4.6 Article

Modelling drug adsorption in metal-organic frameworks: the role of solvent

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RSC ADVANCES
卷 11, 期 28, 页码 17064-17071

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ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ra01746b

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  1. U.S. Department of Energy Office of Science User Facility located at Lawrence Berkeley National Laboratory [DEAC02-05CH11231]
  2. Institute for Critical Technology and Applied Science
  3. Office of the Vice President for Research and Innovation
  4. Macromolecules Innovation Institute
  5. Hazel Thorpe Carman and George Gay Carman Trust

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The research indicates that the solvent plays a crucial role in drug adsorption, being driven by electrostatic interactions. Larger pore size MOFs demonstrate an increase in interaction energy as the number of adsorbed molecules increases under high pressure.
Solvent plays a key role in biological functions, catalysis, and drug delivery. Metal-organic frameworks (MOFs) due to their tunable functionalities, porosities and surface areas have been recently used as drug delivery vehicles. To investigate the effect of solvent on drug adsorption in MOFs, we have performed integrated computational and experimental studies in selected biocompatible MOFs, specifically, UiO-AZB, HKUST-1 (or CuBTC) and NH2-MIL-53(Al). The adsorption of three drugs, namely, 5-fluorouracil (5-FU), ibuprofen (IBU), and hydroxyurea (HU) were performed in the presence and absence of the ethanol. Our computational predictions, at 1 atmospheric pressure, showed a reasonable agreement with experimental studies performed in the presence of ethanol. We find that in the presence of ethanol the drug molecules were adsorbed at the interface of solvent and MOFs. Moreover, the computationally calculated adsorption isotherms suggested that the drug adsorption was driven by electrostatic interactions at lower pressures (<10(-4) Pa). Our computational predictions in the absence of ethanol were higher compared to those in the presence of ethanol. The MOF-adsorbate interaction (U-HA) energy decreased with decrease in the size of a drug molecule in all three MOFs at all simulated pressures. At high pressure the interaction energy increases with increase in the MOFs pore size as the number of molecules adsorbed increases. Thus, our research shows the important role played by solvent in drug adsorption and suggests that it is critical to consider solvent while performing computational studies.

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