Accès gratuit
Numéro |
Med Sci (Paris)
Volume 26, Numéro 8-9, Août-Septembre 2010
|
|
---|---|---|
Page(s) | 761 - 767 | |
Section | Dossier technique | |
DOI | https://doi.org/10.1051/medsci/2010268-8761 | |
Publié en ligne | 15 août 2010 |
- Peer D, Karp JM, Hong S, et al. Nanocarriers as an emerging platform for cancer therapy. Nat Nanotechnol 2007 ; 2 : 751-60. [Google Scholar]
- Couvreur P, Gref R, Andrieux K, Malvy C. Nanotechnology for drug delivery: Applications to cancer and autoimmune diseases. Prog Solid State Chem 2006 ; 34 : 231-5. [Google Scholar]
- Gref R, Minamitake Y, Peracchia MT, et al. Biodegradable long-circulating polymeric nanospheres. Science 1994 ; 263 : 1600-3. [Google Scholar]
- Gabizon A. Stealth liposomes and tumor targeting: One step further in the quest for the magic bullet. Clin Cancer Res 2001 ; 7 : 223-5. [Google Scholar]
- Hasan AS, Socha M, Lamprecht A, et al. Effect of the microencapsulation of nanoparticles on the reduction of burst release. Int J Pharm 2007 ; 344 : 53-61. [Google Scholar]
- Gref R, Minamitake Y, Peracchia MT, et al. Biodegradable long-circulating polymeric nanospheres. Science 1994 ; 263 : 1600-3. [Google Scholar]
- Couvreur P, Stella B, Reddy LH, et al. Squalenoyl nanomedicines as potential therapeutics Nano Lett 2006 ; 6 : 2544-8. [Google Scholar]
- Férey G. Hybrid porous solids: past, present, future. Chem Soc Rev 2008 ; 37 : 191-241. [Google Scholar]
- Férey G, Serre C. Large breathing effects in three-dimensional porous hybrid matter: facts, analyses, rules and consequences. Chem Soc Rev 2009 ; 38 :1380-99. [Google Scholar]
- Llewellyn PL, Bourrelly S, Serre C, et al. High uptakes of CO2 and CH4 in mesoporous metal organic frameworks MIL-100 and MIL-101. Langmuir 2008 ; 24 : 7245-50. [Google Scholar]
- Horcajada P, Serre C, Vallet-Regf M, et al. Metal_organic frameworks as efficient materials for drug delivery. Angew Chem Int Ed Engl 2006 ; 45 : 5974-8. [Google Scholar]
- Horcajada P, Serre C, Maurin G, et al. Flexible porous metal organic frameworks for a controlled drug delivery. J Am Chem Soc 2008 ; 130 : 6774-80. [Google Scholar]
- Horcajada P, Serre C, Gref R, et al. Nanoparticules hybrides organiques inorganiques à base de carboxylates de fer. PCT applications PCT/FR2008/001366, 1er octobre 2008. [Google Scholar]
- Horcajada P, Serre C, Gref R, et al. Solides hybrides organique-inorganique à surface modifiée. PCT applications PCT/FR2008/001367, 1er octobre 2008. [Google Scholar]
- Sheftel VO. Indirect food additives and polymers: migration and toxicology. Boca Raton : Lewis Publishers, 2000 : 148-54. [Google Scholar]
- http://www.chem.unep.ch/irptc/sids/0ECDSIDS/100-21-0.pdf> (2008). [Google Scholar]
- http://www.chemicalland21.com/specialtychem/perchem/TRIMESIC %20ACID.htm> (2008). [Google Scholar]
- http://www.sciencelab.com/xMSDS-Fumaric_acid-9927173> (2008). [Google Scholar]
- Mosmann T. Rapid colorimetric assay for cellular growth and survival: application to proliferation and cytotoxicity assays. J Immunol Methods 1983 ; 65 : 55-63. [Google Scholar]
- Vauthier C, Dubernet C, Chauvierre C, et al. Drug delivery to resistant tumors: the potential of poly(alkyl cyanoacrylate) nanoparticles. J Control Release 2003 ; 93 : 151-60. [Google Scholar]
- Vassal G, Deroussent A, Challine D, et al. Is 600mg.m−2 the appropriate dosage of busulfan in children undergoing bone marrow transplantation? Blood 1992 ; 79 : 2475-9. [Google Scholar]
- Vassal G, Gouyette A, Hartmann O, et al. Pharmacokinetics of high-dose busulfan in children. Cancer Chemother Pharmacol 1989 ; 24 : 386-90. [Google Scholar]
- Slattery JT, Sanders JE, Buckner CD, et al. Graft-rejection and toxicity following bone marrow transplantation in relation to busulfan pharmacokinetics. Bone Marrow Transplant 1995 ; 16 : 31-42. [Google Scholar]
- Layre A, Gref R, Richard J, et al. Nanoparticules polymériques composites. FR 04 07569, 7 juillet 2004. [Google Scholar]
- Hassan Z, Nilsson C, Hassan M. Liposomal busulphan: bioavailability and effect on bone marrow in mice. Bone Marrow Transplant 1998 ; 22 : 913-8. [Google Scholar]
- Thierry AR, Vigé D, Coughlin SS, et al. Modulation of doxorubicin resistance in multidrug-resistant cells by liposomes. FASEB J 1993 ; 7 : 572-9. [Google Scholar]
- Loke SL, Stein CA, Zhang XH, et al. Characterization of oligonucleotide transport into living cells. Proc Natl Acad Sci USA 1989 ; 86 : 3474-8. [Google Scholar]
- Kukhanova M, Krayevsky A, Prusoff W, Cheng YC. Design of anti-HIV compounds: From nucleoside to nucleoside 50-triphosphate analogs. Problems and perspectives. Curr Pharm Des 2000 ; 6 : 585-98. [Google Scholar]
- Hillaireau H, Le Doan T, Besnard M, et al. Encapsulation of antiviral nucleotide analogues azidothymidine-triphosphate and cidofovir in poly(isobutyl cyanoacrylate) nanocapsules. Int J Pharm 2006 ; 324 : 37-42. [Google Scholar]
- Taylor KM, Jin A, Lin W. Surfactant-assisted synthesis of nanoscale gadolinium metal_organic-framework for potential multimodal imaging. Angew Chem Int Ed Engl 2008 ; 47 : 7722-5. [Google Scholar]
- Horcajada P, Chalati T, Serre C, et al. Porous metal-organic framework nanoscale carriers as a potential platform for drug delivery and imaging. Nat Mater 2010 ; 9 : 172-8. [Google Scholar]
Les statistiques affichées correspondent au cumul d'une part des vues des résumés de l'article et d'autre part des vues et téléchargements de l'article plein-texte (PDF, Full-HTML, ePub... selon les formats disponibles) sur la platefome Vision4Press.
Les statistiques sont disponibles avec un délai de 48 à 96 heures et sont mises à jour quotidiennement en semaine.
Le chargement des statistiques peut être long.