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相关概念视频

Introduction to Carbohydrates01:34

Introduction to Carbohydrates

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Carbohydrates, proteins, and fats are the primary macronutrients in the human diet. However, carbohydrates are the most favored source of energy in the body. They can be found in a wide variety of foods, including whole grains, fruit, and vegetables, in various forms, such as sugars, starch, and dietary fiber. Based on their structure, carbohydrates are classified into three main classes— monosaccharides, disaccharides, and polysaccharides. The body's cells can only utilize simple...
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Sugars as Energy Storage Molecules01:10

Sugars as Energy Storage Molecules

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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...
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Protein Glycosylation01:25

Protein Glycosylation

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Glycosylation, the most common post-translational modification for proteins, serves diverse functions. Adding sugars to proteins makes the proteins more resistant to proteolytic digestion. Glycosylated proteins can act as markers and receptors to promote cell-cell adhesion. Additionally, they have many essential quality control functions in the cell, such as correct protein folding and facilitating transport of misfolded proteins to the cytosol, which can be degraded.
Glycosylation occurs in...
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Oligosaccharide Assembly01:24

Oligosaccharide Assembly

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Protein glycosylation starts in the ER lumen and continues in the Golgi apparatus. Glycosyltransferases catalyze the addition of sugar molecules or glycosylation of proteins. Usually, these enzymes add sugars to the hydroxyl groups of selected serine or threonine residues to form O-linked glycans or the amino groups of asparagine residues to form N-linked glycans. Different positions on the same polypeptide chain can contain differently linked glycans.
Multiple sugar molecules that may or may...
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Cellulose and Pectic Polysaccharides01:15

Cellulose and Pectic Polysaccharides

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 Every plant cell has a cell wall that protects the cell, provides structural support, and gives the cell shape. Cellulose, the main structural component of the plant cell wall, makes up over 30% of plant matter. It is the most abundant organic compound on earth.  Cellulose is an unbranched polysaccharide composed of linear chains of glucose molecules linked by β (1→4) glycosidic bonds.
As a cell matures, its cell wall specializes according to its type. For example, the...
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相关实验视频

Updated: May 7, 2025

Isolation of Histone from Sorghum Leaf Tissue for Top Down Mass Spectrometry Profiling of Potential Epigenetic Markers
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麦粉:组成,结构,功能,以及改善它的策略.

Muhammad Khubaib Zahid1, Daraz Ahmad1, Raheela Amin1

  • 1Institute of Nuclear Agricultural Sciences, College of Agriculture and Biotechnology, Zhejiang University, Zijingang Campus, Hangzhou, China.

Comprehensive reviews in food science and food safety
|January 2, 2025
PubMed
概括

麦粉是这种抗气候粮食的关键组成部分,提供了多样化的应用. 了解它的结构和修改它可以提高其在食品和非食品行业的使用,促进全球粮食安全.

关键词:
的功能性功能.基因工程是基因工程,是基因工程.这就是. . .这是一种粉,粉.粉改性粉的改变

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Transverse Sectioning of Mature Rice Oryza sativa L. Kernels for Scanning Electron Microscopy Imaging Using Pipette Tips as Immobilization Support
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Analysis and Specification of Starch Granule Size Distributions
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Analysis and Specification of Starch Granule Size Distributions
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科学领域:

  • 农业科学 农业科学
  • 食品科学 食品科学 食品科学
  • 生物化学 生化学

背景情况:

  • (Sorghum bicolor L. Moench) 是一种适应气候的谷物谷物,对全球粮食安全具有重大潜力.
  • 麦粉占谷物重量的80%以上,其特性决定了功能和应用.

研究的目的:

  • 综合审查麦粉的形态,组成,结构和结构功能关系.
  • 探索修改策略 (化学,物理,酶,生物) 以优化粉粉的特性.
  • 讨论酶在粉生物合成中的作用以及改善粉质量的遗传策略.

主要方法:

  • 文献综述和综合现有关于麦粉的研究.
  • 物理化学性质的分析:粘贴,凝化,逆向,纹理,消化动力学.
  • 改造技术的评估及其对粉特性的影响.

主要成果:

  • 麦粉表现出不同的生理化学特性,其结构受其结构的影响.
  • 通过化学,物理和酶修改,可以为各种应用量身定制麦粉.
  • 遗传和分子育种策略为提高粉质量和生物合成提供了途径.

结论:

  • 通过各种修改优化麦粉的特性,可以扩大其在食品和非食品领域的应用.
  • 了解粉生物合成和结构功能关系对于开发改进的麦品种至关重要.
  • 量身定制的粉对提高可持续农业和全球粮食安全具有前景.