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A new discrete dynamic model of ABA-induced stomatal closure predicts key feedback loops

机译:ABA诱导的气孔关闭的新的离散动态模型预测关键的反馈回路

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摘要

Stomata, microscopic pores in leaf surfaces through which water loss and carbon dioxide uptake occur, are closed in response to drought by the phytohormone abscisic acid (ABA). This process is vital for drought tolerance and has been the topic of extensive experimental investigation in the last decades. Although a core signaling chain has been elucidated consisting of ABA binding to receptors, which alleviates negative regulation by protein phosphatases 2C (PP2Cs) of the protein kinase OPEN STOMATA 1 (OST1) and ultimately results in activation of anion channels, osmotic water loss, and stomatal closure, over 70 additional components have been identified, yet their relationships with each other and the core components are poorly elucidated. We integrated and processed hundreds of disparate observations regarding ABA signal transduction responses underlying stomatal closure into a network of 84 nodes and 156 edges and, as a result, established those relationships, including identification of a 36-node, strongly connected (feedback-rich) component as well as its in- and out-components. The network’s domination by a feedback-rich component may reflect a general feature of rapid signaling events. We developed a discrete dynamic model of this network and elucidated the effects of ABA plus knockout or constitutive activity of 79 nodes on both the outcome of the system (closure) and the status of all internal nodes. The model, with more than 1024 system states, is far from fully determined by the available data, yet model results agree with existing experiments in 82 cases and disagree in only 17 cases, a validation rate of 75%. Our results reveal nodes that could be engineered to impact stomatal closure in a controlled fashion and also provide over 140 novel predictions for which experimental data are currently lacking. Noting the paucity of wet-bench data regarding combinatorial effects of ABA and internal node activation, we experimentally confirmed several predictions of the model with regard to reactive oxygen species, cytosolic Ca2+ (Ca2+c), and heterotrimeric G-protein signaling. We analyzed dynamics-determining positive and negative feedback loops, thereby elucidating the attractor (dynamic behavior) repertoire of the system and the groups of nodes that determine each attractor. Based on this analysis, we predict the likely presence of a previously unrecognized feedback mechanism dependent on Ca2+c. This mechanism would provide model agreement with 10 additional experimental observations, for a validation rate of 85%. Our research underscores the importance of feedback regulation in generating robust and adaptable biological responses. The high validation rate of our model illustrates the advantages of discrete dynamic modeling for complex, nonlinear systems common in biology.
机译:气孔是叶片表面的微小孔,水分损失和二氧化碳的吸收通过气孔被关闭,这是由于植物激素脱落酸(ABA)对干旱造成的。该过程对于耐旱性至关重要,并且在过去的几十年中一直是广泛的实验研究的主题。尽管已经阐明了由ABA与受体结合组成的核心信号链,这减轻了蛋白激酶OPEN STOMATA 1(OST1)的蛋白磷酸酶2C(PP2Cs)的负调节作用,并最终导致了阴离子通道的活化,渗透水的损失和气孔闭合,已鉴定出70多种其他成分,但它们之间的相互关系以及核心成分尚不清楚。我们将有关气孔关闭的ABA信号转导反应的数百个不同观察结果整合并处理到一个由84个节点和156个边缘组成的网络中,并因此建立了这些关系,包括确定了36个节点,紧密连接(反馈丰富)组件及其内部和外部组件。网络由丰富反馈组成的主导地位可能反映了快速信令事件的一般特征。我们开发了此网络的离散动态模型,并阐明了ABA加敲除或79个节点的本构活动对系统结果(关闭)和所有内部节点状态的影响。系统状态超过10 24 的模型远未完全由可用数据确定,但模型结果与82个案例中的现有实验相符,而仅17个案例中存在异议,验证率为75 %。我们的结果揭示了可以工程化地以受控方式影响气孔闭合的节点,并且还提供了目前尚缺乏实验数据的140多种新颖预测。注意到关于ABA和内部节点激活的组合效应的湿台数据很少,我们通过实验证实了该模型对活性氧,胞质Ca 2 + (Ca 2 + c)和异三聚体G蛋白信号传导。我们分析了动力学确定的正反馈回路和负反馈回路,从而阐明了系统的吸引子(动态行为)库以及确定每个吸引子的节点组。基于此分析,我们预测了依赖Ca 2 + c的先前无法识别的反馈机制的可能存在。该机制将为模型协议提供10个额外的实验观察结果,验证率为85%。我们的研究强调了反馈调节在产生稳健和适应性生物学反应中的重要性。我们模型的高验证率说明了对生物学中常见的复杂非线性系统进行离散动态建模的优势。

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