酸酸酶将细胞代谢与基因素乙化联系起来
Kathryn E Wellen1, Georgia Hatzivassiliou, Uma M Sachdeva
1Department of Cancer Biology, Abramson Family Cancer Research Institute, University of Pennsylvania, Philadelphia, PA 19104, USA.
概括
哺乳动物基因素乙化取决于腺三酸盐 (ATP) - 酸酶 (ACL),将营养代谢与基因表达联系起来. ACL将葡萄糖衍生的酸盐转化为乙-CoA,这对于基因素修饰至关重要.
科学领域:
- 生物化学 生物化学
- 分子生物学分子生物学
- 表观遗传学 在表观遗传学中,表观遗传学是指表观遗传学.
背景情况:
- 单细胞真核生物通过乙烯基-CoA合成酶使用乙酸盐进行组 histone 乙化.
- 甲基动物主要使用葡萄糖,并且具有有限的细胞外酸盐,因此需要使用替代途径进行基因素乙化.
研究的目的:
- 为了研究主要负责哺乳动物细胞中素乙化的酶.
- 确定腺三酸盐 (ATP) - 酸酶 (ACL) 在将营养代谢与基因乙化和基因表达联系中的作用.
主要方法:
- 使用哺乳动物细胞培养模型.
- 在不同的葡萄糖条件和生长因子刺激下评估了基因素乙化水平.
- 研究了ATP-酸酶酶 (ACL) 的酶活性及其在乙烯基-CoA生产中的作用.
主要成果:
- 哺乳动物细胞中的素乙化取决于ATP-酸酶 (ACL).
- 在生长因子刺激和分化过程中,ACL对于增加基因素乙化至关重要.
- 葡萄糖的可用性通过一个依赖于ACL的机制影响着基因素乙化.
结论:
- 需要ACL活动来将生长因子诱导的营养代谢与基因素乙化联系起来.
- ACL作为一个关键的酶,将细胞代谢与哺乳动物的表观遗传调节和基因表达联系起来.
相关概念视频
The Citric Acid Cycle
The citric acid cycle, also known as the Krebs cycle or TCA cycle, consists of several energy-generating reactions that yield one ATP molecule, three NADH molecules, one FADH2 molecule, and two CO2 molecules.
The Citric Acid Cycle: Overview
In aerobic organisms, the citric acid cycle is the second stage of cellular respiration wherein molecules derived from the breakdown of carbohydrates, proteins, and fats are oxidized into carbon dioxide and energy. This process is also known as the tricarboxylic acid (TCA) cycle as the first product of the cycle, citric acid, contains three carboxyl groups in its structure. Alternatively, this cycle is also referred to as the Krebs cycle, in honor of its discoverer Sir Hans Krebs.
The citric...
The citric...
The Citric Acid Cycle: Output
The citric acid cycle is termed an amphibolic pathway as it operates both anabolically and catabolically. The cyclic reactions balance the flux of the substrates to provide an optimal concentration of NADH and ATP to the cell.
Regulation of Citric Acid Cycle
The citric acid cycle is regulated in several ways, including feedback inhibition, regulation of enzyme activities, and associated anaplerotic or cataplerotic pathways.
The primary substrate of the TCA cycle—acetyl CoA—is produced by the...
Regulation of Citric Acid Cycle
The citric acid cycle is regulated in several ways, including feedback inhibition, regulation of enzyme activities, and associated anaplerotic or cataplerotic pathways.
The primary substrate of the TCA cycle—acetyl CoA—is produced by the...
Histone Modification
The histone proteins have a flexible N-terminal tail extending out from the nucleosome. These histone tails are often subjected to post-translational modifications such as acetylation, methylation, phosphorylation, and ubiquitination. Particular combinations of these modifications form “histone codes” that influence the chromatin folding and tissue-specific gene expression.
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone deacetylase,...
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone deacetylase,...
Histone Modification
The histone proteins have a flexible N-terminal tail extending out from the nucleosome. These histone tails are often subjected to post-translational modifications such as acetylation, methylation, phosphorylation, and ubiquitination. Particular combinations of these modifications form “histone codes” that influence the chromatin folding and tissue-specific gene expression.
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone deacetylase,...
Acetylation
The enzyme histone acetyltransferase adds acetyl group to the histones. Another enzyme, histone deacetylase,...
Covalently Linked Protein Regulators
Proteins can undergo many types of post-translational modifications, often in response to changes in their environment. These modifications play an important role in the function and stability of these proteins. Covalently linked molecules include functional groups, such as methyl, acetyl, and phosphate groups, and also small proteins, such as ubiquitin. There are around 200 different types of covalent regulators that have been identified.
These groups modify specific amino acids in a protein.
These groups modify specific amino acids in a protein.


