Reddy Samala Murali Mohan, Dorishetty Pramod, Deshpande Abhijit P, Shanmugam Ganesh
Bioorganic Chemistry Laboratory, CSIR-Central Leather Research Institute, Adyar, Chennai-, 600020, India), Phone: +91 44 24437224, Fax: +91 44 24911589.
Academy of Scientific and Innovative Research (AcSIR), Council of Scientific and Industrial Research (CSIR), New Delhi, 110 001, India.
Chemphyschem. 2016 Jul 18;17(14):2170-80. doi: 10.1002/cphc.201600132. Epub 2016 Apr 14.
Although a few Fmoc-functionalised amino acids (Fmoc-AA) are capable of forming hydrogels, the exact levels of hydrophobicity, hydrogen bonding, and ionic nature of the Fmoc-AA gelator required for hydrogel formation remains uncertain. Here, the role of hydrophobicity of amino acid side chain, particularly in the formation of hydrogel, was studied by using Fmoc-norleucine (Fmoc-Nle) and its simple sulfur analogues such as Fmoc-methionine (Fmoc-M) in which the γCH2 of Fmoc-Nle is replaced by sulfur. Results indicate that Fmoc-M forms thermally reversible hydrogels in water (pH ca. 6.8), whereas Fmoc-Nle fails to display any gelation under similar conditions. The result suggests that substitution of the sulfur atom likely reduces the hydrophobicity of the alkyl side chain in Fmoc-Nle to the optimum level, which is sufficient to induce supramolecular hydrogelation in Fmoc-M. The difference in the self-association behaviour of Fmoc-M and Fmoc-Nle emphasise the importance of weak noncovalent interaction between side chains (in addition to the hydrogen-bond and aromatic interactions) to stabilise supramolecular self-assembly of Fmoc-functionalised compounds. The current observations provide a lead to the design of new sulfur-based low molecular weight gelators for various potential applications.
尽管少数芴甲氧羰基官能化氨基酸(Fmoc-AA)能够形成水凝胶,但形成水凝胶所需的Fmoc-AA凝胶剂的确切疏水性、氢键和离子性质水平仍不确定。在此,通过使用芴甲氧羰基正亮氨酸(Fmoc-Nle)及其简单的硫类似物,如芴甲氧羰基甲硫氨酸(Fmoc-M),其中Fmoc-Nle的γCH2被硫取代,研究了氨基酸侧链疏水性在水凝胶形成中的作用。结果表明,Fmoc-M在水中(pH约6.8)形成热可逆水凝胶,而Fmoc-Nle在类似条件下未能表现出任何凝胶化现象。该结果表明,硫原子的取代可能将Fmoc-Nle中烷基侧链的疏水性降低到最佳水平,这足以诱导Fmoc-M发生超分子水凝胶化。Fmoc-M和Fmoc-Nle自缔合行为的差异强调了侧链之间弱非共价相互作用(除氢键和芳香相互作用外)对稳定芴甲氧羰基官能化化合物超分子自组装的重要性。目前的观察结果为设计用于各种潜在应用的新型硫基低分子量凝胶剂提供了线索。