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Erschienen in: Journal of Nanoparticle Research 7/2013

01.07.2013 | Review

Biodegradable nanoparticles for gene therapy technology

verfasst von: Hossein Hosseinkhani, Wen-Jie He, Chiao-Hsi Chiang, Po-Da Hong, Dah-Shyong Yu, Abraham J. Domb, Keng-Liang Ou

Erschienen in: Journal of Nanoparticle Research | Ausgabe 7/2013

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Abstract

Rapid propagations in materials technology together with biology have initiated great hopes in the possibility of treating many diseases by gene therapy technology. Viral and non-viral gene carriers are currently applied for gene delivery. Non-viral technology is safe and effective for the delivery of genetic materials to cells and tissues. Non-viral systems are based on plasmid expression containing a gene encoding a therapeutic protein and synthetic biodegradable nanoparticles as a safe carrier of gene. Biodegradable nanoparticles have shown great interest in drug and gene delivery systems as they are easy to be synthesized and have no side effect in cells and tissues. This review provides a critical view of applications of biodegradable nanoparticles on gene therapy technology to enhance the localization of in vitro and in vivo and improve the function of administered genes.

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Literatur
Zurück zum Zitat Abdullah S, Yeo WY, Hosseinkhani H, Hosseinkhani M, Masrawa E, Ramasamy R, Rosli R, Rahman SA, Domb AJ (2010) Gene transfer into the lung by nanoparticle dextran–spermine/plasmid DNA complexes. J Biomed Biotechnol 2010:1–10CrossRef Abdullah S, Yeo WY, Hosseinkhani H, Hosseinkhani M, Masrawa E, Ramasamy R, Rosli R, Rahman SA, Domb AJ (2010) Gene transfer into the lung by nanoparticle dextran–spermine/plasmid DNA complexes. J Biomed Biotechnol 2010:1–10CrossRef
Zurück zum Zitat Abedini F, Ismail M, Hosseinkhani H, Azmi T, Omar A, PeiPei C, Ismail N, Farber IY, Domb AJ (2010) Toxicity evaluation of dextran–spermine polycation as a tool for gene therapy in vitro. J Cell Animal Biol 4:170–176 Abedini F, Ismail M, Hosseinkhani H, Azmi T, Omar A, PeiPei C, Ismail N, Farber IY, Domb AJ (2010) Toxicity evaluation of dextran–spermine polycation as a tool for gene therapy in vitro. J Cell Animal Biol 4:170–176
Zurück zum Zitat Abedini F, Hosseinkhani H, Ismail M, Chen YR, Omar AR, Pei Pei C, Domb AJ (2011a) In vitro intracellular trafficking of biodegradable nanoparticles of dextran–spermine in cancer cell lines. Int J Nanotechnol 8:712–723CrossRef Abedini F, Hosseinkhani H, Ismail M, Chen YR, Omar AR, Pei Pei C, Domb AJ (2011a) In vitro intracellular trafficking of biodegradable nanoparticles of dextran–spermine in cancer cell lines. Int J Nanotechnol 8:712–723CrossRef
Zurück zum Zitat Abedini F, Ismail M, Hosseinkhani H, Ibrahim TA, Omar AR, Chong PP, Bejo MH, Domb AJ (2011b) Effects of CXCR4 siRNA/dextran–spermine nanoparticles on CXCR4 expression and serum LDH levels in a mouse model of colorectal cancer metastasis to the liver. Cancer Manag Res 3:301–309 Abedini F, Ismail M, Hosseinkhani H, Ibrahim TA, Omar AR, Chong PP, Bejo MH, Domb AJ (2011b) Effects of CXCR4 siRNA/dextran–spermine nanoparticles on CXCR4 expression and serum LDH levels in a mouse model of colorectal cancer metastasis to the liver. Cancer Manag Res 3:301–309
Zurück zum Zitat Abedini F, Hosseinkhani H, Ismail M, Domb AJ, Omar AR, Pei Pei C, Hong PD, Yu DS, Farber IV (2012) Cationized dextran nanoparticles-encapsulated CXCR4–siRNA enhanced correlation between CXCR4 expression and serum ALP in colorectal cancer. Int J Nanomed 7:4159–4168 Abedini F, Hosseinkhani H, Ismail M, Domb AJ, Omar AR, Pei Pei C, Hong PD, Yu DS, Farber IV (2012) Cationized dextran nanoparticles-encapsulated CXCR4–siRNA enhanced correlation between CXCR4 expression and serum ALP in colorectal cancer. Int J Nanomed 7:4159–4168
Zurück zum Zitat Amini R, Hosseinkhani H, Jalilian A, Abdullah S, Rosli R (2012) Engineered smart biomaterials for gene delivery. Gene Ther Mol Biol 14:72–86 Amini R, Hosseinkhani H, Jalilian A, Abdullah S, Rosli R (2012) Engineered smart biomaterials for gene delivery. Gene Ther Mol Biol 14:72–86
Zurück zum Zitat Aoyama T, Hosseinkhani H, Yamamoto S, Ogawa O, Tabata Y (2002) Enhanced expression of plasmid DNA-cationized gelatin complex by ultrasound in murine muscle. J Control Release 80:345–356CrossRef Aoyama T, Hosseinkhani H, Yamamoto S, Ogawa O, Tabata Y (2002) Enhanced expression of plasmid DNA-cationized gelatin complex by ultrasound in murine muscle. J Control Release 80:345–356CrossRef
Zurück zum Zitat Atkins RL, Wang D, Burke RD (2000) Localized electroporation: a method for targeting expression of genes in avian embryos. Biotechniques 28:94–96, 98, 100 Atkins RL, Wang D, Burke RD (2000) Localized electroporation: a method for targeting expression of genes in avian embryos. Biotechniques 28:94–96, 98, 100
Zurück zum Zitat Banan M, Puri N (2004) The ins and outs of RNAi in mammalian cells. Curr Pharm Biotechnol 5:441–450CrossRef Banan M, Puri N (2004) The ins and outs of RNAi in mammalian cells. Curr Pharm Biotechnol 5:441–450CrossRef
Zurück zum Zitat Breunig M, Lungwitz U, Liebl R, Fontanari C, Klar J, Kurtz A, Blunk T, Goepferich A (2005) Gene delivery with low molecular weight linear polyethylenimines. J Gene Med 7:1287–1298CrossRef Breunig M, Lungwitz U, Liebl R, Fontanari C, Klar J, Kurtz A, Blunk T, Goepferich A (2005) Gene delivery with low molecular weight linear polyethylenimines. J Gene Med 7:1287–1298CrossRef
