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Intercalation of benzoxaborolate anions in layered double hydroxides: toward hybrid formulations for benzoxaborole drugs

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Intercalation of benzoxaborolate anions in layered double hydroxides: toward hybrid formulations for benzoxaborole drugs. / Sene, Saad; Bégu, Sylvie; Gervais, Christel et al.
In: Chemistry of Materials, Vol. 27, No. 4, 24.02.2015, p. 1242-1254.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Sene, S, Bégu, S, Gervais, C, Renaudin, G, Mesbah, A, Smith, ME, Mutin, PH, Van Der Lee, A, Nedelec, J, Bonhomme, C & Laurencin, D 2015, 'Intercalation of benzoxaborolate anions in layered double hydroxides: toward hybrid formulations for benzoxaborole drugs', Chemistry of Materials, vol. 27, no. 4, pp. 1242-1254. https://doi.org/10.1021/cm504181w

APA

Sene, S., Bégu, S., Gervais, C., Renaudin, G., Mesbah, A., Smith, M. E., Mutin, P. H., Van Der Lee, A., Nedelec, J., Bonhomme, C., & Laurencin, D. (2015). Intercalation of benzoxaborolate anions in layered double hydroxides: toward hybrid formulations for benzoxaborole drugs. Chemistry of Materials, 27(4), 1242-1254. https://doi.org/10.1021/cm504181w

Vancouver

Sene S, Bégu S, Gervais C, Renaudin G, Mesbah A, Smith ME et al. Intercalation of benzoxaborolate anions in layered double hydroxides: toward hybrid formulations for benzoxaborole drugs. Chemistry of Materials. 2015 Feb 24;27(4):1242-1254. Epub 2015 Jan 19. doi: 10.1021/cm504181w

Author

Sene, Saad ; Bégu, Sylvie ; Gervais, Christel et al. / Intercalation of benzoxaborolate anions in layered double hydroxides : toward hybrid formulations for benzoxaborole drugs. In: Chemistry of Materials. 2015 ; Vol. 27, No. 4. pp. 1242-1254.

Bibtex

@article{7764fdbc7a82492da456ed99e865ee91,
title = "Intercalation of benzoxaborolate anions in layered double hydroxides: toward hybrid formulations for benzoxaborole drugs",
abstract = "Benzoxaboroles are a family of cyclic derivatives of boronic acids, whose reactivity makes them interesting candidates for the development of novel drugs. In this study, we describe the preparation of the first hybrid organic–inorganic materials involving benzoxaboroles, as a first step toward their use as new formulations for such drugs. The materials were prepared by intercalation of the simplest benzoxaborole (C7H6BO(OH), BBzx) or of its fluorinated analogue (C7H5FBO(OH), AN2690, a recently developed antifungal drug), both taken under their anionic form (benzoxaborolate), into a biodegradable inorganic matrix (a Mg–Al layered double hydroxide). Extensive characterization was carried out on the materials, notably by powder X-ray diffraction and multinuclear (11B, 27Al, 13C, 19F, 25Mg, and 1H) solid state NMR, in order to describe their structure, particularly in the vicinity of the organoboron species. Three crystalline phases involving benzoxaborolate anions in association with Ca2+ or Mg2+ cations were also prepared as part of this work (Mg(C7H6BO(OH)2)2·10H2O, Mg(C7H6BO(OH)2)2·7H2O and Ca3(C7H6BO(OH)2)5(C7H6BO2)·3H2O), in order to assist in the interpretation of the spectroscopic data. A DFT computational model of the interlayer space was proposed, which is consistent with the experimental observations. Several properties of the materials were then determined with a view of using them as part of novel formulations, namely the maximum loading capacity toward benzoxaborol(at)es, the optimal storage conditions, and the release kinetics in simulated physiological media. All in all, this study serves as a benchmark not only for the development of novel formulations for benzoxaborole drugs, but more generally for the preparation of a novel class of organic–inorganic materials involving benzoxaborol(at)es.",
author = "Saad Sene and Sylvie B{\'e}gu and Christel Gervais and Guillaume Renaudin and Adel Mesbah and Smith, {Mark E.} and Mutin, {P. Hubert} and {Van Der Lee}, Arie and Jean-marie Nedelec and Christian Bonhomme and Danielle Laurencin",
year = "2015",
month = feb,
day = "24",
doi = "10.1021/cm504181w",
language = "English",
volume = "27",
pages = "1242--1254",
journal = "Chemistry of Materials",
issn = "0897-4756",
publisher = "AMER CHEMICAL SOC",
number = "4",

}

RIS

TY - JOUR

T1 - Intercalation of benzoxaborolate anions in layered double hydroxides

T2 - toward hybrid formulations for benzoxaborole drugs

AU - Sene, Saad

AU - Bégu, Sylvie

AU - Gervais, Christel

AU - Renaudin, Guillaume

AU - Mesbah, Adel

AU - Smith, Mark E.

