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Carbohydrate Digestion00:57

Carbohydrate Digestion

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Carbohydrate digestion and metabolism break down simple and complex carbohydrates from food into saccharides (i.e., sugars) for the body to use as energy. Carbohydrate digestion starts in the mouth during mastication, or chewing. The masticated carbohydrates remain intact in the stomach. Digestion resumes in the duodenum of the small intestine, where pancreatic alpha-amylase and brush border enzymes of the microvilli convert complex carbohydrates to monosaccharides. Finally, the monosaccharides...
114.2K
Hydrolysis01:15

Hydrolysis

104.6K
Overview
Hydrolysis is a chemical reaction in which the addition of water breaks down a polymer into its simpler monomer units. For example, peptides break into amino acids, carbohydrates into simple sugars, and DNA into nucleotides. Enzymes often facilitate these processes.
Hydrolysis Reverses Dehydration Synthesis
Complex carbohydrates can be broken down by breaking the bonds between individual sugar units. The reaction breaks a glycosidic bond as water is added to the compound. The...
104.6K
Carbohydrate Metabolism01:36

Carbohydrate Metabolism

10.8K
Carbohydrates are polymers composed of molecules containing atoms of carbon, hydrogen and oxygen. One gram of carbohydrate can provide four kilo-calories of energy, which makes it the most efficient instant energy source.
Starch accounts for approximately 60% of the carbohydrates consumed by humans. Since amylase enzymes cannot function in the stomach's acidic environment, starch can only be digested in the mouth and small intestine. Simple sugars are found naturally in milk and fruits in...
10.8K
Glycolysis: Preparatory Phase01:21

Glycolysis: Preparatory Phase

13.3K
In cellular metabolism (the complete breakdown of glucose to extract energy),  glycolysis is the first step. Glycolysis takes place in the cytoplasm of both prokaryotic and eukaryotic cells. Glucose enters heterotrophic cells in two ways. One method is through secondary active transport, where the transport takes place against the glucose concentration gradient. The other mechanism uses a group of integral proteins called GLUT proteins, also known as glucose transporter proteins. These...
13.3K
Sugars as Energy Storage Molecules01:10

Sugars as Energy Storage Molecules

8.4K
Sugar (a simple carbohydrate) metabolism (chemical reactions) is a classic example of the many cellular processes that use and produce energy. Living things consume sugar as a major energy source because sugar molecules have considerable energy stored within their bonds. Consumed carbohydrates have their origins in photosynthesizing organisms like plants. During photosynthesis, plants use the energy of sunlight to convert carbon dioxide gas into sugar molecules, like glucose. Because this...
8.4K
Energy-requiring Steps of Glycolysis01:20

Energy-requiring Steps of Glycolysis

163.2K
Glucose is the source of nearly all energy used by organisms. The first step of converting glucose into usable energy is called glycolysis. Glycolysis occurs in the cytosol of the cell over two phases: an energy-requiring phase and an energy-releasing phase. Over the first three steps, glucose is converted into different forms and attached to two phosphate groups donated by two ATP molecules, resulting in an unstable sugar. In the next two stages, the unstable sugar splits into two sugar...
163.2K

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相关实验视频

Updated: Jun 12, 2025

High-throughput Screening of Carbohydrate-degrading Enzymes Using Novel Insoluble Chromogenic Substrate Assay Kits
06:51

High-throughput Screening of Carbohydrate-degrading Enzymes Using Novel Insoluble Chromogenic Substrate Assay Kits

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使用多种酶反应制造无糖面包.

Sung Ho Lee1, Yerim Na2, Jong Hyuk Lee2

  • 1Department of Food Science and Technology, Sangmyung University, Cheonan, Republic of Korea.

Food science and biotechnology
|June 10, 2025
PubMed
概括

酶转糖酶和马尔托特拉氨酶改善了无糖白面包的生产. 这些酶减少了检验时间,延迟了陈腐,为更健康的面包选择提供了有希望的解决方案.

科学领域:

  • 食品科学 食品科学 食品科学
  • 酶学 是一种酶学.
  • 技术 技术 技术

背景情况:

  • 无糖白面包生产面临着发酵不足和质地差等挑战.
  • 寻求酶溶液来提高无糖制品的质量和加工.

研究的目的:

  • 为了评估转糖酶和马尔托特拉氨酶在生产无糖白面包中的有效性.
  • 评估这些酶对检验时间,体积,纹理和延迟的影响.

主要方法:

  • 酶转糖酶和马尔托特拉氨酶被用于无糖白面包配方.
  • 与添加糖的对照组和负对照组进行了比较分析.
  • 测量包括检验时间,具体体积,颜色 (L*,b*),硬度和含糖量.

主要成果:

  • 用酶治疗的组显示的检验时间与对照组相比相当.
  • 在受酶治疗和对照组之间,特异体积没有显著差异.
  • 酶治疗延迟了化过程,导致3天后硬度降低.
  • 经过酶处理的面包具有较低的麦芽糖含量和与无糖对照组相似的总糖含量.

结论:

  • 转糖酶和马尔托特拉氨酶有效地解决了无糖面包的低发酵和质地问题.
关键词:
面包制造 在面包制造在G4氨基酶.马尔托特拉糖是一种乳糖.没有糖的无糖.转糖化酶是一种转糖化酶.白色面包面包面包面包

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Last Updated: Jun 12, 2025

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  • 这些酶呈现出一种简单而有效的策略,用于生产高质量的无糖白面包.
  • 这些发现支持使用这些酶来增强无糖烤.