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A Minimal Regulatory Network of Extrinsic and Intrinsic Factors Recovers Observed Patterns of CD4+ T Cell Differentiation and Plasticity

机译:一个最小的外在和内在因素的调节网络恢复CD4 + T细胞分化和可塑性的观察模式。

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摘要

CD4+ T cells orchestrate the adaptive immune response in vertebrates. While both experimental and modeling work has been conducted to understand the molecular genetic mechanisms involved in CD4+ T cell responses and fate attainment, the dynamic role of intrinsic (produced by CD4+ T lymphocytes) versus extrinsic (produced by other cells) components remains unclear, and the mechanistic and dynamic understanding of the plastic responses of these cells remains incomplete. In this work, we studied a regulatory network for the core transcription factors involved in CD4+ T cell-fate attainment. We first show that this core is not sufficient to recover common CD4+ T phenotypes. We thus postulate a minimal Boolean regulatory network model derived from a larger and more comprehensive network that is based on experimental data. The minimal network integrates transcriptional regulation, signaling pathways and the micro-environment. This network model recovers reported configurations of most of the characterized cell types (Th0, Th1, Th2, Th17, Tfh, Th9, iTreg, and Foxp3-independent T regulatory cells). This transcriptional-signaling regulatory network is robust and recovers mutant configurations that have been reported experimentally. Additionally, this model recovers many of the plasticity patterns documented for different T CD4+ cell types, as summarized in a cell-fate map. We tested the effects of various micro-environments and transient perturbations on such transitions among CD4+ T cell types. Interestingly, most cell-fate transitions were induced by transient activations, with the opposite behavior associated with transient inhibitions. Finally, we used a novel methodology was used to establish that T-bet, TGF-β and suppressors of cytokine signaling proteins are keys to recovering observed CD4+ T cell plastic responses. In conclusion, the observed CD4+ T cell-types and transition patterns emerge from the feedback between the intrinsic or intracellular regulatory core and the micro-environment. We discuss the broader use of this approach for other plastic systems and possible therapeutic interventions.
机译:CD4 + T细胞在脊椎动物中协调适应性免疫反应。尽管已经进行了实验和建模工作以了解涉及CD4 + T细胞应答和命运达成的分子遗传机制,但内在(由CD4 + T淋巴细胞产生)与外在(由其他细胞产生)成分之间的动态作用仍然不清楚,并且对这些细胞的塑性反应的力学和动态理解仍然不完整。在这项工作中,我们研究了涉及CD4 + T细胞命运获得的核心转录因子的调控网络。我们首先表明,该核心不足以恢复常见的CD4 + T表型。因此,我们假定了一个最小的布尔型监管网络模型,该模型是基于实验数据从一个更大,更全面的网络中获得的。最小的网络整合了转录调控,信号传导途径和微环境。该网络模型恢复了大多数特征细胞类型(Th0,Th1,Th2,Th17,Tfh,Th9,iTreg和Foxp3依赖性T调节细胞)的报告结构。此转录信号调节网络功能强大,可恢复通过实验报道的突变构型。此外,此模型可恢复针对不同T CD4 +细胞类型记录的许多可塑性模式,如细胞命运图所总结。我们测试了各种微环境和瞬时扰动对CD4 + T细胞类型之间这种过渡的影响。有趣的是,大多数细胞命运的转变是由瞬时激活诱导的,与瞬时抑制相关的相反行为。最后,我们使用了一种新颖的方法来确定T-bet,TGF-β和细胞因子信号蛋白的抑制剂是恢复观察到的CD4 + T细胞塑性反应的关键。总之,观察到的CD4 + T细胞类型和转变模式来自内在或细胞内调节核心与微环境之间的反馈。我们讨论了这种方法在其他塑料系统中的广泛使用以及可能的治疗干预。

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