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NAL1形成一个分子笼来调节FZP相分离。

NAL1 forms a molecular cage to regulate FZP phase separation.

作者信息

Huang Ling-Yun, Wang Ting-Ting, Shi Peng-Tao, Song Ze-Yu, Chen Wei-Fei, Liu Na-Nv, Ai Xia, Li Hai-Hong, Hou Xi-Miao, Wang Li-Bing, Chen Kun-Ming, Rety Stephane, Xi Xu-Guang

机构信息

Department of Biotechnology, College of Life Sciences, Northwest A&F University, Yangling, Shaanxi 712100, China.

Department of Forestry, College of Forestry, Northwest A&F University, Yangling, Shaanxi 712100, China.

出版信息

Proc Natl Acad Sci U S A. 2025 Apr 15;122(15):e2419961122. doi: 10.1073/pnas.2419961122. Epub 2025 Apr 9.

Abstract

(), originally identified for its role in shaping leaf morphology, plant architecture, and various agronomic traits in rice, has remained enigmatic in terms of the molecular mechanisms governing its multifaceted functions. In this study, we present a comprehensive structural analysis of NAL1 proteins, shedding light on how NAL1 regulates the phase separation of its physiological substrate, FRIZZY PANICLE (FZP), a transcription factor. We determined that NAL1 assembles as a hexamer and forms a molecular cage with a wide central channel and three narrower lateral channels, which could discriminate its different substrates into the catalytic sites. Most notably, our investigation unveils that FZP readily forms molecular condensates via phase separation both in vitro and in vivo. NAL1 fine-tunes FZP condensation, maintaining optimal concentrations to enhance transcriptional activity. While phase separation roles include sequestration and suppression of transcriptional or enzymatic activity, our study highlights its context-dependent contribution to transcriptional regulation. NAL1 assumes a pivotal role in regulating the states of these molecular condensates through its proteolytic activity, subsequently enhancing transcriptional cascades. Our findings offer insights into comprehending the molecular mechanisms underpinning NAL1's diverse functions, with far-reaching implications for the field of plant biology. Additionally, these insights provide valuable guidance for the development of rational breeding strategies aimed at enhancing crop productivity.

摘要

()最初因其在塑造水稻叶片形态、植株结构和各种农艺性状方面的作用而被发现,但其多方面功能的分子机制仍不清楚。在本研究中,我们对NAL1蛋白进行了全面的结构分析,揭示了NAL1如何调节其生理底物——转录因子FRIZZY PANICLE(FZP)的相分离。我们确定NAL1组装成六聚体,形成一个具有宽中心通道和三个较窄侧通道的分子笼,该分子笼可将其不同底物区分到催化位点。最值得注意的是,我们的研究发现FZP在体外和体内都能通过相分离轻易形成分子凝聚物。NAL1微调FZP凝聚,维持最佳浓度以增强转录活性。虽然相分离的作用包括隔离和抑制转录或酶活性,但我们的研究强调了其对转录调控的背景依赖性贡献。NAL1通过其蛋白水解活性在调节这些分子凝聚物的状态中发挥关键作用,随后增强转录级联反应。我们的研究结果为理解NAL1多样功能的分子机制提供了见解,对植物生物学领域具有深远影响。此外,这些见解为旨在提高作物生产力的合理育种策略的制定提供了有价值的指导。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f83a/12012508/3cf005f6d5de/pnas.2419961122fig01.jpg

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