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Hypoxia-dependent sequestration of an oxygen sensor by a widespread structural motif can shape the hypoxic response--a predictive kinetic model.

机译:通过广泛的结构基序对氧传感器进行缺氧依赖性隔离可以塑造缺氧反应-一种预测性动力学模型。

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摘要

BACKGROUND: The activity of the heterodimeric transcription factor hypoxia inducible factor (HIF) is regulated by the post-translational, oxygen-dependent hydroxylation of its α-subunit by members of the prolyl hydroxylase domain (PHD or EGLN)-family and by factor inhibiting HIF (FIH). PHD-dependent hydroxylation targets HIFα for rapid proteasomal degradation; FIH-catalysed asparaginyl-hydroxylation of the C-terminal transactivation domain (CAD) of HIFα suppresses the CAD-dependent subset of the extensive transcriptional responses induced by HIF. FIH can also hydroxylate ankyrin-repeat domain (ARD) proteins, a large group of proteins which are functionally unrelated but share common structural features. Competition by ARD proteins for FIH is hypothesised to affect FIH activity towards HIFα; however the extent of this competition and its effect on the HIF-dependent hypoxic response are unknown. RESULTS: To analyse if and in which way the FIH/ARD protein interaction affects HIF-activity, we created a rate equation model. Our model predicts that an oxygen-regulated sequestration of FIH by ARD proteins significantly shapes the input/output characteristics of the HIF system. The FIH/ARD protein interaction is predicted to create an oxygen threshold for HIFα CAD-hydroxylation and to significantly sharpen the signal/response curves, which not only focuses HIFα CAD-hydroxylation into a defined range of oxygen tensions, but also makes the response ultrasensitive to varying oxygen tensions. Our model further suggests that the hydroxylation status of the ARD protein pool can encode the strength and the duration of a hypoxic episode, which may allow cells to memorise these features for a certain time period after reoxygenation. CONCLUSIONS: The FIH/ARD protein interaction has the potential to contribute to oxygen-range finding, can sensitise the response to changes in oxygen levels, and can provide a memory of the strength and the duration of a hypoxic episode. These emergent properties are predicted to significantly shape the characteristics of HIF activity in animal cells. We argue that the FIH/ARD interaction should be taken into account in studies of the effect of pharmacological inhibition of the HIF-hydroxylases and propose that the interaction of a signalling sensor with a large group of proteins might be a general mechanism for the regulation of signalling pathways.
机译:背景:异二聚体转录因子低氧诱导因子(HIF)的活性受脯氨酰羟化酶结构域(PHD或EGLN)家族成员的翻译后,依赖于氧的α亚基羟基化的调节,并且受因子抑制HIF(FIH)。 PHD依赖的羟基化作用将HIFα靶向于蛋白酶体的快速降解; HIFα的C末端反式激活域(CAD)的FIH催化的天冬酰胺基羟基化抑制了HIF诱导的广泛转录反应的CAD依赖性子集。 FIH还可以使锚蛋白重复结构域(ARD)蛋白质羟化,这是一大组功能上不相关但具有共同结构特征的蛋白质。假设ARD蛋白竞争FIH会影响FIH对HIFα的活性。然而,这种竞争的程度及其对依赖HIF的低氧反应的影响尚不清楚。结果:为了分析FIH / ARD蛋白相互作用是否以及以何种方式影响HIF活性,我们创建了一个速率方程模型。我们的模型预测,ARD蛋白通过氧气调节FIH的螯合作用会显着影响HIF系统的输入/输出特性。预测FIH / ARD蛋白相互作用将为HIFαCAD羟基化创造一个氧阈值,并显着增强信号/响应曲线,这不仅将HIFαCAD羟基化集中在一个确定的氧张力范围内,而且使该反应超灵敏改变氧气的张力。我们的模型进一步表明,ARD蛋白质库的羟化状态可以编码低氧发作的强度和持续时间,这可以使细胞在复氧后的一定时间内记忆这些特征。结论:FIH / ARD蛋白相互作用可能有助于发现氧范围,可以使对氧水平变化的反应敏感,并可以记忆低氧发作的强度和持续时间。预计这些新兴性质将显着影响动物细胞中HIF活性的特征。我们认为FIH / ARD相互作用应在对HIF-羟基酶的药理学抑制作用的研究中予以考虑,并建议信号传感器与大量蛋白质的相互作用可能是调节HIF-羟化酶的一般机制。信号通路。

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