[Mettl3通过PI3K/AKT信号通路调控周细胞-肌成纤维细胞转分化的机制]。

Q3 Medicine
Y Deng, Y Wang, P P He, J Li, W W Liu, J S Yuan, H Y Zhao, Z J Liu, C Y Shen, B Shi
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The levels of m6A modifications and related enzymes (Mettl3, Mettl14), Wilms tumor 1-associated protein (WTAP), fat mass and obesity protein (FTO), ALKBH5, YTHDF1, YTHDF2, YTHDC1, YTHDC2, YTHDC3 were assessed by Dot blot, RT-qPCR and Western blot. Mettl3 expression was inhibited in cells using lentivirus-mediated Mettl3-shRNA transfection, creating sh-Mettl3 and Ang Ⅱ+sh-Mettl3 groups, while lentivirus empty vector transfection served as the negative control (Ang Ⅱ+sh-NC group). The impact of Ang Ⅱ on pericyte transdifferentiation was observed, and the expression of downstream phosphatidylinositol 3-kinase (PI3K)/AKT signaling pathway proteins, including PI3K, AKT, phosphorylated AKT at serine 473 (p-AKT (S473)), and phosphorylated AKT at threonine 308 (p-AKT (T308)), were examined. PI3K gene transcription was inhibited by co-culturing cells with actinomycin D, and the half-life of PI3K mRNA was calculated by measuring residual PI3K mRNA expression over different co-culture time. The reversibility of Mettl3 inhibition on Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation was assessed by adding the AKT activator SC79 to the Ang Ⅱ+sh-Mettl3 group. In animal experiments, mice were divided into these groups: sham group (administered 0.9% sterile saline), Ang Ⅱ group (infused with Ang Ⅱ solution), sh-Mettl3 group (injected with Mettl3 shRNA lentivirus solution), Ang Ⅱ+sh-Mettl3 group (infused with Ang Ⅱ solution and injected with Mettl3 shRNA lentivirus solution), and Ang Ⅱ+sh-Mettl3+SC79 group (administered Ang Ⅱ solution and Mettl3 shRNA lentivirus, with an additional injection of SC79). Each group consisted of six subject mice. Blood pressure was measured using the tail-cuff method before and after surgery, and serum creatinine, urea, and urinary albumin levels were determined 4 weeks post-surgery. Kidney tissues were collected at 28 days and stained using hematoxylin-eosin (HE) and Masson's trichrome to assess the extent of renal fibrosis. <b>Results:</b> Primary renal pericytes were successfully obtained by magnetic bead sorting, and intervened with 1×10<sup>6</sup> mmol/L Ang Ⅱ for 48 hours to induce pericyte-to-myofibroblast transdifferentiation. Dot blot results indicated higher m6A modification levels in the Ang Ⅱ group compared to the control group (<i>P</i><0.05). RT-qPCR and Western blot results showed upregulation of Mettl3 mRNA and protein levels in the Ang Ⅱ group compared to the control group (both <i>P</i><0.05). In the Ang Ⅱ+sh-Mettl3 group, Mettl3 protein expression was lower than that in the Ang Ⅱ group, with reduced expression levels of α-SMA, vimentin, desmin, fibroblast agonist protein (FAPa) and type Ⅰ collagen (all <i>P</i><0.05). Compared to the control group, PI3K mRNA expression level was elevated in the Ang Ⅱ group, along with increased p-AKT (S473) and p-AKT (T308) expressions. In the Ang Ⅱ+sh-Mettl3 group, PI3K mRNA expression and p-AKT (S473) and p-AKT (T308) levels were decreased (all <i>P</i><0.05). The