酵母衍生的β-葡萄糖通过激活AMPK-HDAC7-MEF2轴来增强血管生成
Jeongin Cho1, Sujin Choi1, Seung Min Lee1
1Department of Biochemistry and Molecular Biology and Asan Institute for Life Sciences, Asan Medical Center, University of Ulsan College of Medicine, Seoul, Republic of Korea.
International journal of biological macromolecules
|January 28, 2026
概括
酵母衍生的β-葡萄糖通过激活AMPK-HDAC7-MEF2通路来促进新的血管生长. 这一发现表明β-葡萄糖.
科学领域:
- 生物化学 生物化学
- 分子生物学分子生物学
- 心血管研究研究心血管研究
背景情况:
- 血管新生对于组织修复和再生至关重要.
- 酵母衍生的β-葡萄糖具有免疫调节作用,具有潜在的血管应用.
- 贝塔葡萄糖的特定血管新生功能和机制尚不清楚.
研究的目的:
- 为了研究酵母衍生的β-葡萄糖的血管效应.
- 阐明贝塔葡萄糖介导血管生成背后的分子机制.
- 探索β-葡萄糖对心血管疾病的治疗潜力.
主要方法:
- 使用了内皮细胞,大动脉环测定和后肢缺血小鼠模型.
- 研究了AMP激活蛋白激酶 (AMPK) - ヒ斯脱乙酶7 (HDAC7) - 肌细胞增强因子2 (MEF2) 信号轴的作用.
- 评估了内皮细胞迁移,管道形成和血流恢复.
主要成果:
- 酵母衍生的β-葡萄糖激活了AMPK酸化,并诱导了HDAC7核出口.
- 这种信号级联增强了MEF2的转录活性,上调了亲血管性基因.
- β-葡萄糖促进了体外,体外和体内血管生成,改善了小鼠模型中的血液流动.
结论:
- 酵母衍生的β-葡萄糖通过AMPK-HDAC7-MEF2通路刺激血管生成.
- 这项研究揭示了β-葡萄糖在调节血管形成中的新机制.
- β-葡萄糖显示为治疗缺血性心血管疾病的治疗剂有前途.
更多相关视频
11:25Enhanced Yeast One-hybrid Screens To Identify Transcription Factor Binding To Human DNA Sequences
Published on: February 11, 2019
8.5K
06:13Determination of Glucan Chain Length Distribution of Glycogen Using the Fluorophore-Assisted Carbohydrate Electrophoresis FACE Method
Published on: March 31, 2022
4.1K
相关概念视频
Yeast Signaling
17.3K
Yeasts are single-celled organisms, but unlike bacteria, they are eukaryotes (cells with a nucleus). Cell signaling in yeast is similar to signaling in other eukaryotic cells. A ligand, such as a protein or a small molecule released from a yeast cell, attaches to a receptor on the cell surface. The binding stimulates second-messenger kinases to activate or inactivate transcription factors that further regulate gene expression. Many of the yeast intracellular signaling cascades have similar...
17.3K
Hypothalamic-Pituitary Axis
66.0K
The response to stress—be it physical or psychological, acute or chronic—involves activation of the Hypothalamic-Pituitary-Adrenal (HPA) axis. The HPA axis is part of the neuroendocrine system because it involves both neuronal and hormonal communication. Its function is to regulate homeostatic systems—metabolic, cardiovascular, and immune—providing the necessary means to respond to a stressor.
66.0K
Mechanism of Angiogenesis
6.8K
Blood vessel formation starts early during embryonic development, around day 7. In the extraembryonic yolk sac, mesodermal precursor cells called hemangioblast proliferate and differentiate into angioblast. Angioblasts express vascular endothelial growth factor receptor 2 or VEGFR2, which binds VEGF-A, a proangiogenic factor, guiding blood vessel formation. VEGF signaling promotes angioblasts to form a blood island in the developing embryo. Angioblasts further differentiate, giving rise to...
6.8K
Perpendicular-Axis Theorem
4.6K
The perpendicular-axis theorem states that the moment of inertia of a planar object about an axis perpendicular to its plane is equal to the sum of the moments of inertia about two mutually perpendicular concurrent axes lying in the plane of the body.
Consider a circular disc of mass M and radius R lying along an x-y plane. The origin lies at the center of the disc, and the z-axis is perpendicular to the disc's plane. All three axes coincide at the disc's center. The moment of inertia of this...
Consider a circular disc of mass M and radius R lying along an x-y plane. The origin lies at the center of the disc, and the z-axis is perpendicular to the disc's plane. All three axes coincide at the disc's center. The moment of inertia of this...
4.6K
Parallel-axis Theorem
8.3K
The parallel-axis theorem provides a convenient and quick method of finding the moment of inertia of an object about an axis parallel to the axis passing through its center of mass. Consider a thin rod as an example. There is a striking similarity between the process of finding the moment of inertia of a thin rod about an axis through its middle, where the center of mass lies, and about an axis through its end using the conventional method. In the conventional method, the concept of linear mass...
8.3K
Load along a Single Axis
645
In structural engineering, the analysis of beams subjected to varying loads is a critical aspect of understanding the behavior and performance of these structural elements. A common scenario involves a beam subjected to a combination of different load distributions.
Consider a beam of length L subjected to a varying load, which is a combination of parabolic and trapezoidal load distribution along the x-axis. In this case, it is essential to determine the resultant loads, their locations, and...
Consider a beam of length L subjected to a varying load, which is a combination of parabolic and trapezoidal load distribution along the x-axis. In this case, it is essential to determine the resultant loads, their locations, and...
645
