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SCREAM 的二分体锚定通过将 MAP 激酶与 SPEECHLESS 偶联来强制启动气孔。

Bipartite anchoring of SCREAM enforces stomatal initiation by coupling MAP kinases to SPEECHLESS.

机构信息

Howard Hughes Medical Institute, University of Washington, Seattle, WA, USA.

Department of Biology, University of Washington, Seattle, WA, USA.

出版信息

Nat Plants. 2019 Jul;5(7):742-754. doi: 10.1038/s41477-019-0440-x. Epub 2019 Jun 24.

Abstract

Cell fate in eukaryotes is controlled by mitogen-activated protein kinases (MAPKs) that translate external cues into cellular responses. In plants, two MAPKs-MPK3 and MPK6-regulate diverse processes of development, environmental response and immunity. However, the mechanism that bridges these shared signalling components with a specific target remains unresolved. Focusing on the development of stomata-epidermal valves that are essential for gas exchange and transpiration-here, we report that the basic helix-loop-helix protein SCREAM functions as a scaffold that recruits MPK3/6 to downregulate SPEECHLESS, a transcription factor that initiates stomatal cell lineages. SCREAM directly binds to MPK3/6 through an evolutionarily conserved, yet unconventional, bipartite motif. Mutations in this motif abrogate association, phosphorylation and degradation of SCREAM, unmask hidden non-redundancies between MPK3 and MPK6, and result in uncontrolled stomatal differentiation. Structural analyses of MPK6 with a resolution of 2.75 Å showed bipartite binding of SCREAM to MPK6 that is distinct from an upstream MAPKK. Our findings elucidate, at the atomic resolution, the mechanism that directly links extrinsic signals to transcriptional reprogramming during the establishment of stomatal cell fate, and highlight a unique substrate-binding mode adopted by plant MAPKs.

摘要

真核细胞的命运由将外部信号转译为细胞反应的丝裂原活化蛋白激酶 (MAPKs) 控制。在植物中,两种 MAPK-MPK3 和 MPK6-调节发育、环境响应和免疫的多种过程。然而,将这些共享信号成分与特定靶标联系起来的机制仍未解决。本研究聚焦于气孔-表皮瓣的发育,其对于气体交换和蒸腾至关重要-在此,我们报告碱性螺旋-环-螺旋蛋白 SCREAM 作为支架,募集 MPK3/6 来下调 SPEECHLESS,后者是启动气孔细胞谱系的转录因子。SCREAM 通过一个进化上保守但非传统的双元件基序直接与 MPK3/6 结合。该基序中的突变会破坏 SCREAM 的关联、磷酸化和降解,揭示 MPK3 和 MPK6 之间隐藏的非冗余性,并导致不受控制的气孔分化。分辨率为 2.75Å 的 MPK6 的结构分析显示,SCREAM 与 MPK6 的双元件结合与上游 MAPKK 不同。我们的研究结果以原子分辨率阐明了在建立气孔细胞命运过程中,将外部信号直接连接到转录重编程的机制,并突出了植物 MAPK 采用的独特底物结合模式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7fff/6668613/b64855f4a621/nihms-1528613-f0001.jpg

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