效应器
生物
计算生物学
受体
蛋白质工程
免疫受体
免疫系统
病菌
细胞生物学
富含亮氨酸重复
遗传学
生物化学
酶
作者
Juan Carlos De la Concepción,Marina Franceschetti,Dan MacLean,Ryohei Terauchi,Sophien Kamoun,Mark J. Banfield
出处
期刊:eLife
[eLife Sciences Publications Ltd]
日期:2019-09-19
卷期号:8
被引量:154
摘要
Plant nucleotide binding, leucine-rich repeat (NLR) receptors detect pathogen effectors and initiate an immune response. Since their discovery, NLRs have been the focus of protein engineering to improve disease resistance. However, this approach has proven challenging, in part due to their narrow response specificity. Previously, we revealed the structural basis of pathogen recognition by the integrated heavy metal associated (HMA) domain of the rice NLR Pikp (Maqbool et al., 2015). Here, we used structure-guided engineering to expand the response profile of Pikp to variants of the rice blast pathogen effector AVR-Pik. A mutation located within an effector-binding interface of the integrated Pikp-HMA domain increased the binding affinity for AVR-Pik variants in vitro and in vivo. This translates to an expanded cell-death response to AVR-Pik variants previously unrecognized by Pikp in planta. The structures of the engineered Pikp-HMA in complex with AVR-Pik variants revealed the mechanism of expanded recognition. These results provide a proof-of-concept that protein engineering can improve the utility of plant NLR receptors where direct interaction between effectors and NLRs is established, particularly where this interaction occurs via integrated domains.
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