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Expression of Lamin A/C in early-stage breast cancer and its prognostic value.早期乳腺癌中核纤层蛋白 A/C 的表达及其预后价值。
Breast Cancer Res Treat. 2019 Apr;174(3):661-668. doi: 10.1007/s10549-018-05092-w. Epub 2019 Jan 4.
2
Doubled lifespan and patient-like pathologies in progeria mice fed high-fat diet.高脂肪饮食喂养的早衰症小鼠寿命延长且出现类似患者的病理特征。
Aging Cell. 2019 Feb;18(1):e12852. doi: 10.1111/acel.12852. Epub 2018 Dec 12.
3
Vitamin D pathway activation selectively deactivates signal transducer and activator of transcription (STAT) proteins and inflammatory cytokine production in natural killer leukemic large granular lymphocytes.维生素 D 通路激活选择性地使信号转导和转录激活因子(STAT)蛋白失活,并抑制自然杀伤白血病大颗粒淋巴细胞中炎症细胞因子的产生。
Cytokine. 2018 Nov;111:551-562. doi: 10.1016/j.cyto.2018.09.016. Epub 2018 Nov 17.
4
Effect of lamin-A expression on migration and nuclear stability of ovarian cancer cells.层粘连蛋白 A 表达对卵巢癌细胞迁移和核稳定性的影响。
Gynecol Oncol. 2019 Jan;152(1):166-176. doi: 10.1016/j.ygyno.2018.10.030. Epub 2018 Oct 29.
5
Linking cellular stress responses to systemic homeostasis.将细胞应激反应与全身内稳态联系起来。
Nat Rev Mol Cell Biol. 2018 Nov;19(11):731-745. doi: 10.1038/s41580-018-0068-0.
6
Complex effects of laminopathy mutations on nuclear structure and function.核纤层病突变对核结构和功能的复杂影响。
Clin Genet. 2019 Feb;95(2):199-209. doi: 10.1111/cge.13455. Epub 2018 Oct 23.
7
A Lamin-Binding Ligand Inhibits Homologous Recombination Repair of DNA Double-Strand Breaks.一种核纤层蛋白结合配体可抑制DNA双链断裂的同源重组修复。
ACS Cent Sci. 2018 Sep 26;4(9):1201-1210. doi: 10.1021/acscentsci.8b00379. Epub 2018 Sep 17.
8
Fibroblasts lacking nuclear lamins do not have nuclear blebs or protrusions but nevertheless have frequent nuclear membrane ruptures.缺乏核纤层的成纤维细胞没有核泡或突起,但仍然有频繁的核膜破裂。
Proc Natl Acad Sci U S A. 2018 Oct 2;115(40):10100-10105. doi: 10.1073/pnas.1812622115. Epub 2018 Sep 17.
9
Genomic instability and DNA replication defects in progeroid syndromes.早衰综合征中的基因组不稳定性和 DNA 复制缺陷。
Nucleus. 2018 Dec 31;9(1):368-379. doi: 10.1080/19491034.2018.1476793. Epub 2018 Jun 23.
10
RPA and RAD51: fork reversal, fork protection, and genome stability.RPA 和 RAD51:叉状逆转、叉状保护和基因组稳定性。
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早衰症中基因组不稳定性和对自身 DNA 的固有免疫反应。

Genomic instability and innate immune responses to self-DNA in progeria.

机构信息

Edward A. Doisy Department of Biochemistry and Molecular Biology, St Louis University School of Medicine, 1100 S Grand Ave, St. Louis, MO, 63104, USA.

出版信息

Geroscience. 2019 Jun;41(3):255-266. doi: 10.1007/s11357-019-00082-2. Epub 2019 Jul 6.

DOI:10.1007/s11357-019-00082-2
PMID:31280482
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6702534/
Abstract

In the last decade, we have seen increasing evidence of the importance of structural nuclear proteins such as lamins in nuclear architecture and compartmentalization of genome function and in the maintenance of mechanical stability and genome integrity. With over 400 mutations identified in the LMNA gene (encoding for A-type lamins) associated with more than ten distinct degenerative disorders, the role of lamins as genome caretakers and the contribution of lamins dysfunction to disease are unarguable. However, the molecular mechanisms whereby lamins mutations cause pathologies remain less understood. Here, we review pathways and mechanisms recently identified as playing a role in the pathophysiology of laminopathies, with special emphasis in Hutchinson Gilford Progeria Syndrome (HGPS). This devastating incurable accelerated aging disease is caused by a silent mutation in the LMNA gene that generates a truncated lamin A protein "progerin" that exerts profound cellular toxicity and organismal decline. Patients usually die in their teens due to cardiovascular complications such as myocardial infarction or stroke. To date, there are no efficient therapies that ameliorate disease progression, stressing the need to understand molecularly disease mechanisms that can be targeted therapeutically. We will summarize data supporting that replication stress is a major cause of genomic instability in laminopathies, which contributes to the activation of innate immune responses to self-DNA that in turn accelerate the aging process.

摘要

在过去的十年中,我们越来越多地认识到结构性核蛋白(如核纤层蛋白)在核结构和基因组功能分区、维持机械稳定性和基因组完整性方面的重要性。在与十多种不同退行性疾病相关的 LMNA 基因(编码 A 型核纤层蛋白)中已发现超过 400 种突变,核纤层蛋白作为基因组守护者的作用以及核纤层蛋白功能障碍对疾病的贡献是毋庸置疑的。然而,核纤层蛋白突变导致病理学的分子机制仍知之甚少。在这里,我们回顾了最近被确定在核纤层蛋白病的病理生理学中起作用的途径和机制,特别强调了亨廷顿病肌营养不良症(HGPS)。这种破坏性的不可治愈的加速衰老疾病是由 LMNA 基因中的沉默突变引起的,该突变产生了一种截断的核纤层蛋白“progerin”,它会产生严重的细胞毒性并导致机体衰退。患者通常因心肌梗塞或中风等心血管并发症在十几岁时死亡。迄今为止,尚无有效的疗法可以改善疾病进展,这强调了需要从分子上了解疾病机制,以便可以进行靶向治疗。我们将总结支持复制应激是核纤层蛋白病基因组不稳定性的主要原因的数据,这有助于激活针对自身 DNA 的先天免疫反应,从而加速衰老过程。