half-life of PI3K mRNA was shorter in the Ang Ⅱ+sh-Mettl3 group than that in the Ang Ⅱ+sh-NC group (2.34 h vs. 3.42 h). The ameliorative effect of Mettl3 inhibition on Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation was reversible by SC79. Animal experiments showed higher blood pressure, serum creatinine, urea, and 24-hour urinary protein levels, and a larger fibrosis area in the Ang Ⅱ group compared to the sham group (all <i>P</i><0.05). The fibrosis area was smaller in the Ang Ⅱ+sh-Mettl3 group than that in the Ang Ⅱ group (<i>P</i><0.05), but increased again upon addition of SC79. <b>Conclusion:</b> Mettl3-mediated RNA m6A epigenetic regulation is involved in Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation and renal fibrosis, potentially by affecting PI3K stability and regulating the PI3K/AKT signaling pathway.</p>","PeriodicalId":38755,"journal":{"name":"中华心血管病杂志","volume":"52 7","pages":"814-826"},"PeriodicalIF":0.0000,"publicationDate":"2024-07-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"[Mechanisms by which Mettl3 regulates pericyte-myofibroblast transdifferentiation through PI3K/AKT signaling pathway].\",\"authors\":\"Y Deng, Y Wang, P P He, J Li, W W Liu, J S Yuan, H Y Zhao, Z J Liu, C Y Shen, B Shi\",\"doi\":\"10.3760/cma.j.cn112148-20230917-00168\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><p><b>Objective:</b> To investigate the role and underlying mechanisms of methyltransferase (Mettl) 3 in the process of angiotensin Ⅱ (Ang Ⅱ)-induced pericyte-to-myofibroblast transdifferentiation and renal fibrosis. <b>Methods:</b> C57BL/6J mice were used, in cell experiments, mouse renal pericytes were isolated and cultured using magnetic bead sorting. These pericytes were then induced to transdifferentiate into myofibroblasts with 1×10<sup>6</sup> mmol/L Ang Ⅱ, which was the Ang Ⅱ group, while pericytes cultured in normal conditions served as the control group. Successful transdifferentiation was verified by immunofluorescence staining, Western blotting, and real-time reverse transcription PCR (RT-qPCR) for α-smooth muscle actin (α-SMA). The levels of m6A modifications and related enzymes (Mettl3, Mettl14), Wilms tumor 1-associated protein (WTAP), fat mass and obesity protein (FTO), ALKBH5, YTHDF1, YTHDF2, YTHDC1, YTHDC2, YTHDC3 were assessed by Dot blot, RT-qPCR and Western blot. Mettl3 expression was inhibited in cells using lentivirus-mediated Mettl3-shRNA transfection, creating sh-Mettl3 and Ang Ⅱ+sh-Mettl3 groups, while lentivirus empty vector transfection served as the negative control (Ang Ⅱ+sh-NC group). The impact of Ang Ⅱ on pericyte transdifferentiation was observed, and the expression of downstream phosphatidylinositol 3-kinase (PI3K)/AKT signaling pathway proteins, including PI3K, AKT, phosphorylated AKT at serine 473 (p-AKT (S473)), and phosphorylated AKT at threonine 308 (p-AKT (T308)), were examined. PI3K gene transcription was inhibited by co-culturing cells with actinomycin D, and the half-life of PI3K mRNA was calculated by measuring residual PI3K mRNA expression over different co-culture time. The reversibility of Mettl3 inhibition on Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation was assessed by adding the AKT activator SC79 to the Ang Ⅱ+sh-Mettl3 group. In animal experiments, mice were divided into these groups: sham group (administered 0.9% sterile saline), Ang Ⅱ group (infused with Ang Ⅱ solution), sh-Mettl3 group (injected with Mettl3 shRNA lentivirus solution), Ang Ⅱ+sh-Mettl3 group (infused with Ang Ⅱ solution and injected with Mettl3 shRNA lentivirus solution), and Ang Ⅱ+sh-Mettl3+SC79 group (administered Ang Ⅱ solution and Mettl3 shRNA lentivirus, with an additional injection of SC79). Each group consisted of six subject mice. Blood pressure was measured using the tail-cuff method before and after surgery, and serum creatinine, urea, and urinary albumin levels were determined 4 weeks post-surgery. Kidney tissues were collected at 28 days and stained using hematoxylin-eosin (HE) and Masson's trichrome to assess the extent of renal fibrosis. <b>Results:</b> Primary renal pericytes were successfully obtained by magnetic bead sorting, and intervened with 1×10<sup>6</sup> mmol/L Ang Ⅱ for 48 hours to induce pericyte-to-myofibroblast transdifferentiation. Dot blot results indicated higher m6A modification levels in the Ang Ⅱ group compared to the control group (<i>P</i><0.05). RT-qPCR and Western blot results showed upregulation of Mettl3 mRNA and protein levels in the Ang Ⅱ group compared to the control group (both <i>P</i><0.05). In the Ang Ⅱ+sh-Mettl3 group, Mettl3 protein expression was lower than that in the Ang Ⅱ group, with reduced expression levels of α-SMA, vimentin, desmin, fibroblast agonist protein (FAPa) and type Ⅰ collagen (all <i>P</i><0.05). 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引用次数: 0

摘要

目的研究甲基转移酶(Mettl)3在血管紧张素Ⅱ(Ang Ⅱ)诱导的周细胞向肌成纤维细胞转分化和肾脏纤维化过程中的作用及其内在机制。研究方法使用 C57BL/6J 小鼠,在细胞实验中使用磁珠分选技术分离和培养小鼠肾周细胞。然后用 1×106 mmol/L Ang Ⅱ诱导这些周细胞转分化为肌成纤维细胞,即 Ang Ⅱ组,而在正常条件下培养的周细胞为对照组。通过免疫荧光染色、Western印迹和实时逆转录 PCR(RT-qPCR)检测α-平滑肌肌动蛋白(α-SMA)来验证转分化是否成功。通过Dot印迹、RT-qPCR和Western印迹评估了m6A修饰和相关酶(Mettl3、Mettl14)、Wilms肿瘤1相关蛋白(WTAP)、脂肪量和肥胖蛋白(FTO)、ALKBH5、YTHDF1、YTHDF2、YTHDC1、YTHDC2、YTHDC3的水平。使用慢病毒介导的 Mettl3-shRNA 转染抑制细胞中 Mettl3 的表达,形成 sh-Mettl3 组和 Ang Ⅱ+sh-Mettl3 组,而慢病毒空载体转染作为阴性对照(Ang Ⅱ+sh-NC 组)。观察了Ang Ⅱ对包膜分化的影响,并检测了下游磷脂酰肌醇3-激酶(PI3K)/AKT信号通路蛋白的表达,包括PI3K、AKT、丝氨酸473处磷酸化AKT(p-AKT (S473))和苏氨酸308处磷酸化AKT(p-AKT (T308))。通过与放线菌素 D 共同培养细胞来抑制 PI3K 基因转录,并通过测量不同共同培养时间内 PI3K mRNA 的残余表达来计算 PI3K mRNA 的半衰期。在 Ang Ⅱ+sh-Mettl3 组中加入 AKT 激活剂 SC79,以评估 Mettl3 抑制对 Ang Ⅱ 诱导的周细胞向肌成纤维细胞转分化的可逆性。在动物实验中,小鼠被分为以下几组:假组(给予 0.9% 无菌生理盐水)、Ang Ⅱ 组(注射 Ang Ⅱ 溶液)、sh-Mettl3 组(注射 Mettl3 shRNA 慢病毒溶液)、组、sh-Mettl3 组(注射 Mettl3 shRNA 慢病毒溶液)、Ang Ⅱ+sh-Mettl3 组(输注 Ang Ⅱ 溶液并注射 Mettl3 shRNA 慢病毒溶液)和 Ang Ⅱ+sh-Mettl3+SC79 组(输注 Ang Ⅱ 溶液和 Mettl3 shRNA 慢病毒并额外注射 SC79)。每组包括六只受试小鼠。手术前后用尾袖法测定血压,手术后 4 周测定血清肌酐、尿素和尿白蛋白水平。28 天后收集肾脏组织,用苏木精-伊红(HE)和马森三色染色法评估肾脏纤维化程度。结果:通过磁珠分选成功获得了原代肾周细胞,并用1×106 mmol/L Ang Ⅱ干预48小时以诱导肾周细胞向肌成纤维细胞的转分化。点印迹结果表明,与对照组相比,Ang Ⅱ组的 m6A 修饰水平更高(PPPPPPC结论:Mettl3 介导的 RNA m6A 表观遗传学调控参与了 Ang Ⅱ诱导的周细胞向肌成纤维细胞的转分化和肾脏纤维化,可能是通过影响 PI3K 的稳定性和调控 PI3K/AKT 信号通路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
[Mechanisms by which Mettl3 regulates pericyte-myofibroblast transdifferentiation through PI3K/AKT signaling pathway].

