GroEL of Porphyromonas gingivalis-induced microRNAs accelerate tumor neovascularization by downregulating thrombomodulin expression in endothelial progenitor cells.

IF 2.8 3区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE Molecular Oral Microbiology Pub Date : 2024-04-01 Epub Date: 2023-05-15 DOI:10.1111/omi.12415
Feng-Yen Lin, Yi-Ting Tsai, Chun-Yao Huang, Ze-Hao Lai, Chien-Sung Tsai, Chun-Ming Shih, Cheng-Yen Lin, Yi-Wen Lin
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Abstract

We found that GroEL in Porphyromonas gingivalis accelerated tumor growth and increased mortality in tumor-bearing mice; GroEL promoted proangiogenic function, which may be the reason for promoting tumor growth. To understand the regulatory mechanisms by which GroEL increases the proangiogenic function of endothelial progenitor cells (EPCs), we explored in this study. In EPCs, MTT assay, wound-healing assay, and tube formation assay were performed to analyze its activity. Western blot and immunoprecipitation were used to study the protein expression along with next-generation sequencing for miRNA expression. Finally, a murine tumorigenesis animal model was used to confirm the results of in vitro. The results indicated that thrombomodulin (TM) direct interacts with PI3 K/Akt to inhibit the activation of signaling pathways. When the expression of TM is decreased by GroEL stimulation, molecules in the PI3 K/Akt signaling axis are released and activated, resulting in increased migration and tube formation of EPCs. In addition, GroEL inhibits TM mRNA expression by activating miR-1248, miR-1291, and miR-5701. Losing the functions of miR-1248, miR-1291, and miR-5701 can effectively alleviate the GroEL-induced decrease in TM protein levels and inhibit the proangiogenic abilities of EPCs. These results were also confirmed in animal experiments. In conclusion, the intracellular domain of the TM of EPCs plays a negative regulatory role in the proangiogenic capabilities of EPCs, mainly through direct interaction between TM and PI3 K/Akt to inhibit the activation of signaling pathways. The effects of GroEL on tumor growth can be reduced by inhibiting the proangiogenic properties of EPCs through the inhibition of the expression of specific miRNAs.

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牙龈卟啉菌诱导的微RNA的GroEL通过下调内皮祖细胞中血栓调节蛋白的表达加速肿瘤新生血管的形成。
我们发现牙龈卟啉单胞菌中的GroEL加速了肿瘤的生长并增加了肿瘤小鼠的死亡率;GroEL促进了促血管生成功能,这可能是促进肿瘤生长的原因。为了了解 GroEL 增加内皮祖细胞(EPCs)促血管生成功能的调控机制,我们在本研究中进行了探索。研究人员通过 MTT 试验、伤口愈合试验和管形成试验来分析 GroEL 在 EPCs 中的活性。研究人员使用 Western 印迹和免疫沉淀技术研究 miRNA 蛋白表达,并使用新一代测序技术研究 miRNA 表达。最后,使用小鼠肿瘤发生动物模型来证实体外实验的结果。结果表明,血栓调节蛋白(TM)直接与 PI3 K/Akt 相互作用,抑制信号通路的激活。当 GroEL 刺激降低 TM 的表达时,PI3 K/Akt 信号轴上的分子就会被释放和激活,从而导致 EPCs 的迁移和管形成增加。此外,GroEL 通过激活 miR-1248、miR-1291 和 miR-5701 来抑制 TM mRNA 的表达。失去 miR-1248、miR-1291 和 miR-5701 的功能可有效缓解 GroEL 诱导的 TM 蛋白水平下降,抑制 EPCs 的促血管生成能力。这些结果在动物实验中也得到了证实。总之,EPCs的TM胞内结构域对EPCs的促血管生成能力起着负向调节作用,主要是通过TM与PI3 K/Akt的直接相互作用来抑制信号通路的激活。可以通过抑制特定 miRNAs 的表达来抑制 EPCs 的促血管生成特性,从而减少 GroEL 对肿瘤生长的影响。
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来源期刊
Molecular Oral Microbiology
Molecular Oral Microbiology DENTISTRY, ORAL SURGERY & MEDICINE-MICROBIOLOGY
CiteScore
6.50
自引率
5.40%
发文量
46
审稿时长
>12 weeks
期刊介绍: Molecular Oral Microbiology publishes high quality research papers and reviews on fundamental or applied molecular studies of microorganisms of the oral cavity and respiratory tract, host-microbe interactions, cellular microbiology, molecular ecology, and immunological studies of oral and respiratory tract infections. Papers describing work in virology, or in immunology unrelated to microbial colonization or infection, will not be acceptable. Studies of the prevalence of organisms or of antimicrobials agents also are not within the scope of the journal. The journal does not publish Short Communications or Letters to the Editor. Molecular Oral Microbiology is published bimonthly.
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