Department of Chemical and Biological Engineering, University at Buffalo, Buffalo, New York, USA.
Department of Biostatistics and Bioinformatics, Roswell Park Comprehensive Cancer Center, Buffalo, New York, USA.
FASEB J. 2019 Oct;33(10):10954-10965. doi: 10.1096/fj.201900377R. Epub 2019 Jul 9.
Collagen type III (COL3) is one of the 3 major collagens in the body, and loss of expression or mutations in the gene have been associated with the onset of vascular diseases such the Ehlers-Danlos syndrome. Previous work reported a significant reduction of COL3 in tissues such as skin and vessels with aging. In agreement, we found that COL3 was significantly reduced in senescent human mesenchymal stem cells and myofibroblasts derived from patients with Hutchinson-Gilford progeria syndrome, a premature aging syndrome. Most notably, we discovered that ectopic expression of the embryonic transcription factor Nanog homeobox (NANOG) restored COL3 expression by restoring the activity of the TGF-β pathway that was impaired in senescent cells. RNA sequencing analysis showed that genes associated with the activation of the TGF-β pathway were up-regulated, whereas negative regulators of the pathway were down-regulated upon NANOG expression. Chromatin immunoprecipitation sequencing and immunoprecipitation experiments revealed that NANOG bound to the mothers against decapentaplegic (SMAD)2 and SMAD3 promoters, in agreement with increased expression and phosphorylation levels of both proteins. Using chemical inhibition, short hairpin RNA knockdown, and gain of function approaches, we established that both SMAD2 and SMAD3 were necessary to mediate the effects of NANOG, but SMAD3 overexpression was also sufficient for COL3 production. In summary, NANOG restored production of COL3, which was impaired by cellular aging, suggesting novel strategies to restore the impaired extracellular matrix production and biomechanical function of aged tissues, with potential implications for regenerative medicine and anti-aging treatments.-Rong, N., Mistriotis, P., Wang, X., Tseropoulos, G., Rajabian, N., Zhang, Y., Wang, J., Liu, S., Andreadis, S. T. Restoring extracellular matrix synthesis in senescent stem cells.
III 型胶原(COL3)是体内 3 种主要胶原之一,该基因的表达缺失或突变与血管疾病的发生有关,如埃勒斯-当洛斯综合征。先前的工作报道了 COL3 在皮肤和血管等组织中的表达显著减少,这与衰老有关。我们发现,衰老的人骨髓间充质干细胞和源自 Hutchinson-Gilford 早衰综合征(一种早衰综合征)患者的肌成纤维细胞中 COL3 的表达显著降低,这与之前的研究结果一致。值得注意的是,我们发现胚胎转录因子 Nanog homeobox(NANOG)的异位表达通过恢复 TGF-β 途径的活性来恢复 COL3 的表达,而该途径在衰老细胞中受损。RNA 测序分析显示,与 TGF-β 途径激活相关的基因上调,而该途径的负调节剂下调。染色质免疫沉淀测序和免疫沉淀实验表明,NANOG 结合到 mothers against decapentaplegic(SMAD)2 和 SMAD3 启动子上,这与两种蛋白的表达和磷酸化水平增加一致。通过化学抑制、短发夹 RNA 敲低和功能获得方法,我们证实 SMAD2 和 SMAD3 都是介导 NANOG 作用所必需的,但 SMAD3 的过表达也足以产生 COL3。综上所述,NANOG 恢复了 COL3 的产生,而 COL3 的产生因细胞衰老而受损,这为恢复衰老组织受损的细胞外基质产生和生物力学功能提供了新的策略,这可能对再生医学和抗衰老治疗有意义。- Rong,N.,Mistriotis,P.,Wang,X.,Tseropoulos,G.,Rajabian,N.,Zhang,Y.,Wang,J.,Liu,S.,Andreadis,S. T. 在衰老的干细胞中恢复细胞外基质合成。