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本文引用的文献

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A novel function of apolipoprotein E: upregulation of ATP-binding cassette transporter A1 expression.载脂蛋白 E 的新功能:上调 ATP 结合盒转运蛋白 A1 的表达。
PLoS One. 2011;6(7):e21453. doi: 10.1371/journal.pone.0021453. Epub 2011 Jul 11.
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Comparison of adipocyte-specific gene expression from WNIN/Ob mutant obese rats, lean control, and parental control.比较 WNIN/Ob 肥胖突变型大鼠、瘦体对照和亲本对照的脂肪细胞特异性基因表达。
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A human iPSC model of Hutchinson Gilford Progeria reveals vascular smooth muscle and mesenchymal stem cell defects.人源 iPSC 早衰症模型揭示血管平滑肌和间充质干细胞缺陷。
Cell Stem Cell. 2011 Jan 7;8(1):31-45. doi: 10.1016/j.stem.2010.12.002. Epub 2010 Dec 23.
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Immortalized keratinocytes derived from patients with epidermolytic ichthyosis reproduce the disease phenotype: a useful in vitro model for testing new treatments.从表皮松解性鱼鳞病患者中分离的永生化角质形成细胞再现疾病表型:一种用于测试新疗法的有用的体外模型。
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Dual function of MyD88 in RAS signaling and inflammation, leading to mouse and human cell transformation.MyD88 在 RAS 信号和炎症中的双重功能,导致小鼠和人类细胞转化。
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Functional coupling between the extracellular matrix and nuclear lamina by Wnt signaling in progeria.Wnt 信号在早衰症中通过细胞外基质和核层粘连蛋白的功能偶联。
Dev Cell. 2010 Sep 14;19(3):413-25. doi: 10.1016/j.devcel.2010.08.013.
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Prelamin A acts to accelerate smooth muscle cell senescence and is a novel biomarker of human vascular aging.原层蛋白 A 可加速平滑肌细胞衰老,是人类血管衰老的新型生物标志物。
Circulation. 2010 May 25;121(20):2200-10. doi: 10.1161/CIRCULATIONAHA.109.902056. Epub 2010 May 10.
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Repression of cellular retinoic acid-binding protein II during adipocyte differentiation.脂肪细胞分化过程中细胞视黄酸结合蛋白 II 的抑制。
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Key role of the ERK1/2 MAPK pathway in the transcriptional regulation of the Stearoyl-CoA Desaturase (SCD1) gene expression in response to leptin.ERK1/2 MAPK 通路在瘦素刺激下 Stearoyl-CoA 去饱和酶(SCD1)基因表达的转录调控中的关键作用。
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Adipocyte extracellular matrix composition, dynamics and role in obesity.脂肪细胞细胞外基质的组成、动态变化及其在肥胖中的作用。
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Sp1 转录因子与积累的前层粘连蛋白 a 的相互作用会损害人骨髓间充质干细胞中的脂肪谱系分化:Sp1 在脂质囊泡完整性中的重要作用。

Sp1 transcription factor interaction with accumulated prelamin a impairs adipose lineage differentiation in human mesenchymal stem cells: essential role of sp1 in the integrity of lipid vesicles.

机构信息

Stem Cells and Cell Therapy Laboratory, BioCruces, Hospital Universitario Cruces, Barakaldo, Spain.

出版信息

Stem Cells Transl Med. 2012 Apr;1(4):309-21. doi: 10.5966/sctm.2011-0010. Epub 2012 Apr 2.

DOI:10.5966/sctm.2011-0010
PMID:23197810
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3659691/
Abstract

Lamin A (LMNA)-linked lipodystrophies may be either genetic (associated with LMNA mutations) or acquired (associated with the use of human immunodeficiency virus protease inhibitors [PIs]), and in both cases they share clinical features such as anomalous distribution of body fat or generalized loss of adipose tissue, metabolic alterations, and early cardiovascular complications. Both LMNA-linked lipodystrophies are characterized by the accumulation of the lamin A precursor prelamin A. The pathological mechanism by which prelamin A accumulation induces the lipodystrophy associated phenotypes remains unclear. Since the affected tissues in these disorders are of mesenchymal origin, we have generated an LMNA-linked experimental model using human mesenchymal stem cells treated with a PI, which recapitulates the phenotypes observed in patient biopsies. This model has been demonstrated to be a useful tool to unravel the pathological mechanism of the LMNA-linked lipodystrophies, providing an ideal system to identify potential targets to generate new therapies for drug discovery screening. We report for the first time that impaired adipogenesis is a consequence of the interaction between accumulated prelamin A and Sp1 transcription factor, sequestration of which results in altered extracellular matrix gene expression. In fact, our study shows a novel, essential, and finely tuned role for Sp1 in adipose lineage differentiation in human mesenchymal stem cells. These findings define a new physiological experimental model to elucidate the pathological mechanisms LMNA-linked lipodystrophies, creating new opportunities for research and treatment not only of LMNA-linked lipodystrophies but also of other adipogenesis-associated metabolic diseases.

摘要

核纤层蛋白 A(LMNA)相关脂肪营养不良症可能是遗传性的(与 LMNA 突变相关),也可能是获得性的(与人类免疫缺陷病毒蛋白酶抑制剂 [PIs] 的使用相关),在这两种情况下,它们都具有类似的临床特征,如脂肪分布异常或全身脂肪组织丧失、代谢改变和早期心血管并发症。两种 LMNA 相关脂肪营养不良症的特征都是核纤层蛋白 A 前体 prelamin A 的积累。导致 prelamin A 积累诱导相关脂肪营养不良表型的病理机制尚不清楚。由于这些疾病的受影响组织来源于间充质,我们使用人类间充质干细胞和 PI 处理生成了一种 LMNA 相关的实验模型,该模型再现了患者活检中观察到的表型。该模型已被证明是揭示 LMNA 相关脂肪营养不良症病理机制的有用工具,为药物发现筛选提供了识别潜在靶标的理想系统。我们首次报道,积累的 prelamin A 与 Sp1 转录因子相互作用是脂肪生成受损的结果,这种相互作用导致细胞外基质基因表达改变。事实上,我们的研究表明 Sp1 在人类间充质干细胞脂肪谱系分化中具有新的、必需的和精细调节的作用。这些发现定义了一个新的生理实验模型,用于阐明 LMNA 相关脂肪营养不良症的病理机制,为研究和治疗不仅是 LMNA 相关脂肪营养不良症,而且是其他与脂肪生成相关的代谢疾病创造了新的机会。