Zurück zum Zitat Chandy T, Sharma CP (1990) Chitosan: as a Biomaterial. Biomater Artif Cells Artif Organs 18:1–24 Chandy T, Sharma CP (1990) Chitosan: as a Biomaterial. Biomater Artif Cells Artif Organs 18:1–24
Zurück zum Zitat Chen TH, Yeh CT, Ho YP, Hsu CM, Huang CC, Shiau SS, Liang CK, Chang ML (2009) Hydrodynamics-based transfection of pancreatic duodenal homeobox 1 DNA improves hyperglycemia and is associated with limited complications in diabetic mice. Endocr J 56:783–790CrossRef Chen TH, Yeh CT, Ho YP, Hsu CM, Huang CC, Shiau SS, Liang CK, Chang ML (2009) Hydrodynamics-based transfection of pancreatic duodenal homeobox 1 DNA improves hyperglycemia and is associated with limited complications in diabetic mice. Endocr J 56:783–790CrossRef
Zurück zum Zitat de la Fuente M, Seijo B, Alonso MJ (2008) Novel hyaluronic acid–chitosan nanoparticles for ocular gene therapy. Invest Ophthalmol Vis Sci 49:2016–2024CrossRef de la Fuente M, Seijo B, Alonso MJ (2008) Novel hyaluronic acid–chitosan nanoparticles for ocular gene therapy. Invest Ophthalmol Vis Sci 49:2016–2024CrossRef
Zurück zum Zitat Elangovan S, Jain S, Tsai PC, Margolis HC, Amiji M (2012) Nano-sized calcium phosphate particles for periodontal gene therapy. J Periodontol 84:117–125CrossRef Elangovan S, Jain S, Tsai PC, Margolis HC, Amiji M (2012) Nano-sized calcium phosphate particles for periodontal gene therapy. J Periodontol 84:117–125CrossRef
Zurück zum Zitat Elbashir SM, Harborth J, Lendeckel W, Yalcin A, Weber K, Tuschl T (2001) Duplexes of 21-nucleotide RNAs mediate RNA interference in cultured mammalian cells. Nature 411:494–498CrossRef Elbashir SM, Harborth J, Lendeckel W, Yalcin A, Weber K, Tuschl T (2001) Duplexes of 21-nucleotide RNAs mediate RNA interference in cultured mammalian cells. Nature 411:494–498CrossRef
Zurück zum Zitat Eliyahu H, Joseph A, Schillemans JP, Azzam T, Domb AJ, Barenholz Y (2007) Characterization and in vivo performance of dextran–spermine polyplexes and DOTAP/cholesterol lipoplexes administered locally and systemically. Biomaterials 28:2339–2349CrossRef Eliyahu H, Joseph A, Schillemans JP, Azzam T, Domb AJ, Barenholz Y (2007) Characterization and in vivo performance of dextran–spermine polyplexes and DOTAP/cholesterol lipoplexes administered locally and systemically. Biomaterials 28:2339–2349CrossRef
Zurück zum Zitat Gaucheron J, Santaella C, Vierling P (2002) Transfection with fluorinated lipoplexes based on fluorinated analogues of DOTMA, DMRIE and DPPES. Biochim Biophys Acta 1564:349–358CrossRef Gaucheron J, Santaella C, Vierling P (2002) Transfection with fluorinated lipoplexes based on fluorinated analogues of DOTMA, DMRIE and DPPES. Biochim Biophys Acta 1564:349–358CrossRef
Zurück zum Zitat Hashida M, Takemura S, Nishikawa M, Takakura Y (1998) Targeted delivery of plasmid DNA complexed with galactosylated poly(l-lysine). J Control Release 53:301–310CrossRef Hashida M, Takemura S, Nishikawa M, Takakura Y (1998) Targeted delivery of plasmid DNA complexed with galactosylated poly(l-lysine). J Control Release 53:301–310CrossRef
Zurück zum Zitat Hernot S, Klibanov AL (2008) Microbubbles in ultrasound-triggered drug and gene delivery. Adv Drug Deliv Rev 60:1153–1166CrossRef Hernot S, Klibanov AL (2008) Microbubbles in ultrasound-triggered drug and gene delivery. Adv Drug Deliv Rev 60:1153–1166CrossRef
Zurück zum Zitat Hosseinkhani H (2006) DNA nanoparticles for gene delivery to cells and tissue. Int J Nanotechnol 3:416–461CrossRef Hosseinkhani H (2006) DNA nanoparticles for gene delivery to cells and tissue. Int J Nanotechnol 3:416–461CrossRef
Zurück zum Zitat Hosseinkhani H (2011) Editorial: on nanomedicine. Int J Nanotechnol 8:615–617 Hosseinkhani H (2011) Editorial: on nanomedicine. Int J Nanotechnol 8:615–617
Zurück zum Zitat Hosseinkhani H (2012) 3D in vitro technology for drug discovery. Curr Drug Saf 7:37–43CrossRef Hosseinkhani H (2012) 3D in vitro technology for drug discovery. Curr Drug Saf 7:37–43CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M (2008a) Suppression effect of basic fibroblast growth factor on mesenchymal stem cell proliferation activity; part I: release characteristics. Chem Today 26:30–32 Hosseinkhani H, Hosseinkhani M (2008a) Suppression effect of basic fibroblast growth factor on mesenchymal stem cell proliferation activity; part I: release characteristics. Chem Today 26:30–32
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M (2008b) Suppression effect of basic fibroblast growth factor on mesenchymal stem cell proliferation activity; part II: biological characteristics. Chem Today 26:35–37 Hosseinkhani H, Hosseinkhani M (2008b) Suppression effect of basic fibroblast growth factor on mesenchymal stem cell proliferation activity; part II: biological characteristics. Chem Today 26:35–37
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M (2009) Biodegradable polymer–metal complexes for gene and drug delivery. Curr Drug Saf 4:79–83CrossRef Hosseinkhani H, Hosseinkhani M (2009) Biodegradable polymer–metal complexes for gene and drug delivery. Curr Drug Saf 4:79–83CrossRef
Zurück zum Zitat Hosseinkhani H, Tabata Y (2003) In vitro gene expression by cationized derivatives of an artificial protein with repeated RGD sequences, Pronectin®. J Control Release 86:169–182CrossRef Hosseinkhani H, Tabata Y (2003) In vitro gene expression by cationized derivatives of an artificial protein with repeated RGD sequences, Pronectin®. J Control Release 86:169–182CrossRef
Zurück zum Zitat Hosseinkhani H, Tabata Y (2004) PEGylation enhances tumor targeting of plasmid DNA by an artificial cationized protein with repeated RGD sequences, Pronectin®. J Control Release 97:157–171CrossRef Hosseinkhani H, Tabata Y (2004) PEGylation enhances tumor targeting of plasmid DNA by an artificial cationized protein with repeated RGD sequences, Pronectin®. J Control Release 97:157–171CrossRef
