工程铜等离子体性通过联体诱导溶解用于氨基酸的酶选择性识别
Sonia Maniappan1, Camelia Dutta1, Arunima Cheran1
1Department of Chemistry Indian Institute of Science Education and Research (IISER) Tirupati Tirupati 517507 India jatish@iisertirupati.ac.in.
Chemical science
|May 17, 2024
概括
我们使用氨酸开发了性铜纳米粒子,揭示了联体介导诱导是它们等离子体性的关键. 这些纳米颗粒显示出对histidine的enantioselective识别,与联体诱导溶解驱动转化.
科学领域:
- 纳米技术纳米技术
- 材料科学 材料科学 材料科学
- 生物化学 生物化学
背景情况:
- 状纳米系统对于生物过程至关重要,模仿生物系统.
- 铜纳米粒子 (CuNPs) 表现出等离子体性,但机制和应用尚未得到充分探索.
- 对于纳米材料的开发来说,了解性诱导和酶选择性相互作用至关重要.
研究的目的:
- 通过一种简单的方法合成奇拉铜纳米粒子 (奇拉CuNPs).
- 阐明CuNPs中联结体介导的性诱导的机制.
- 为了研究合CuNPs.通过histidine的enantioselective识别.
主要方法:
- 合成使用氨酸作为氨酸前体和封闭连接体的性CuNP.
- 实验和理论建模以建立联结体介导的性诱导.
- 通过联体诱导溶解对纳米粒子转化为复合物的研究.
主要成果:
- 证明了一种易于合成的CuNPs.
- 确定了联结体介导的性诱导作为等离子体性的起源.
- 通过联结体诱导溶解观察到基拉CuNPs对histidine的对抗选择性识别.
结论:
- 联结体介导的诱导是氨酸覆盖CuNPs中的等离子体性的主要机制.
- 状CuNPs通过连接体诱导溶解表现出对histidine的对抗选择性识别.
- 这些发现为生物医学研究和非对称合成催化剂提供了潜力.
相关概念视频
Chirality in Nature
13.4K
Chirality is the most intriguing yet essential facet of nature, governing life’s biochemical processes and precision. It can be observed from a snail shell pattern in a macroscopic world to an amino acid, the minutest building block of life. Most of the snails around the world have right-coiled shells because of the intrinsic chirality in their genes. All the amino acids present in the human body exist in an enantiomerically pure state, except for glycine - the sole achiral amino acid.
13.4K
Extraction: Advanced Methods
446
Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is...
446
Prochirality
3.8K
The concept of prochirality leads to the nomenclature of the individual faces of a molecule and plays a crucial role in the enantioselective reaction. It is a concept where two or more achiral molecules react to produce chiral products. A typical process is the reaction of an achiral ketone to generate a chiral alcohol. Here, the achiral reactant reacts with an achiral reducing agent, sodium borohydride, to generate an equimolar mixture of the chiral enantiomers of the product. For example, an...
3.8K
Chirality at Nitrogen, Phosphorus, and Sulfur
5.7K
Chirality is most prevalent in carbon-based tetrahedral compounds, but this important facet of molecular symmetry extends to sp3-hybridized nitrogen, phosphorus and sulfur centers, including trivalent molecules with lone pairs. Here, the lone pair behaves as a functional group in addition to the other three substituents to form an analogous tetrahedral center that can be chiral.
A consequence of chirality is the need for enantiomeric resolution. While this is theoretically possible for all...
A consequence of chirality is the need for enantiomeric resolution. While this is theoretically possible for all...
5.7K
Reduction of Alkenes: Asymmetric Catalytic Hydrogenation
3.3K
Catalytic hydrogenation of alkenes is a transition-metal catalyzed reduction of the double bond using molecular hydrogen to give alkanes. The mode of hydrogen addition follows syn stereochemistry.
The metal catalyst used can be either heterogeneous or homogeneous. When hydrogenation of an alkene generates a chiral center, a pair of enantiomeric products is expected to form. However, an enantiomeric excess of one of the products can be facilitated using an enantioselective reaction or an...
The metal catalyst used can be either heterogeneous or homogeneous. When hydrogenation of an alkene generates a chiral center, a pair of enantiomeric products is expected to form. However, an enantiomeric excess of one of the products can be facilitated using an enantioselective reaction or an...
3.3K
¹H NMR Chemical Shift Equivalence: Enantiotopic and Diastereotopic Protons
1.7K
Replacing each alpha-hydrogen in chloroethane by bromine (or a different functional group) yields a pair of enantiomers. Such protons are called prochiral or enantiotopic and are related by a mirror plane. Enantiotopic protons are chemically equivalent in an achiral environment. Because most proton NMR spectra are recorded using achiral solvents, enantiotopic hydrogens yield a single signal.
In chiral compounds such as 2-butanol, replacing the methylene hydrogens at C3 produces a pair of...
In chiral compounds such as 2-butanol, replacing the methylene hydrogens at C3 produces a pair of...
1.7K