AU - Mutin, P. Hubert

AU - Van Der Lee, Arie

AU - Nedelec, Jean-marie

AU - Bonhomme, Christian

AU - Laurencin, Danielle

PY - 2015/2/24

Y1 - 2015/2/24

N2 - Benzoxaboroles are a family of cyclic derivatives of boronic acids, whose reactivity makes them interesting candidates for the development of novel drugs. In this study, we describe the preparation of the first hybrid organic–inorganic materials involving benzoxaboroles, as a first step toward their use as new formulations for such drugs. The materials were prepared by intercalation of the simplest benzoxaborole (C7H6BO(OH), BBzx) or of its fluorinated analogue (C7H5FBO(OH), AN2690, a recently developed antifungal drug), both taken under their anionic form (benzoxaborolate), into a biodegradable inorganic matrix (a Mg–Al layered double hydroxide). Extensive characterization was carried out on the materials, notably by powder X-ray diffraction and multinuclear (11B, 27Al, 13C, 19F, 25Mg, and 1H) solid state NMR, in order to describe their structure, particularly in the vicinity of the organoboron species. Three crystalline phases involving benzoxaborolate anions in association with Ca2+ or Mg2+ cations were also prepared as part of this work (Mg(C7H6BO(OH)2)2·10H2O, Mg(C7H6BO(OH)2)2·7H2O and Ca3(C7H6BO(OH)2)5(C7H6BO2)·3H2O), in order to assist in the interpretation of the spectroscopic data. A DFT computational model of the interlayer space was proposed, which is consistent with the experimental observations. Several properties of the materials were then determined with a view of using them as part of novel formulations, namely the maximum loading capacity toward benzoxaborol(at)es, the optimal storage conditions, and the release kinetics in simulated physiological media. All in all, this study serves as a benchmark not only for the development of novel formulations for benzoxaborole drugs, but more generally for the preparation of a novel class of organic–inorganic materials involving benzoxaborol(at)es.

AB - Benzoxaboroles are a family of cyclic derivatives of boronic acids, whose reactivity makes them interesting candidates for the development of novel drugs. In this study, we describe the preparation of the first hybrid organic–inorganic materials involving benzoxaboroles, as a first step toward their use as new formulations for such drugs. The materials were prepared by intercalation of the simplest benzoxaborole (C7H6BO(OH), BBzx) or of its fluorinated analogue (C7H5FBO(OH), AN2690, a recently developed antifungal drug), both taken under their anionic form (benzoxaborolate), into a biodegradable inorganic matrix (a Mg–Al layered double hydroxide). Extensive characterization was carried out on the materials, notably by powder X-ray diffraction and multinuclear (11B, 27Al, 13C, 19F, 25Mg, and 1H) solid state NMR, in order to describe their structure, particularly in the vicinity of the organoboron species. Three crystalline phases involving benzoxaborolate anions in association with Ca2+ or Mg2+ cations were also prepared as part of this work (Mg(C7H6BO(OH)2)2·10H2O, Mg(C7H6BO(OH)2)2·7H2O and Ca3(C7H6BO(OH)2)5(C7H6BO2)·3H2O), in order to assist in the interpretation of the spectroscopic data. A DFT computational model of the interlayer space was proposed, which is consistent with the experimental observations. Several properties of the materials were then determined with a view of using them as part of novel formulations, namely the maximum loading capacity toward benzoxaborol(at)es, the optimal storage conditions, and the release kinetics in simulated physiological media. All in all, this study serves as a benchmark not only for the development of novel formulations for benzoxaborole drugs, but more generally for the preparation of a novel class of organic–inorganic materials involving benzoxaborol(at)es.

U2 - 10.1021/cm504181w

DO - 10.1021/cm504181w

M3 - Journal article

VL - 27

SP - 1242

EP - 1254

JO - Chemistry of Materials

JF - Chemistry of Materials

SN - 0897-4756

IS - 4

ER -