Zurück zum Zitat Hosseinkhani H, Tabata Y (2005) Ultrasound enhances in vivo tumor expression of plasmid DNA by PEG-introduced cationized dextran. J Control Release 108:540–556CrossRef Hosseinkhani H, Tabata Y (2005) Ultrasound enhances in vivo tumor expression of plasmid DNA by PEG-introduced cationized dextran. J Control Release 108:540–556CrossRef
Zurück zum Zitat Hosseinkhani H, Tabata Y (2006) Self assembly of DNA nanoparticles with polycations for the delivery of genetic materials into cells. J Nanosci Nanotechnol 6:2320–2328CrossRef Hosseinkhani H, Tabata Y (2006) Self assembly of DNA nanoparticles with polycations for the delivery of genetic materials into cells. J Nanosci Nanotechnol 6:2320–2328CrossRef
Zurück zum Zitat Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2001) In vitro transfection of plasmid DNA by different-cationized gelatin with or without ultrasound irradiation. Proc Jpn Acad Ser B 77:161–166CrossRef Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2001) In vitro transfection of plasmid DNA by different-cationized gelatin with or without ultrasound irradiation. Proc Jpn Acad Ser B 77:161–166CrossRef
Zurück zum Zitat Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2002a) Ultrasound enhancement of in vitro transfection of plasmid DNA by a cationized gelatin. J Drug Target 10:193–204CrossRef Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2002a) Ultrasound enhancement of in vitro transfection of plasmid DNA by a cationized gelatin. J Drug Target 10:193–204CrossRef
Zurück zum Zitat Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2002b) In vitro transfection of plasmid DNA by amine derivatives of gelatin accompanied with ultrasound irradiation. Pharm Res 19:1469–1477CrossRef Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2002b) In vitro transfection of plasmid DNA by amine derivatives of gelatin accompanied with ultrasound irradiation. Pharm Res 19:1469–1477CrossRef
Zurück zum Zitat Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2002c) Liver targeting of plasmid DNA by pullulan conjugation based on metal coordination. J Control Release 83:287–302CrossRef Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2002c) Liver targeting of plasmid DNA by pullulan conjugation based on metal coordination. J Control Release 83:287–302CrossRef
Zurück zum Zitat Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2003a) Tumor targeting of gene expression by dextran conjugation based on metal coordination. J Control Release 88:297–312CrossRef Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2003a) Tumor targeting of gene expression by dextran conjugation based on metal coordination. J Control Release 88:297–312CrossRef
Zurück zum Zitat Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2003b) Ultrasound enhances the transfection of plasmid DNA by non-viral vectors. Curr Pharm Biotechnol 4:109–122CrossRef Hosseinkhani H, Aoyama T, Ogawa O, Tabata Y (2003b) Ultrasound enhances the transfection of plasmid DNA by non-viral vectors. Curr Pharm Biotechnol 4:109–122CrossRef
Zurück zum Zitat Hosseinkhani H, Azzam T, Tabata Y, Domb AJ (2004) Dextran–spermine polycation: an efficient nonviral vector for in vitro and in vivo gene transfection. Gene Ther 11:194–203CrossRef Hosseinkhani H, Azzam T, Tabata Y, Domb AJ (2004) Dextran–spermine polycation: an efficient nonviral vector for in vitro and in vivo gene transfection. Gene Ther 11:194–203CrossRef
Zurück zum Zitat Hosseinkhani H, Inatsugu Y, Hiraoka Y, Inoue S, Shimokawa H, Tabata Y (2005a) Impregnation of plasmid DNA into 3-D scaffold and medium perfusion enhance in vitro DNA expression of mesenchymal stem cells. Tissue Eng 11:1459–1475CrossRef Hosseinkhani H, Inatsugu Y, Hiraoka Y, Inoue S, Shimokawa H, Tabata Y (2005a) Impregnation of plasmid DNA into 3-D scaffold and medium perfusion enhance in vitro DNA expression of mesenchymal stem cells. Tissue Eng 11:1459–1475CrossRef
Zurück zum Zitat Hosseinkhani H, Inatsugu Y, Hiraoka Y, Inoue S, Tabata Y (2005b) Perfusion culture enhances osteogenic differentiation of rat mesenchymal stem cells in collagen sponge reinforced with poly (glycolic acid) fiber. Tissue Eng 11:1476–1488CrossRef Hosseinkhani H, Inatsugu Y, Hiraoka Y, Inoue S, Tabata Y (2005b) Perfusion culture enhances osteogenic differentiation of rat mesenchymal stem cells in collagen sponge reinforced with poly (glycolic acid) fiber. Tissue Eng 11:1476–1488CrossRef
Zurück zum Zitat Hosseinkhani H, Azzam T, Kobayashi H, Hiraoka Y, Shimokawa H, Domb AJ, Tabata Y (2006a) Combination of 3D tissue engineered scaffold and non-viral gene carrier enhance in vitro DNA expression of mesenchymal stem cells. Biomaterials 27:4269–4278CrossRef Hosseinkhani H, Azzam T, Kobayashi H, Hiraoka Y, Shimokawa H, Domb AJ, Tabata Y (2006a) Combination of 3D tissue engineered scaffold and non-viral gene carrier enhance in vitro DNA expression of mesenchymal stem cells. Biomaterials 27:4269–4278CrossRef
Zurück zum Zitat Hosseinkhani H, Kushibiki T, Matsumoto K, Nakamura T, Tabata Y (2006b) Enhanced suppression of tumor growth using a combination of NK4 plasmid DNA–PEG engrafted cationized dextran complex and ultrasound irradiation. Cancer Gene Ther 13:479–489CrossRef Hosseinkhani H, Kushibiki T, Matsumoto K, Nakamura T, Tabata Y (2006b) Enhanced suppression of tumor growth using a combination of NK4 plasmid DNA–PEG engrafted cationized dextran complex and ultrasound irradiation. Cancer Gene Ther 13:479–489CrossRef
