分子网络引导的分离和生物活性 β-酸衍生品从黄蜂
Xin-Feng Zou1,2, Long-Gao Xiao1,2, Hui Liu1,2
1State Key Laboratory of Phytochemistry and Natural Medicines, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming650106, China.
Journal of agricultural and food chemistry
|January 27, 2026
概括
确定了九种新的麻化合物,即lupulxinones AI. 化合物8对Cutibacterium acnes表现出强大的抗菌活性,这表明治疗的治疗潜力.
科学领域:
- 自然产品化学 自然产品化学
- 有机化学 有机化学
- 药理学是指药理学,即药理学是指药理学.
背景情况:
- 蜂 (Humulus lupulus L.) 的花朵是生物活性化合物的丰富来源.
- 蜂中的β酸已经表现出各种生物活性.
研究的目的:
- 从Humulus lupulus中分离和描述新的β-酸.
- 评估这些化合物的抗菌和抗炎性质.
主要方法:
- 使用基于特征的分子网络进行有针对性的隔离.
- 通过综合光谱分析 (NMR,MS) 阐明结构.
- 使用电子圆形二重化 (ECD) 和X射线晶体学来确定绝对配置.
- 基拉尔染色学用于反体分离.
- 针对抗菌活性 (MIC,MBC) 和氧化抑制的体外生物测试.
主要成果:
- 发现了九种新的β-酸,狼素A-I (1-9).
- 卢普尔辛A和B (1-2) 具有独特的四环基架与四基环.
- 化合物8表现出强大的抗菌活性对抗Cutibacterium acnes (MIC = 1.56μg/mL).
- 化合物3,5和8显示出抗菌作用,而1a和3显示出中度的抗炎活性.
结论:
- 该研究成功地确定了具有显著抗菌性能的新型蜂β-酸.
- 卢普尔辛8显示出作为治疗的治疗剂的强大潜力.
- 蜂提取物需要进一步研究其皮肤学应用.
相关概念视频
Acid Strength and Molecular Structure
33.0K
Binary Acids and Bases
In the absence of any leveling effect, the acid strength of binary compounds of hydrogen with nonmetals (A) increases as the H-A bond strength decreases down a group in the periodic table. For group 17, the order of increasing acidity is HF < HCl < HBr < HI. Likewise, for group 16, the order of increasing acid strength is H2O < H2S < H2Se < H2Te. Across a row in the periodic table, the acid strength of binary hydrogen compounds increases with increasing...
In the absence of any leveling effect, the acid strength of binary compounds of hydrogen with nonmetals (A) increases as the H-A bond strength decreases down a group in the periodic table. For group 17, the order of increasing acidity is HF < HCl < HBr < HI. Likewise, for group 16, the order of increasing acid strength is H2O < H2S < H2Se < H2Te. Across a row in the periodic table, the acid strength of binary hydrogen compounds increases with increasing...
33.0K
Molecular Structure and Acidity
20.8K
An acid can be deprotonated to form a conjugate base or an anion. If the produced anion is more stable, then the acid is stronger. On the contrary, if the anion is unstable, then the acid is weaker. Hence, to determine the acidity of the compound, the stability of its conjugate base is studied using various factors.
The size effect explains the change in atomic size on acidity. When comparing the acids formed from elements that belong to the same column in the periodic table, their atomic sizes...
The size effect explains the change in atomic size on acidity. When comparing the acids formed from elements that belong to the same column in the periodic table, their atomic sizes...
20.8K
Protein Networks
4.5K
An organism can have thousands of different proteins, and these proteins must cooperate to ensure the health of an organism. Proteins bind to other proteins and form complexes to carry out their functions. Many proteins interact with multiple other proteins creating a complex network of protein interactions.
These interactions can be represented through maps depicting protein-protein interaction networks, represented as nodes and edges. Nodes are circles that are representative of a protein,...
These interactions can be represented through maps depicting protein-protein interaction networks, represented as nodes and edges. Nodes are circles that are representative of a protein,...
4.5K
Acidity and Basicity of Carboxylic Acid Derivatives
4.4K
Carboxylic acids are the strongest among organic acids, as they readily lose the hydroxyl proton to form a resonance-stabilized carboxylate ion. In comparison, the acid derivatives lack acidic hydrogens directly attached to a functional group. In these compounds, the acidic nature arises from their ability to lose α hydrogens, making them weakly acidic.
The relative acidic strength of the derivatives can be explained based on the extent of resonance stabilization of the conjugate base. The...
The relative acidic strength of the derivatives can be explained based on the extent of resonance stabilization of the conjugate base. The...
4.4K
Structures of Carboxylic Acid Derivatives
3.8K
Structure of Carboxylic Acid Derivatives
Carboxylic acid derivatives contain an acyl group attached to a heteroatom such as chlorine, oxygen, or nitrogen. The carbonyl carbon and oxygen are both sp2-hybridized with an unhybridized p orbital.
The three sp2 orbitals of the carbonyl carbon form three σ bonds, one each with the carbonyl oxygen, the α carbon, and the heteroatom, whereas the other two sp2 orbitals of the carbonyl oxygen are occupied by the lone pairs. Further, the unhybridized p...
Carboxylic acid derivatives contain an acyl group attached to a heteroatom such as chlorine, oxygen, or nitrogen. The carbonyl carbon and oxygen are both sp2-hybridized with an unhybridized p orbital.
The three sp2 orbitals of the carbonyl carbon form three σ bonds, one each with the carbonyl oxygen, the α carbon, and the heteroatom, whereas the other two sp2 orbitals of the carbonyl oxygen are occupied by the lone pairs. Further, the unhybridized p...
3.8K
Spectroscopy of Carboxylic Acid Derivatives
3.1K
Infrared spectroscopy is primarily used to determine the types of bonds and functional groups. In carboxylic acid derivatives, a typical carbonyl bond absorption is observed around 1650–1850 cm−1. For esters, the absorption is recorded at around 1740 cm−1, while acid halides show the absorption at about 1800 cm−1. Another acid derivative, the acid anhydrides, exhibit two carbonyl absorption around 1760 cm−1 and 1820 cm−1, arising from the symmetrical and...
3.1K


