于研究突变体中的ABA反应,定量监测ABA转运和调节,并识别缺失的成分。该传感器筛选平台有望实现对ABA传感器的快速微调以及动植物激素传感器的工程化,以增进我们对激素信号传导的理解。DOI: http://dx.doi.org/10.7554/eLife.01741.001

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/559a/3985517/cae4360f7c8c/elife01741f001.jpg

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