Objective: To investigate the role and underlying mechanisms of methyltransferase (Mettl) 3 in the process of angiotensin Ⅱ (Ang Ⅱ)-induced pericyte-to-myofibroblast transdifferentiation and renal fibrosis. Methods: C57BL/6J mice were used, in cell experiments, mouse renal pericytes were isolated and cultured using magnetic bead sorting. These pericytes were then induced to transdifferentiate into myofibroblasts with 1×106 mmol/L Ang Ⅱ, which was the Ang Ⅱ group, while pericytes cultured in normal conditions served as the control group. Successful transdifferentiation was verified by immunofluorescence staining, Western blotting, and real-time reverse transcription PCR (RT-qPCR) for α-smooth muscle actin (α-SMA). The levels of m6A modifications and related enzymes (Mettl3, Mettl14), Wilms tumor 1-associated protein (WTAP), fat mass and obesity protein (FTO), ALKBH5, YTHDF1, YTHDF2, YTHDC1, YTHDC2, YTHDC3 were assessed by Dot blot, RT-qPCR and Western blot. Mettl3 expression was inhibited in cells using lentivirus-mediated Mettl3-shRNA transfection, creating sh-Mettl3 and Ang Ⅱ+sh-Mettl3 groups, while lentivirus empty vector transfection served as the negative control (Ang Ⅱ+sh-NC group). The impact of Ang Ⅱ on pericyte transdifferentiation was observed, and the expression of downstream phosphatidylinositol 3-kinase (PI3K)/AKT signaling pathway proteins, including PI3K, AKT, phosphorylated AKT at serine 473 (p-AKT (S473)), and phosphorylated AKT at threonine 308 (p-AKT (T308)), were examined. PI3K gene transcription was inhibited by co-culturing cells with actinomycin D, and the half-life of PI3K mRNA was calculated by measuring residual PI3K mRNA expression over different co-culture time. The reversibility of Mettl3 inhibition on Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation was assessed by adding the AKT activator SC79 to the Ang Ⅱ+sh-Mettl3 group. In animal experiments, mice were divided into these groups: sham group (administered 0.9% sterile saline), Ang Ⅱ group (infused with Ang Ⅱ solution), sh-Mettl3 group (injected with Mettl3 shRNA lentivirus solution), Ang Ⅱ+sh-Mettl3 group (infused with Ang Ⅱ solution and injected with Mettl3 shRNA lentivirus solution), and Ang Ⅱ+sh-Mettl3+SC79 group (administered Ang Ⅱ solution and Mettl3 shRNA lentivirus, with an additional injection of SC79). Each group consisted of six subject mice. Blood pressure was measured using the tail-cuff method before and after surgery, and serum creatinine, urea, and urinary albumin levels were determined 4 weeks post-surgery. Kidney tissues were collected at 28 days and stained using hematoxylin-eosin (HE) and Masson's trichrome to assess the extent of renal fibrosis. Results: Primary renal pericytes were successfully obtained by magnetic bead sorting, and intervened with 1×106 mmol/L Ang Ⅱ for 48 hours to induce pericyte-to-myofibroblast transdifferentiation. Dot blot results indicated higher m6A modification levels in the Ang Ⅱ group compared to the control group (P<0.05). RT-qPCR and Western blot results showed upregulation of Mettl3 mRNA and protein levels in the Ang Ⅱ group compared to the control group (both P<0.05). In the Ang Ⅱ+sh-Mettl3 group, Mettl3 protein expression was lower than that in the Ang Ⅱ group, with reduced expression levels of α-SMA, vimentin, desmin, fibroblast agonist protein (FAPa) and type Ⅰ collagen (all P<0.05). Compared to the control group, PI3K mRNA expression level was elevated in the Ang Ⅱ group, along with increased p-AKT (S473) and p-AKT (T308) expressions. In the Ang Ⅱ+sh-Mettl3 group, PI3K mRNA expression and p-AKT (S473) and p-AKT (T308) levels were decreased (all P<0.05). The half-life of PI3K mRNA was shorter in the Ang Ⅱ+sh-Mettl3 group than that in the Ang Ⅱ+sh-NC group (2.34 h vs. 3.42 h). The ameliorative effect of Mettl3 inhibition on Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation was reversible by SC79. Animal experiments showed higher blood pressure, serum creatinine, urea, and 24-hour urinary protein levels, and a larger fibrosis area in the Ang Ⅱ group compared to the sham group (all P<0.05). The fibrosis area was smaller in the Ang Ⅱ+sh-Mettl3 group than that in the Ang Ⅱ group (P<0.05), but increased again upon addition of SC79. Conclusion: Mettl3-mediated RNA m6A epigenetic regulation is involved in Ang Ⅱ-induced pericyte-to-myofibroblast transdifferentiation and renal fibrosis, potentially by affecting PI3K stability and regulating the PI3K/AKT signaling pathway.

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来源期刊
中华心血管病杂志
中华心血管病杂志 Medicine-Cardiology and Cardiovascular Medicine
CiteScore
1.40
自引率
0.00%
发文量
10577
期刊介绍: The Chinese Journal of Cardiology , established in February 1973, is one of the major academic medical journals sponsored by the Chinese Medical Association and a leading periodical in the field of cardiology in China. It specializes in cardiology and related disciplines with a readership of more than 25 000. The journal publishes editorials and guidelines as well as important original articles on clinical and experimental investigations, reflecting achievements made in China and promoting academic communication between domestic and foreign cardiologists. The journal includes the following columns: Editorials, Strategies, Comments, Clinical Investigations, Experimental Investigations, Epidemiology and Prevention, Lectures, Comprehensive Reviews, Continuing Medical Education, etc.
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