| Literature DB >> 32555154 |
Marta Mon1, Rosaria Bruno2, Sergio Sanz-Navarro3, Cristina Negro1, Jesús Ferrando-Soria4, Lucia Bartella2, Leonardo Di Donna2, Mario Prejanò2, Tiziana Marino2, Antonio Leyva-Pérez5, Donatella Armentano6, Emilio Pardo7.
Abstract
The exact chemical structure of non-crystallising natural products is still one of the main challenges in Natural Sciences. Despite tremendous advances in total synthesis, the absolute structural determination of a myriad of natural products with very sensitive chemical functionalities remains undone. Here, we show that a metal-organic framework (Entities:
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Year: 2020 PMID: 32555154 PMCID: PMC7300120 DOI: 10.1038/s41467-020-16699-3
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919
Fig. 1MOF-catalyzed selective hydrolysis of glycosyl bonds of sucrose 1.
a Schematic representation of the one-pot selective hydrolysis/adsorption/crystal resolution of a natural product within a MOF. b 1H NMR spectra of sucrose 1 before and after selective hydrolysis with MOF 2, and SCXRD resolution of fructose fragment 1a. c Evolution with time of naringin 10 in CD3CN after reaction with MOF 2 at 60 °C, followed by 1H NMR. d Hydrolysis and incorporation of the alkyl part of naringin 10 into MOF 2 or MOF 3 with time for different amounts of MOFs (left) and initial rate as a function of the amount of MOF 2 employed (right), according to 1H NMR integrations. Reaction rates were measured with the initial points up to 30% conversion. Lines are a guide to the eye. Error bars account for a 5% uncertainty.
Fig. 2Crystal structure of 1a@2.
a Perspective view along c crystallographic axis of a single channel underlining pores filled by guest molecules depicted as blue sticks with the only exception of oxygen atoms, depicted as red spheres. The H-bond interactions are depicted as red dashed lines. Disordered positions of lattice water molecules having a key role in host–guest interactions are highlighted (see details of refinement in Supplementary Methods). b Supramolecular chains of 1a molecules packed in pores of 2 propagating along the direction of channels (all possible orientations are included). Carbon are represented by blue sticks whereas oxygen atoms of guest molecules and water molecules mediating host–guest interactions are represented by red spheres.
Fig. 3Hydrolysis of brutieridin 11.
a Chemical structure of brutieridin 11. Gray-colored ellipse highlights the fragment 11a, which contains the chiral carbon and encapsulates within the MOF after the break of the glycosidic bonds. b Chemical structure and 13C NMR spectrum of 11- in solution (black line), and MAS solid 13C NMR spectrum of MOF 2 after hydrolysis of 11- (blue line). The isotopically labeled carbon atoms are lettered (a–c). c Hydrolisis of 11 with sodium methoxide to give chiral fragment 12, and synthesis of 12 by enzymatic hydrolysis of diester 13.
Fig. 4Crystal structure resolution of brutieridin 11.
Views of the 3D open-framework of MOF 2 (a) and 11a@2 (b) along the c-axis (the crystallization water molecules are omitted for clarity). The 3D networks are depicted as gold sticks, with the only exception of serine residues oxygen atoms, which are represented as red sticks. c View of fragment of 11a encapsulated within channels. d Top (left) and side (right) perspective views of a single channel of 11a@2. Dashed lines represent hydrogen bonds between guest molecules involving also hydroxyl groups from the amino acid residue. The molecules of 11a are shown as red (oxygen) and gray (carbon) stick/solid surfaces.
Fig. 5Theoretical mechanism for the MOF-catalyzed glycosyl hydrolysis.
a The best docked pose selected on the basis of the applied geometrical and energetic filters. The studied catalytic mechanisms (b) followed in the hydrolysis reaction of 11 by MOF 2 and related PES (c) calculated at B3LYP-D3/6-311 + G(2d,2p)|UFF//B3LYP/6-31G(d)|UFF level of theory.