Zurück zum Zitat Hosseinkhani H, Yamamoto M, Inatsugu Y, Hiraoka Y, Inoue S, Shimokawa S, Tabata Y (2006c) Enhanced ectopic bone formation using combination of impregnation of plasmid DNA into 3-D scaffold and bioreactor perfusion culture. Biomaterials 27:1387–1398CrossRef Hosseinkhani H, Yamamoto M, Inatsugu Y, Hiraoka Y, Inoue S, Shimokawa S, Tabata Y (2006c) Enhanced ectopic bone formation using combination of impregnation of plasmid DNA into 3-D scaffold and bioreactor perfusion culture. Biomaterials 27:1387–1398CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2006d) Osteogenic differentiation of mesenchymal stem cells in self assembled-peptide amphiphile nanofibers. Biomaterials 27:4079–4086CrossRef Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2006d) Osteogenic differentiation of mesenchymal stem cells in self assembled-peptide amphiphile nanofibers. Biomaterials 27:4079–4086CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2006e) Ectopic bone formation in collagen sponge-self assembled peptide amphiphile nanofibers hybrid scaffold in a perfusion culture bioreactor. Biomaterials 27:5089–5098CrossRef Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2006e) Ectopic bone formation in collagen sponge-self assembled peptide amphiphile nanofibers hybrid scaffold in a perfusion culture bioreactor. Biomaterials 27:5089–5098CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Kobayashi H, Tabata Y (2006f) Enhanced angiogenesis through controlled release of basic fibroblast growth factor from peptide amphiphile for tissue regeneration. Biomaterials 27:5836–5844CrossRef Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Kobayashi H, Tabata Y (2006f) Enhanced angiogenesis through controlled release of basic fibroblast growth factor from peptide amphiphile for tissue regeneration. Biomaterials 27:5836–5844CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Kobayashi H (2006g) Proliferation and differentiation of mesenchymal stem cells by using self assembly of peptide-amphiphile nanofibers. Biomed Mater 1:8–15CrossRef Hosseinkhani H, Hosseinkhani M, Kobayashi H (2006g) Proliferation and differentiation of mesenchymal stem cells by using self assembly of peptide-amphiphile nanofibers. Biomed Mater 1:8–15CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Kobayashi H (2006h) Design of tissue engineered nanoscaffold through self assembly of peptide amphiphile. J Bioact Compat Polym 21:277–296CrossRef Hosseinkhani H, Hosseinkhani M, Kobayashi H (2006h) Design of tissue engineered nanoscaffold through self assembly of peptide amphiphile. J Bioact Compat Polym 21:277–296CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Khademhosseini A (2006i) Emerging applications of hydrogels and microscale technologies in drug discovery. Drug Discov 1:32–34 Hosseinkhani H, Hosseinkhani M, Khademhosseini A (2006i) Emerging applications of hydrogels and microscale technologies in drug discovery. Drug Discov 1:32–34
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Khademhosseini A (2006j) Tissue regeneration through self-assembled peptide amphiphile nanofibers. Yakhte Med J 8:204–209 Hosseinkhani H, Hosseinkhani M, Khademhosseini A (2006j) Tissue regeneration through self-assembled peptide amphiphile nanofibers. Yakhte Med J 8:204–209
Zurück zum Zitat Hosseinkhani H, Kobayashi H, Tabata Y (2006k) Design of tissue-engineered nano-scaffold using peptide-amphiphile for regenerative medicine. Pept Sci 2005:341–344 Hosseinkhani H, Kobayashi H, Tabata Y (2006k) Design of tissue-engineered nano-scaffold using peptide-amphiphile for regenerative medicine. Pept Sci 2005:341–344
Zurück zum Zitat Hosseinkhani H, Kobayashi H, Tabata Y (2006l) Selective differentiation cardiomyocyte cells by using peptide-amphiphile nanofibers. Pept Sci 2005:63–66 Hosseinkhani H, Kobayashi H, Tabata Y (2006l) Selective differentiation cardiomyocyte cells by using peptide-amphiphile nanofibers. Pept Sci 2005:63–66
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2007a) Bone regeneration on a collagen sponge-self assembled peptide-amphiphile nanofibers hybrid scaffold. Tissue Eng 13:1–9CrossRef Hosseinkhani H, Hosseinkhani M, Tian F, Kobayashi H, Tabata Y (2007a) Bone regeneration on a collagen sponge-self assembled peptide-amphiphile nanofibers hybrid scaffold. Tissue Eng 13:1–9CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Kobayashi H (2007b) Bone regeneration through controlled release of bone morphogenetic protein-2 from 3-D tissue engineered nano-scaffold. J Control Release 117:380–386CrossRef Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Kobayashi H (2007b) Bone regeneration through controlled release of bone morphogenetic protein-2 from 3-D tissue engineered nano-scaffold. J Control Release 117:380–386CrossRef
Zurück zum Zitat Hosseinkhani M, Hosseinkhani H, Khademhosseini A, Bolland F, Kobayashi H, Prat S (2007c) Bone morphogenetic protein-4 enhances cardiomyocytes differentiation of cynomolgus monkey ES cells in knockout serum replacement medium. Stem Cells 25:571–580CrossRef Hosseinkhani M, Hosseinkhani H, Khademhosseini A, Bolland F, Kobayashi H, Prat S (2007c) Bone morphogenetic protein-4 enhances cardiomyocytes differentiation of cynomolgus monkey ES cells in knockout serum replacement medium. Stem Cells 25:571–580CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Gabrielson NP, Pack DW, Kobayashi H (2008) DNA nanoparticles encapsulated in 3-D tissue engineered scaffold enhance osteogenic differentiation of mesenchymal stem cells. J Biomed Mater Res A 85:47–60 Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Gabrielson NP, Pack DW, Kobayashi H (2008) DNA nanoparticles encapsulated in 3-D tissue engineered scaffold enhance osteogenic differentiation of mesenchymal stem cells. J Biomed Mater Res A 85:47–60
