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内毒素耐受过程中动态且有选择性的核小体重定位。

Dynamic and selective nucleosome repositioning during endotoxin tolerance.

机构信息

Department of Internal Medicine, Section of Molecular Medicine, Wake Forest University School of Medicine, Winston-Salem, North Carolina 27157, USA.

出版信息

J Biol Chem. 2010 Jan 8;285(2):1259-71. doi: 10.1074/jbc.M109.067330. Epub 2009 Nov 9.

Abstract

Sepsis is encoded by a sequel of transcription activation and repression events that initiate, sustain, and resolve severe systemic inflammation. The repression/silencing phase occurs in blood leukocytes of animals and humans following the initiation of systemic inflammation due to developing endotoxin tolerance. We previously reported that NF-kappaB transcription factor RelB and histone H3 lysine methyltransferase G9a directly interact to induce facultative heterochromatin assembly and regulate epigenetic silencing during endotoxin tolerance, which is a major feature of sepsis. The general objective of this study was to assess whether dynamic temporal, structural, and positional changes of nucleosomes influence the sepsis phenotype. We used the THP-1 sepsis cell model to isolate mononucleosomes by rapid cell permeabilization and digestion of chromatin with micrococcal nuclease and then compared tumor necrosis factor alpha (TNFalpha) proximal promoter nucleosome alignment in endotoxin-responsive and -tolerant phenotypes. We found differential and dynamic repositioning of nucleosomes from permissive to repressive locations during the activation and silencing phases of transcription reprogramming and identified the following mechanisms that may participate in the process. 1) Two proximal nucleosomes repositioned to expose the primary NF-kappaB DNA binding site in endotoxin-responsive cells, and this "promoter opening" required the ATP-independent chaperone NAP1 to replace the core histone H2A with the H2A.Z variant. 2) During RelB-dependent endotoxin tolerance, the two nucleosomes repositioned and masked the primary NF-kappaB DNA binding site. 3) Small interfering RNA-mediated inhibition of RelB expression prevented repressive nucleosome repositioning and tolerance induction, but the "open" promoter required endotoxin-induced NF-kappaB p65 promoter binding to initiate transcription, supporting the known requirement of p65 posttranslational modifications for transactivation. 4) Sustaining the permissive promoter state after RelB knockdown required ATP-dependent nucleosome remodeler BAF complex. Moreover, we found that forced expression of RelB in responsive cells induced repressive nucleosome positioning and silenced TNFalpha transcription, demonstrating the plasticity of nucleosome remodeling and its dependence on RelB. Our data suggest that nucleosome repositioning controls both the induction and epigenetic silencing phases of TNFalpha transcription associated with sepsis.

摘要

脓毒症是由一系列转录激活和抑制事件编码的,这些事件启动、维持和解决严重的全身炎症。在动物和人类的血液白细胞中,由于内毒素耐受的发展,全身炎症开始后会出现抑制/沉默阶段。我们之前报道过,NF-κB 转录因子 RelB 和组蛋白 H3 赖氨酸甲基转移酶 G9a 直接相互作用,诱导可变染色质组装,并在内毒素耐受过程中调节表观遗传沉默,这是脓毒症的一个主要特征。本研究的总体目标是评估核小体的动态时间、结构和位置变化是否会影响脓毒症表型。我们使用 THP-1 脓毒症细胞模型通过快速细胞渗透和微球菌核酸酶消化染色质来分离单核小体,然后比较内毒素反应和耐受表型中肿瘤坏死因子-α (TNFalpha) 近端启动子核小体排列。我们发现,在转录重编程的激活和沉默阶段,从许可位置到抑制位置的核小体的差异和动态重定位,并确定了可能参与该过程的以下机制。1)两个近端核小体重新定位,在内毒素反应性细胞中暴露主要的 NF-κB DNA 结合位点,这种“启动子开放”需要 ATP 非依赖性伴侣 NAP1 用 H2A.Z 变体取代核心组蛋白 H2A。2)在 RelB 依赖性内毒素耐受期间,两个核小体重新定位并掩盖了主要的 NF-κB DNA 结合位点。3)小干扰 RNA 介导的 RelB 表达抑制阻止了抑制性核小体重新定位和耐受诱导,但“开放”启动子需要内毒素诱导的 NF-κB p65 启动子结合来启动转录,支持 p65 翻译后修饰对于反式激活的已知要求。4)RelB 敲低后维持许可启动子状态需要 ATP 依赖性核小体重塑复合物。此外,我们发现,在反应性细胞中强制表达 RelB 诱导抑制性核小体定位并沉默 TNFalpha 转录,证明了核小体重塑的可塑性及其对 RelB 的依赖性。我们的数据表明,核小体重定位控制与脓毒症相关的 TNFalpha 转录的诱导和表观遗传沉默阶段。

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