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      Mesoporous silica with precisely controlled pores reduces food efficiency and suppresses weight gain in mice

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          Abstract

          Aim: Obesity is a risk factor for cardiovascular disease and diabetes. We aimed to elucidate the effects of distinct mesoporous silica particles (MSPs) supplemented in food on metabolic parameters in obesity. Materials & methods: MSPs with precisely controlled pore size were synthesized, characterized and compared with a control in a C57Bl/6 mouse diet-induced obesity model, studying weight, adiposity, metabolic regulation and food efficiency. Results: The most effective MSPs reduced adipose tissue formation to 6.5 ± 0.5 g compared with 9.4 ± 1.2 g, leptin levels nearly halved from 32.8 ± 7.4 to 16.9 ± 1.9 ng/ml and a 33% reduction of food efficiency. Control MSP showed no effects. Conclusion: Results demonstrate potential of distinct MSPs to improve metabolic risk factors. Further studies investigating mechanism of action and confirming human safety are needed.

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          Most cited references26

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          Nonionic Triblock and Star Diblock Copolymer and Oligomeric Surfactant Syntheses of Highly Ordered, Hydrothermally Stable, Mesoporous Silica Structures

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            Triblock Copolymer Syntheses of Mesoporous Silica with Periodic 50 to 300 Angstrom Pores

            D. Zhao (1998)
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              Mesoporous materials for drug delivery.

              Research on mesoporous materials for biomedical purposes has experienced an outstanding increase during recent years. Since 2001, when MCM-41 was first proposed as drug-delivery system, silica-based materials, such as SBA-15 or MCM-48, and some metal-organic frameworks have been discussed as drug carriers and controlled-release systems. Mesoporous materials are intended for both systemic-delivery systems and implantable local-delivery devices. The latter application provides very promising possibilities in the field of bone-tissue repair because of the excellent behavior of these materials as bioceramics. This Minireview deals with the advances in this field by the control of the textural parameters, surface functionalization, and the synthesis of sophisticated stimuli-response systems.
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                Author and article information

                Journal
                Nanomedicine
                Nanomedicine
                Future Medicine Ltd
                1743-5889
                1748-6963
                January 14 2020
                Affiliations
                [1 ]Department of Molecular Biosciences, The Wenner-Gren Institute, Stockholm University, SE-106 91, Stockholm, Sweden
                [2 ]Department of Material Chemistry, Stockholm University, SE-106 91, Stockholm, Sweden
                [3 ]Sigrid Therapeutics AB, Sankt Göransgatan 159, SE-112 17, Stockholm, Sweden
                Article
                10.2217/nnm-2019-0262
                31933414
                5225c7a7-1620-45c5-9b07-21b5c5a7302e
                © 2020
                History

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