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Vasheghani E, Nekoomanesh M (2009) In vitro sustained release and degradation study of biodegradable poly (d,l-lactic acid) microspheres loading theophylline. Adv Sci Lett 2:70–77CrossRef Hosseinkhani H, Hosseinkhani M, Vasheghani E, Nekoomanesh M (2009) In vitro sustained release and degradation study of biodegradable poly (d,l-lactic acid) microspheres loading theophylline. Adv Sci Lett 2:70–77CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Hattori S, Matsuoka R, Kawaguchi N (2010) Micro and nanoscale in vitro 3D culture system for cardiac stem cells. J Biomed Mater Res A 94:1–8 Hosseinkhani H, Hosseinkhani M, Hattori S, Matsuoka R, Kawaguchi N (2010) Micro and nanoscale in vitro 3D culture system for cardiac stem cells. J Biomed Mater Res A 94:1–8
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M, Chen YR, Subramani K, Domb AJ (2011a) Innovative technology of engineering magnetic DNA nanoparticles for gene therapy. Int J Nanotechnol 8:724–735CrossRef Hosseinkhani H, Hosseinkhani M, Chen YR, Subramani K, Domb AJ (2011a) Innovative technology of engineering magnetic DNA nanoparticles for gene therapy. Int J Nanotechnol 8:724–735CrossRef
Zurück zum Zitat Hosseinkhani M, Hosseinkhani H, Chen YR, Subramani K (2011b) In vitro physicochemical evaluation of DNA nanoparticles. Int J Nanotechnol 8:736–748CrossRef Hosseinkhani M, Hosseinkhani H, Chen YR, Subramani K (2011b) In vitro physicochemical evaluation of DNA nanoparticles. Int J Nanotechnol 8:736–748CrossRef
Zurück zum Zitat Hosseinkhani H, Hong PD, Yu DS, Chen YR, Farber IV, Domb AJ (2012) Development of 3D in vitro platform technology to engineer mesenchymal stem cells. Int J Nanomed 7:3035–3043CrossRef Hosseinkhani H, Hong PD, Yu DS, Chen YR, Farber IV, Domb AJ (2012) Development of 3D in vitro platform technology to engineer mesenchymal stem cells. Int J Nanomed 7:3035–3043CrossRef
Zurück zum Zitat Hosseinkhani H, Chen YR, He W, Hong PD, Yu DS, Domb AJ (2013a) Engineering of magnetic DNA nanoparticles for tumor-targeted therapy. J Nanopart Res 15:1–10 Hosseinkhani H, Chen YR, He W, Hong PD, Yu DS, Domb AJ (2013a) Engineering of magnetic DNA nanoparticles for tumor-targeted therapy. J Nanopart Res 15:1–10
Zurück zum Zitat Hosseinkhani H, Hong PD, Yu DS (2013b) Self-assembled proteins and peptides for regenerative medicine. Chem Rev. doi:10.1021/cr300131h Hosseinkhani H, Hong PD, Yu DS (2013b) Self-assembled proteins and peptides for regenerative medicine. Chem Rev. doi:10.​1021/​cr300131h
Zurück zum Zitat Hosseinkhani H, Hiraoka Y, Li CH, Chen YR, Yu DS, Hong PD, Ou KL (2013c) Engineering 3D collagen–IKVAV matrix to mimic neural microenvironment. ACS Chem Neurosci. doi:10.1021/cn400075h Hosseinkhani H, Hiraoka Y, Li CH, Chen YR, Yu DS, Hong PD, Ou KL (2013c) Engineering 3D collagen–IKVAV matrix to mimic neural microenvironment. ACS Chem Neurosci. doi:10.​1021/​cn400075h
Zurück zum Zitat Howard KA, Rahbek UL, Liu X, Damgaard CK, Glud SZ, Andersen MO, Hovgaard MB, Schmitz A, Nyengaard JR, Besenbacher F, Kjems J (2006) RNA interference in vitro and in vivo using a chitosan/siRNA nanoparticle system. Mol Ther 14:476–484CrossRef Howard KA, Rahbek UL, Liu X, Damgaard CK, Glud SZ, Andersen MO, Hovgaard MB, Schmitz A, Nyengaard JR, Besenbacher F, Kjems J (2006) RNA interference in vitro and in vivo using a chitosan/siRNA nanoparticle system. Mol Ther 14:476–484CrossRef
Zurück zum Zitat Jo J, Okazaki A, Nagane K, Yamamoto M, Tabata Y (2010) Preparation of cationized polysaccharides as gene transfection carrier for bone marrow-derived mesenchymal stem cells. J Biomater Sci Polym Ed 21:185–204CrossRef Jo J, Okazaki A, Nagane K, Yamamoto M, Tabata Y (2010) Preparation of cationized polysaccharides as gene transfection carrier for bone marrow-derived mesenchymal stem cells. J Biomater Sci Polym Ed 21:185–204CrossRef
Zurück zum Zitat Kalhor HR, Shahin F, Fouani MH, Hosseinkhani H (2011) Self-assembly of tissue transglutaminase into amyloid-like fibrils using physiological concentration of Ca2+. Langmuir 27:10766–10784CrossRef Kalhor HR, Shahin F, Fouani MH, Hosseinkhani H (2011) Self-assembly of tissue transglutaminase into amyloid-like fibrils using physiological concentration of Ca2+. Langmuir 27:10766–10784CrossRef
Zurück zum Zitat Kaneo Y, Ueno T, Tanaka T, Iwase H, Yamaguchi Y, Uemura T (2000) Pharmacokinetics and biodisposition of fluorescein-labeled arabinogalactan in rats. Int J Pharm 201:59–69CrossRef Kaneo Y, Ueno T, Tanaka T, Iwase H, Yamaguchi Y, Uemura T (2000) Pharmacokinetics and biodisposition of fluorescein-labeled arabinogalactan in rats. Int J Pharm 201:59–69CrossRef
Zurück zum Zitat Kaneo Y, Tanaka T, Nakano T, Yamaguchi Y (2001) Evidence for receptor-mediated hepatic uptake of pullulan in rats. J Control Release 70:365–373CrossRef Kaneo Y, Tanaka T, Nakano T, Yamaguchi Y (2001) Evidence for receptor-mediated hepatic uptake of pullulan in rats. J Control Release 70:365–373CrossRef
Zurück zum Zitat Khan W, Hosseinkhani H, Ickowicz D, Hong PD, Yu DS, Domb AJ (2012) Polysaccharide gene transfection agents. Acta Biomater 8:4224–4232CrossRef Khan W, Hosseinkhani H, Ickowicz D, Hong PD, Yu DS, Domb AJ (2012) Polysaccharide gene transfection agents. Acta Biomater 8:4224–4232CrossRef
Zurück zum Zitat Kircheis R, Schuller S, Brunner S, Ogris M, Heider KH, Zauner W, Wagner E (1999) Polycation-based DNA complexes for tumor-targeted gene delivery in vivo. J Gene Med 1:111–120CrossRef Kircheis R, Schuller S, Brunner S, Ogris M, Heider KH, Zauner W, Wagner E (1999) Polycation-based DNA complexes for tumor-targeted gene delivery in vivo. J Gene Med 1:111–120CrossRef
