非ペプチド性Phe-Phe模倣体の解明:合成、自己集合、構造解析、および光学特性に関する洞察
Deepika Sharma1, Soumen K Dubey1, Poonam K Sharma1
1Department of Chemistry & Centre of Advanced Studies, Panjab University, Sector-14, Chandigarh 160014, India.
Abstract:
The diphenylalanine (FF) and its derivatives are widely studied for their self-assembly, mechanical strength, and diverse applications in materials and the biomedicine field. To develop a stable, and synthetically accessible nonpeptidic FF mimic, 14 aromatic derivatives of l-phenylalanine (A1 to A7) and l-phenylglycine (G1 to G7) were designed and synthesized to investigate the structure-property relationships. The systematic variation of aromatic groups, electronic substitution, and C-terminal protection enabled control of the intermolecular interactions. The morphological study revealed that rigid derivatives formed rod-like structures through strong π-π stacking, whereas the flexible derivatives produced fibrillar morphologies. The C-terminal modification promoted plate-like assemblies, while the electronic effects led to microplate formation. Here, the N-terminal phenylacetyl protection enhances the molecular flexibility of derivative A2, enabling it to mimic the morphological and optical behavior of FF-dipeptide while offering enhanced stability and highlighting a robust nonpeptidic platform for bioinspired nanomaterials.
関連する概念動画
Properties of Enantiomers and Optical Activity
Assembly of Complex Microtubule Structures
Structural Properties and Dimensions of Lumber
The strength characteristics of...
Structure and Physical Properties of Alkynes
In nature, compounds containing both carbon and hydrogen are known as "hydrocarbons". Aliphatic hydrocarbons are compounds whose molecules contain saturated single bonds (i.e., alkanes) or unsaturated double or triple bonds. Alkenes contain carbon–carbon double bonds and have a structural formula CnH2n. Unsaturated hydrocarbons containing carbon–carbon triple bonds are called "alkynes" and are structurally represented by the formula CnH2n-2.
The...
Peptide Bonds
Protein and Protein Structure
A protein's shape is critical to its function. For example, an enzyme...


