支持阿斯巴达酸盐生物合成是增殖细胞呼吸的重要功能
Lucas B Sullivan1, Dan Y Gui1, Aaron M Hosios1
1The Koch Institute for Integrative Cancer Research and Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Cell
|August 2, 2015
概括
线粒体呼吸通过提供酸盐合成的电子受体来支持细胞增殖. 像pyruvate这样的替代电子受体可以替代呼吸,使细胞生长.
科学领域:
- 细胞代谢
- 线粒体功能
- 生物化学
背景情况:
- 线粒体呼吸对于细胞增殖至关重要,但其特定的代谢作用尚不清楚.
- 了解这些作用是代谢研究和癌症生物学的关键.
研究的目的:
- 确定线粒体呼吸对细胞增殖的特定代谢要求.
- 研究呼吸在支持酸盐合成中的作用.
主要方法:
- 研究了呼吸缺陷细胞及其对pyruvate的辅食性.
- 使用阿尔法-丁酸盐作为替代电子受体.
- 评估了阿斯巴达酸补充剂对细胞增殖的影响.
主要成果:
- 线粒体呼吸为增殖细胞中的酸盐合成提供了必需的电子受体.
- 缺乏呼吸的细胞需要外源的电子受体 (如酸盐) 来生长.
- 替代性电子受体可以替代呼吸,而阿斯巴酸补充剂可以拯救呼吸缺陷细胞的增殖.
结论:
- 增殖细胞中的线粒体呼吸的主要功能是促进酸盐的合成.
- 向酸盐合成或电子受体可用性可能会影响细胞增殖.
更多相关视频
14:42Liquid Chromatography Coupled to Refractive Index or Mass Spectrometric Detection for Metabolite Profiling in Lysate-based Cell-free Systems
Published on: September 23, 2021
5.9K
08:03A Tandem Liquid Chromatography–Mass Spectrometry-based Approach for Metabolite Analysis of Staphylococcus aureus
Published on: March 28, 2017
10.7K
相关概念视频
Amino Acid Biosynthetic Pathways
1.7K
Amino acid biosynthesis is essential for cell growth, protein synthesis, and metabolic regulation. Cells generate essential and non-essential amino acids from metabolic intermediates to sustain vital biological functions. These intermediates originate from key metabolic pathways: glycolysis, the tricarboxylic acid (TCA) cycle, and the pentose phosphate pathway. Important precursors include α-ketoglutarate, pyruvate, oxaloacetate, phosphoenolpyruvate, and erythrose-4-phosphate, which...
1.7K
Respiration Pathways
908
Cellular respiration is a fundamental metabolic process that enables organisms to generate energy from organic molecules. One of its central pathways is the tricarboxylic acid (TCA) cycle, also known as the Krebs cycle, which plays a crucial role in energy production and biosynthetic processes.Conversion of Pyruvate to Acetyl-CoAThe pyruvate generated from glycolysis undergoes oxidative decarboxylation by the pyruvate dehydrogenase complex, producing acetyl-CoA, one molecule of NADH, and one...
908
Fates of Pyruvate
12.3K
Pyruvate is the end product of glycolysis, where glucose is oxidized to pyruvate, simultaneously reducing NAD+ to NADH. Two molecules of ATP are also produced by substrate-level phosphorylation.
In aerobic organisms, pyruvate is metabolized via the citric acid cycle to produce reduced coenzymes NADH and FADH2. These coenzymes are then oxidized in the electron transport chain to produce ATP and, in the process, regenerate the NAD+ and FAD. As seen in some cell types and organisms, fermentation...
In aerobic organisms, pyruvate is metabolized via the citric acid cycle to produce reduced coenzymes NADH and FADH2. These coenzymes are then oxidized in the electron transport chain to produce ATP and, in the process, regenerate the NAD+ and FAD. As seen in some cell types and organisms, fermentation...
12.3K
Biosynthesis in Bacteria
964
Biosynthesis in bacteria is a fundamental anabolic process that generates essential macromolecules, including proteins, nucleic acids, lipids, and polysaccharides. These macromolecules are critical for cellular growth, replication, and function. The process is tightly regulated and energetically linked to catabolic pathways to ensure optimal resource utilization.Biosynthetic pathways begin with precursor metabolites such as pyruvate, acetyl-CoA, and glucose-6-phosphate derived from glycolysis,...
964
Biosynthesis of Nucleic Acids
1.6K
Nucleic acid biosynthesis is a fundamental biochemical process that produces the purine and pyrimidine nucleotides essential for DNA and RNA synthesis. This pathway maintains a balanced nucleotide pool, preventing imbalances that could jeopardize genetic integrity and cellular function. Given the crucial role of nucleotides, their synthesis is tightly regulated to ensure proper cellular homeostasis.Purine BiosynthesisThe biosynthesis of purine nucleotides begins with ribose-5-phosphate, a...
1.6K
Adaptive Mechanisms in Cancer Cells
7.4K
Cancer cells accumulate genetic changes at an abnormally rapid rate due to the defects in the DNA repair mechanisms. From an evolutionary perspective, such genetic instability is advantageous for cancer development. Mutant cell lines accumulate a series of beneficial mutations that contribute to their progression into cancer.
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
Some of the advantages that cancer cells have on normal cells include - enhanced ability to divide without terminally differentiating, induce new blood vessel formation,...
7.4K