Zurück zum Zitat Kircheis R, Wightman L, Schreiber A, Robitza B, Rossler V, Kursa M, Wagner E (2001) Polyethylenimine/DNA complexes shielded by transferrin target gene expression to tumors after systemic application. Gene Ther 8:28–40CrossRef Kircheis R, Wightman L, Schreiber A, Robitza B, Rossler V, Kursa M, Wagner E (2001) Polyethylenimine/DNA complexes shielded by transferrin target gene expression to tumors after systemic application. Gene Ther 8:28–40CrossRef
Zurück zum Zitat Konishi M, Tabata Y, Kariya M, Hosseinkhani H, Suzuki A, Fukuhara K, Mandai M, Takakura K, Fujii S (2005) In vivo anti-tumor effect of dual release of cisplatin and adriamycin from biodegradable gelatin hydrogel. J Control Release 103:7–19CrossRef Konishi M, Tabata Y, Kariya M, Hosseinkhani H, Suzuki A, Fukuhara K, Mandai M, Takakura K, Fujii S (2005) In vivo anti-tumor effect of dual release of cisplatin and adriamycin from biodegradable gelatin hydrogel. J Control Release 103:7–19CrossRef
Zurück zum Zitat Krebs MD, Salter E, Chen E, Sutter KA, Alsberg E (2010) Calcium phosphate–DNA nanoparticle gene delivery from alginate hydrogels induces in vivo osteogenesis. J Biomed Mater Res A 92:1131–1138 Krebs MD, Salter E, Chen E, Sutter KA, Alsberg E (2010) Calcium phosphate–DNA nanoparticle gene delivery from alginate hydrogels induces in vivo osteogenesis. J Biomed Mater Res A 92:1131–1138
Zurück zum Zitat Lasic DD (1997) Recent developments in medical applications of liposomes: sterically stabilized liposomes in cancer therapy and gene delivery in vivo. J Control Release 48:203–222CrossRef Lasic DD (1997) Recent developments in medical applications of liposomes: sterically stabilized liposomes in cancer therapy and gene delivery in vivo. J Control Release 48:203–222CrossRef
Zurück zum Zitat Lawrie A, Brisken AF, Francis SE, Cumberland DC, Crossman DC, Newman CM (2000) Microbubble-enhanced ultrasound for vascular gene delivery. Gene Ther 7:2023–2027CrossRef Lawrie A, Brisken AF, Francis SE, Cumberland DC, Crossman DC, Newman CM (2000) Microbubble-enhanced ultrasound for vascular gene delivery. Gene Ther 7:2023–2027CrossRef
Zurück zum Zitat Ledley FD (1995) Nonviral gene therapy: the promise of genes as pharmaceutical products. Hum Gene Ther 6:1129–1144CrossRef Ledley FD (1995) Nonviral gene therapy: the promise of genes as pharmaceutical products. Hum Gene Ther 6:1129–1144CrossRef
Zurück zum Zitat Lindstrom S, Iles A, Persson J, Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Lindstrom H, Andersson H (2010) Nanoporous titania coating of microwell chips for stem cell culture and analysis. J Biomech Sci Eng 5:272–279CrossRef Lindstrom S, Iles A, Persson J, Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Lindstrom H, Andersson H (2010) Nanoporous titania coating of microwell chips for stem cell culture and analysis. J Biomech Sci Eng 5:272–279CrossRef
Zurück zum Zitat Liu Y, Mounkes LC, Liggitt HD, Brown CS, Solodin I, Heath TD, Debs RJ (1997) Factors influencing the efficiency of cationic liposome-mediated intravenous gene delivery. Nat Biotechnol 15:167–173CrossRef Liu Y, Mounkes LC, Liggitt HD, Brown CS, Solodin I, Heath TD, Debs RJ (1997) Factors influencing the efficiency of cationic liposome-mediated intravenous gene delivery. Nat Biotechnol 15:167–173CrossRef
Zurück zum Zitat Louise C (2006) Nonviral vectors. Methods Mol Biol 333:201–226 Louise C (2006) Nonviral vectors. Methods Mol Biol 333:201–226
Zurück zum Zitat Lungwitz U, Breunig M, Blunk T, Gopferich A (2005) Polyethylenimine-based non-viral gene delivery systems. Eur J Pharm Biopharm 60:247–266CrossRef Lungwitz U, Breunig M, Blunk T, Gopferich A (2005) Polyethylenimine-based non-viral gene delivery systems. Eur J Pharm Biopharm 60:247–266CrossRef
Zurück zum Zitat Luo D, Saltzman WM (2000) Synthetic DNA delivery systems. Nat Biotechnol 18:33–37CrossRef Luo D, Saltzman WM (2000) Synthetic DNA delivery systems. Nat Biotechnol 18:33–37CrossRef
Zurück zum Zitat Madry H, Cucchiarini M, Stein U, Remberger K, Menger MD, Kohn D, Trippel SB (2003) Sustained transgene expression in cartilage defects in vivo after transplantation of articular chondrocytes modified by lipid-mediated gene transfer in a gel suspension delivery system. J Gene Med 5:502–509CrossRef Madry H, Cucchiarini M, Stein U, Remberger K, Menger MD, Kohn D, Trippel SB (2003) Sustained transgene expression in cartilage defects in vivo after transplantation of articular chondrocytes modified by lipid-mediated gene transfer in a gel suspension delivery system. J Gene Med 5:502–509CrossRef
Zurück zum Zitat Mahmoudi M, Hosseinkhani H, Hosseinkhani M, Boutry S, Simchi A, Journeay WS, Subramani K, Laurent S (2011) Magnetic resonance imaging tracking of stem cells in vivo using iron oxide nanoparticles as a tool for the advancement of clinical regenerative medicine. Chem Rev 111:253–280CrossRef Mahmoudi M, Hosseinkhani H, Hosseinkhani M, Boutry S, Simchi A, Journeay WS, Subramani K, Laurent S (2011) Magnetic resonance imaging tracking of stem cells in vivo using iron oxide nanoparticles as a tool for the advancement of clinical regenerative medicine. Chem Rev 111:253–280CrossRef
Zurück zum Zitat Mohageri S, Hosseinkhani H, Ebrahimi NG, Solimani M, Kajbafzadeh AM (2010) Proliferation and differentiation of mesenchymal stem cell on collagen sponge reinforced with polypropylene/polyethylene terephathalate blend fibers. Tissue Eng Part A 16:3821–3830CrossRef Mohageri S, Hosseinkhani H, Ebrahimi NG, Solimani M, Kajbafzadeh AM (2010) Proliferation and differentiation of mesenchymal stem cell on collagen sponge reinforced with polypropylene/polyethylene terephathalate blend fibers. Tissue Eng Part A 16:3821–3830CrossRef
