Yadav Nagendra Prasad, Yadav Tarun, Pattanaik Sangram, Shakerzadeh Ehsan, Chakroborty Subhendu, Xiaofeng Cai, Vishwkarma Anil Kumar, Pathak Amit, Malviya Jitendra, Pandey Fanindra Pati
School of Electrical and Electronics Information Engineering, Hubei Polytechnic University, NO.16 North Guilin Road, Huangshi, Hubei 435003, China.
Department of Basic Sciences, IITM, IES University, Bhopal, MP 462044, India.
ACS Omega. 2024 Jan 8;9(3):3373-3383. doi: 10.1021/acsomega.3c06382. eCollection 2024 Jan 23.
In this study, the interaction between the neurotransmitter epinephrine and small gold nanoclusters (AuNCs) with = 6, 8, and 10 is described by density functional theory calculations. The interaction of Au, Au, and Au nanoclusters with epinephrine is governed by Au-X (X = N and O) anchoring bonding and Au···H-X conventional hydrogen bonding. The interaction mechanism of epinephrine with gold nanoclusters is investigated in terms of electronic energy and geometrical properties. The adsorption energy values for the most favorable configurations of AuNC@epinephrine, AuNC@epinephrine, and AuNC@epinephrine were calculated to be -17.45, -17.86, and -16.07 kcal/mol, respectively, in the gas phase. The results indicate a significant interaction of epinephrine with AuNCs and point to the application of the biomolecular complex AuNC@epinephrine in the fields of biosensing, drug delivery, bioimaging, and other applications. In addition, some important electronic properties, namely, the energy gap between HOMO and LUMO, the Fermi level, and the work function, were computed. The effect of aqueous media on adsorption energy and electronic parameters for the most favorable configurations was also studied to explore the influence of physical biological conditions.
在本研究中,通过密度泛函理论计算描述了神经递质肾上腺素与具有6、8和10个原子的小金纳米团簇(AuNCs)之间的相互作用。Au6、Au8和Au10纳米团簇与肾上腺素的相互作用由Au-X(X = N和O)锚定键和Au···H-X传统氢键主导。从电子能量和几何性质方面研究了肾上腺素与金纳米团簇的相互作用机制。在气相中,Au6NC@肾上腺素、Au8NC@肾上腺素和Au10NC@肾上腺素最有利构型的吸附能值分别计算为-17.45、-17.86和-16.07 kcal/mol。结果表明肾上腺素与AuNCs之间存在显著相互作用,并指出生物分子复合物AuNC@肾上腺素在生物传感、药物递送、生物成像及其他应用领域的应用。此外,还计算了一些重要的电子性质,即最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)之间的能隙、费米能级和功函数。还研究了水介质对最有利构型的吸附能和电子参数的影响,以探索物理生物条件的影响。