相关实验视频
Updated: Feb 25, 2026

10:56
Author Spotlight: Tackling Challenges in Synthetic Cell Engineering
Published on: April 12, 2024
1.8K
含有ATPase的蛋白质体作为微反应器,模仿微生物代谢以合成生物能源
Xuanze Meng1, Yang Xu2, Yi Jia2
1Beijing National Laboratory for Molecular Sciences (BNLMS), CAS Key Lab of Colloid, Interface and Chemical Thermodynamics, Institute of Chemistry, Chinese Academy of Sciences, Beijing 100190, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Journal of colloid and interface science
|February 23, 2026
概括
研究人员创建了一个仿生微型反应器,模仿微生物乙醇代谢,以产生腺三酸盐 (ATP). 这个系统有效地将化学能量转化为生物能量,为ATP合成提供了一条新的途径.
科学领域:
- 生物模拟合成生物模拟合成
- 代谢工程是代谢工程.
- 生物能源转化转化生物能源
背景情况:
- 亚丁三酸盐 (ATP) 的人工合成通常模仿自然的代谢途径.
- 微生物利用固有的代谢途径进行高效的能量生产.
- 开发人工系统来复制这些途径对于生物能源研究至关重要.
研究的目的:
- 为合成腺三酸盐 (ATP) 建造一个仿生微反应器.
- 模仿微生物中发现的乙醇代谢途径.
- 通过简化系统,高效地将化学能转化为生物能.
主要方法:
- 设计了一个受微生物乙醇代谢启发的微反应器.
- 集成的酒精脱酶 (ADH) 和脱酶 (ALDH) 用于乙醇转化为酸.
- 在蛋白质聚体中与ATP合成酶结合质子产生,以创建ATP合成的质子梯度.
主要成果:
- 在30分钟内达到高氨酸三酸盐 (ATP) 度高达6.3μM.
- 在微反应器中成功重建了酸发酵的核心步骤.
- 证明了化学能量的有效转化为生物能源 (ATP).
结论:
- 生物模拟微反应器为ATP合成提供了一种新且高效的途径.
- 这种方法绕过复杂的代谢网络,利用易于获得的化学物质.
- 该设计作为理解和工程细胞代谢的基础模型.
相关概念视频
Lipid Catabolism
1.2K
Triglycerides serve as crucial long-term energy storage molecules in microorganisms, providing a dense source of metabolic energy. Their breakdown is mediated by lipases, which hydrolyze triglycerides into glycerol and free fatty acids. Each of these components follows distinct metabolic pathways, ultimately contributing to ATP synthesis and cellular energy homeostasis.Glycerol MetabolismGlycerol, released from triglyceride hydrolysis, is phosphorylated by glycerol kinase to form...
1.2K
Amino Acid Catabolism
1.4K
Microorganisms rely on proteins as an essential carbon and energy source, particularly in environments with limited polysaccharides or lipids. However, proteins are too large to cross the plasma membrane unaided, necessitating enzymatic degradation. Microbes secrete extracellular proteases and peptidases that hydrolyze proteins into peptides, which can then be transported across the membrane. Once inside the cell, intracellular proteases degrade these peptides into free amino acids, which...
1.4K
Hydrolysis of ATP
82.3K
The bonds of adenosine triphosphate (ATP) can be broken through the addition of water, releasing one or two phosphate groups in an exergonic process called hydrolysis. This reaction liberates the energy in the bonds for use in the cell—for instance, to synthesize proteins from amino acids.
If one phosphate group is removed, a molecule of ADP—adenosine diphosphate—remains, along with inorganic phosphate. ADP can be further hydrolyzed to AMP—adenosine...
If one phosphate group is removed, a molecule of ADP—adenosine diphosphate—remains, along with inorganic phosphate. ADP can be further hydrolyzed to AMP—adenosine...
82.3K
Peroxisomes and Mitochondria
98.7K
Peroxisomes and mitochondria are two important oxygen-utilizing organelles in eukaryotic cells. Mitochondria carry out cellular respiration—the process that converts energy from food into ATP. Peroxisomes carry out a variety of functions, primarily breaking down different substances, such as fatty acids.
The peroxisome is a single membrane-bound cellular organelle that can perform several different functions, including lipid metabolism and chemical detoxification. The enzymes within...
The peroxisome is a single membrane-bound cellular organelle that can perform several different functions, including lipid metabolism and chemical detoxification. The enzymes within...
98.7K
Metabolism of Chemolithotrophs
981
Chemolithotrophs are microorganisms that obtain energy by oxidizing inorganic molecules such as hydrogen gas (H₂), ammonia (NH₃), reduced sulfur compounds (H₂S, S²⁻), and ferrous iron (Fe²⁺). Unlike heterotrophic organisms that rely on organic carbon, chemolithotrophs transfer electrons from these inorganic donors to the electron transport chain (ETC), generating a proton motive force (PMF) that drives ATP synthesis through oxidative phosphorylation.
981
Biosynthesis of Lipids
739
Microbial membranes exhibit remarkable diversity in lipid composition, reflecting evolutionary adaptations to various environmental conditions. The three domains of life—Bacteria, Archaea, and Eukarya—synthesize membrane lipids through distinct biosynthetic pathways, leading to fundamental structural differences that impact membrane stability, function, and adaptability.Fatty Acid-Based Lipids in Bacteria and EukaryaBacteria and eukaryotes share a common fatty acid biosynthesis...
739