Zurück zum Zitat Mohammad-Taheri M, Vasheghani-Farahani E, Hosseinkhani H, Shojaosadati SA, Soleimani M (2012) Fabrication and characterization of a new MRI contrast agent based on a magnetic dextran–spermine nanoparticle system. Iran Polym J 21:239–251CrossRef Mohammad-Taheri M, Vasheghani-Farahani E, Hosseinkhani H, Shojaosadati SA, Soleimani M (2012) Fabrication and characterization of a new MRI contrast agent based on a magnetic dextran–spermine nanoparticle system. Iran Polym J 21:239–251CrossRef
Zurück zum Zitat Nishikawa M, Yamauchi M, Morimoto K, Ishida E, Takakura Y, Hashida M (2000) Hepatocyte-targeted in vivo gene expression by intravenous injection of plasmid DNA complexed with synthetic multi-functional gene delivery system. Gene Ther 7:548–555CrossRef Nishikawa M, Yamauchi M, Morimoto K, Ishida E, Takakura Y, Hashida M (2000) Hepatocyte-targeted in vivo gene expression by intravenous injection of plasmid DNA complexed with synthetic multi-functional gene delivery system. Gene Ther 7:548–555CrossRef
Zurück zum Zitat Ogawara K, Hasegawa S, Nishikawa M, Takakura Y, Hashida M (1999) Pharmacokinetic evaluation of mannosylated bovine serum albumin as a liver cell-specific carrier: quantitative comparison with other hepatotropic ligands. J Drug Target 6:349–360CrossRef Ogawara K, Hasegawa S, Nishikawa M, Takakura Y, Hashida M (1999) Pharmacokinetic evaluation of mannosylated bovine serum albumin as a liver cell-specific carrier: quantitative comparison with other hepatotropic ligands. J Drug Target 6:349–360CrossRef
Zurück zum Zitat Pathak A, Patnaik S, Gupta KC (2009) Polyethylenimine derived nanoparticles for efficient gene delivery. Nucleic Acids Symp Ser (Oxf) 53:57–58CrossRef Pathak A, Patnaik S, Gupta KC (2009) Polyethylenimine derived nanoparticles for efficient gene delivery. Nucleic Acids Symp Ser (Oxf) 53:57–58CrossRef
Zurück zum Zitat Sarabi RS, Sadeghi E, Hosseinkhani H, Mahmoudi M, Kalantari M, Adeli M (2011) Polyrotaxane capped quantum dots as new candidates for Cancer diagnosis and therapy. J Nanostruct Polym Nanocomp 7:18–31 Sarabi RS, Sadeghi E, Hosseinkhani H, Mahmoudi M, Kalantari M, Adeli M (2011) Polyrotaxane capped quantum dots as new candidates for Cancer diagnosis and therapy. J Nanostruct Polym Nanocomp 7:18–31
Zurück zum Zitat Smyth Templeton N (2002) Liposomal delivery of nucleic acids in vivo. DNA Cell Biol 21:857–867CrossRef Smyth Templeton N (2002) Liposomal delivery of nucleic acids in vivo. DNA Cell Biol 21:857–867CrossRef
Zurück zum Zitat Stankovics J, Crane AM, Andrews E, Wu CH, Wu GY, Ledley FD (1994) Overexpression of human methylmalonyl CoA mutase in mice after in vivo gene transfer with asialoglycoprotein/polylysine/DNA complexes. Hum Gene Ther 5:1095–1104CrossRef Stankovics J, Crane AM, Andrews E, Wu CH, Wu GY, Ledley FD (1994) Overexpression of human methylmalonyl CoA mutase in mice after in vivo gene transfer with asialoglycoprotein/polylysine/DNA complexes. Hum Gene Ther 5:1095–1104CrossRef
Zurück zum Zitat Subramani K, Hosseinkhani H, Khraisat A, Hosseinkhani M, Pathak Y (2009) Targeting nanoparticles as drug delivery systems for cancer treatment. Curr Nanosci 5:134–140CrossRef Subramani K, Hosseinkhani H, Khraisat A, Hosseinkhani M, Pathak Y (2009) Targeting nanoparticles as drug delivery systems for cancer treatment. Curr Nanosci 5:134–140CrossRef
Zurück zum Zitat Subramani K, Mathew R, Hosseinkhani H, Hosseinkhani M (2011) Bone regeneration around dental implants as a treatment for peri-implantitis: a review of the literature. J Biomim Biomater Tissue Eng 11:21–33CrossRef Subramani K, Mathew R, Hosseinkhani H, Hosseinkhani M (2011) Bone regeneration around dental implants as a treatment for peri-implantitis: a review of the literature. J Biomim Biomater Tissue Eng 11:21–33CrossRef
Zurück zum Zitat Subramani K, Pathak S, Hosseinkhani H (2012) Recent trend in diabetes treatment using nanotechnology. Dig J Nanomater Bios 7:85–95 Subramani K, Pathak S, Hosseinkhani H (2012) Recent trend in diabetes treatment using nanotechnology. Dig J Nanomater Bios 7:85–95
Zurück zum Zitat Takai T, Ohmori H (1990) DNA transfection of mouse lymphoid cells by the combination of DEAE–dextran-mediated DNA uptake and osmotic shock procedure. Biochim Biophys Acta 1048:105–109CrossRef Takai T, Ohmori H (1990) DNA transfection of mouse lymphoid cells by the combination of DEAE–dextran-mediated DNA uptake and osmotic shock procedure. Biochim Biophys Acta 1048:105–109CrossRef
Zurück zum Zitat Takei Y, Maruyama A, Ferdous A, Nishimura Y, Kawano S, Ikejima K, Okumura S, Asayama S, Nogawa M, Hashimoto M, Makino Y, Kinoshita M, Watanabe S, Akaike T, Lemasters JJ, Sato N (2004) Targeted gene delivery to sinusoidal endothelial cells: DNA nanoassociate bearing hyaluronan–glycocalyx. FASEB J 18:699–701 Takei Y, Maruyama A, Ferdous A, Nishimura Y, Kawano S, Ikejima K, Okumura S, Asayama S, Nogawa M, Hashimoto M, Makino Y, Kinoshita M, Watanabe S, Akaike T, Lemasters JJ, Sato N (2004) Targeted gene delivery to sinusoidal endothelial cells: DNA nanoassociate bearing hyaluronan–glycocalyx. FASEB J 18:699–701
Zurück zum Zitat Templeton NS, Lasic DD, Frederik PM, Strey HH, Roberts DD, Pavlakis GN (1997) Improved DNA: liposome complexes for increased systemic delivery and gene expression. Nat Biotechnol 15:647–652CrossRef Templeton NS, Lasic DD, Frederik PM, Strey HH, Roberts DD, Pavlakis GN (1997) Improved DNA: liposome complexes for increased systemic delivery and gene expression. Nat Biotechnol 15:647–652CrossRef
