Department of Biosciences, Durham University, Durham, DH1 3LE, UK.
Instituto de Biología Molecular y Celular de Plantas (CSIC-UPV), Valencia, 46022, Spain.
Plant Cell. 2024 Sep 3;36(9):3131-3144. doi: 10.1093/plcell/koae192.
SUMO modification is part of the spectrum of Ubiquitin-like (UBL) systems that give rise to proteoform complexity through post-translational modifications (PTMs). Proteoforms are essential modifiers of cell signaling for plant adaptation to changing environments. Exploration of the evolutionary emergence of Ubiquitin-like (UBL) systems unveils their origin from prokaryotes, where it is linked to the mechanisms that enable sulfur uptake into biomolecules. We explore the emergence of the SUMO machinery across the plant lineage from single-cell to land plants. We reveal the evolutionary point at which plants acquired the ability to form SUMO chains through the emergence of SUMO E4 ligases, hinting at its role in facilitating multicellularity. Additionally, we explore the possible mechanism for the neofunctionalization of SUMO proteases through the fusion of conserved catalytic domains with divergent sequences. We highlight the pivotal role of SUMO proteases in plant development and adaptation, offering new insights into target specificity mechanisms of SUMO modification during plant evolution. Correlating the emergence of adaptive traits in the plant lineage with established experimental evidence for SUMO in developmental processes, we propose that SUMO modification has evolved to link developmental processes to adaptive functions in land plants.
SUMO 修饰是泛素样 (UBL) 系统的一部分,通过翻译后修饰 (PTMs) 产生蛋白质形式的复杂性。蛋白质形式是植物适应不断变化的环境的细胞信号的重要调节剂。探索泛素样 (UBL) 系统的进化起源揭示了它们起源于原核生物,在原核生物中,它与使硫进入生物分子的机制有关。我们探索了 SUMO 机制在单细胞到陆地植物的植物谱系中的出现。我们揭示了植物通过 SUMO E4 连接酶的出现获得形成 SUMO 链的能力的进化点,这暗示了它在促进多细胞性中的作用。此外,我们通过将保守的催化结构域与不同的序列融合来探索 SUMO 蛋白酶的新功能化的可能机制。我们强调了 SUMO 蛋白酶在植物发育和适应中的关键作用,为植物进化过程中 SUMO 修饰的靶标特异性机制提供了新的见解。我们将植物谱系中适应性特征的出现与 SUMO 在发育过程中的既定实验证据相关联,提出 SUMO 修饰已经进化为将发育过程与陆地植物的适应性功能联系起来。