Zurück zum Zitat Thakor DK, Teng YD, Tabata Y (2009) Neuronal gene delivery by negatively charged pullulan–spermine/DNA anioplexes. Biomaterials 30:1815–1826CrossRef Thakor DK, Teng YD, Tabata Y (2009) Neuronal gene delivery by negatively charged pullulan–spermine/DNA anioplexes. Biomaterials 30:1815–1826CrossRef
Zurück zum Zitat Tian F, Hosseinkhani H, Estrada G, Kobayashi H (2007) Quantitative method for the analysis of cell attachment using the aligned scaffold structure. J Phys 61:587–590 Tian F, Hosseinkhani H, Estrada G, Kobayashi H (2007) Quantitative method for the analysis of cell attachment using the aligned scaffold structure. J Phys 61:587–590
Zurück zum Zitat Tian F, Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Yokoyama Y, Estrada G, Kobayashi H (2008) Quantitative analytical of cell adhesion on aligned micro- and nano-fibers. J Biomed Mater Res A 84:291–299 Tian F, Hosseinkhani H, Hosseinkhani M, Khademhosseini A, Yokoyama Y, Estrada G, Kobayashi H (2008) Quantitative analytical of cell adhesion on aligned micro- and nano-fibers. J Biomed Mater Res A 84:291–299
Zurück zum Zitat Turgeman G, Pittman DD, Muller R, Kurkalli BG, Zhou S, Pelled G, Peyser A, Zilberman Y, Moutsatsos IK, Gazit D (2001) Engineered human mesenchymal stem cells: a novel platform for skeletal cell mediated gene therapy. J Gene Med 3:240–251CrossRef Turgeman G, Pittman DD, Muller R, Kurkalli BG, Zhou S, Pelled G, Peyser A, Zilberman Y, Moutsatsos IK, Gazit D (2001) Engineered human mesenchymal stem cells: a novel platform for skeletal cell mediated gene therapy. J Gene Med 3:240–251CrossRef
Zurück zum Zitat Veron L, Ganee A, Ladaviere C, Delair T (2006) Hydrolyzable p(DMAPEMA) polymers for gene delivery. Macromol Biosci 6:540–554CrossRef Veron L, Ganee A, Ladaviere C, Delair T (2006) Hydrolyzable p(DMAPEMA) polymers for gene delivery. Macromol Biosci 6:540–554CrossRef
Zurück zum Zitat Wolfert MA, Schacht EH, Toncheva V, Ulbrich K, Nazarova O, Seymour LW (1996) Characterization of vectors for gene therapy formed by self-assembly of DNA with synthetic block co-polymers. Hum Gene Ther 7:2123–2133CrossRef Wolfert MA, Schacht EH, Toncheva V, Ulbrich K, Nazarova O, Seymour LW (1996) Characterization of vectors for gene therapy formed by self-assembly of DNA with synthetic block co-polymers. Hum Gene Ther 7:2123–2133CrossRef
Zurück zum Zitat Woodle MC, Engbers CM, Zalipsky S (1994) New amphipatic polymer–lipid conjugates forming long-circulating reticuloendothelial system-evading liposomes. Bioconjug Chem 5:493–496CrossRef Woodle MC, Engbers CM, Zalipsky S (1994) New amphipatic polymer–lipid conjugates forming long-circulating reticuloendothelial system-evading liposomes. Bioconjug Chem 5:493–496CrossRef
Zurück zum Zitat Wright V, Peng H, Usas A, Young B, Gearhart B, Cummins J, Huard J (2002) BMP4-expressing muscle-derived stem cells differentiate into osteogenic lineage and improve bone healing in immunocompetent mice. Mol Ther 6:169–178CrossRef Wright V, Peng H, Usas A, Young B, Gearhart B, Cummins J, Huard J (2002) BMP4-expressing muscle-derived stem cells differentiate into osteogenic lineage and improve bone healing in immunocompetent mice. Mol Ther 6:169–178CrossRef
Zurück zum Zitat Yang NS, Burkholder J, Roberts B, Martinell B, McCabe D (1990) In vivo and in vitro gene transfer to mammalian somatic cells by particle bombardment. Proc Natl Acad Sci USA 87:9568–9572CrossRef Yang NS, Burkholder J, Roberts B, Martinell B, McCabe D (1990) In vivo and in vitro gene transfer to mammalian somatic cells by particle bombardment. Proc Natl Acad Sci USA 87:9568–9572CrossRef
Zurück zum Zitat Yaroslavov AA, Sukhishvili SA, Obolsky OL, Yaroslavova EG, Kabanov AV, Kabanov VA (1996) DNA affinity to biological membranes is enhanced due to complexation with hydrophobized polycation. FEBS Lett 384:177–180CrossRef Yaroslavov AA, Sukhishvili SA, Obolsky OL, Yaroslavova EG, Kabanov AV, Kabanov VA (1996) DNA affinity to biological membranes is enhanced due to complexation with hydrophobized polycation. FEBS Lett 384:177–180CrossRef
Zurück zum Zitat Yoshioka T, Yoshida S, Kurosaki T, Teshima M, Nishida K, Nakamura J, Nakashima M, To H, Kitahara T, Sasaki H (2009) Cationic liposomes-mediated plasmid DNA delivery in murine hepatitis induced by carbon tetrachloride. J Liposome Res 19:141–147CrossRef Yoshioka T, Yoshida S, Kurosaki T, Teshima M, Nishida K, Nakamura J, Nakashima M, To H, Kitahara T, Sasaki H (2009) Cationic liposomes-mediated plasmid DNA delivery in murine hepatitis induced by carbon tetrachloride. J Liposome Res 19:141–147CrossRef
Zurück zum Zitat Yu L, Suh H, Koh JJ, Kim SW (2001) Systemic administration of TerplexDNA system: pharmacokinetics and gene expression. Pharm Res 18:1277–1283CrossRef Yu L, Suh H, Koh JJ, Kim SW (2001) Systemic administration of TerplexDNA system: pharmacokinetics and gene expression. Pharm Res 18:1277–1283CrossRef
Zurück zum Zitat Zhang X, Oulad-Abdelghani M, Zelkin AN, Wang Y, Haikel Y, Mainard D, Voegel JC, Caruso F, Benkirane-Jessel N (2010) Poly(l-lysine) nanostructured particles for gene delivery and hormone stimulation. Biomaterials 31:1699–1706CrossRef Zhang X, Oulad-Abdelghani M, Zelkin AN, Wang Y, Haikel Y, Mainard D, Voegel JC, Caruso F, Benkirane-Jessel N (2010) Poly(l-lysine) nanostructured particles for gene delivery and hormone stimulation. Biomaterials 31:1699–1706CrossRef
Metadaten
Titel
Biodegradable nanoparticles for gene therapy technology
verfasst von
Hossein Hosseinkhani
Wen-Jie He
Chiao-Hsi Chiang
Po-Da Hong
Dah-Shyong Yu
Abraham J. Domb
Keng-Liang Ou
Publikationsdatum
01.07.2013
Verlag
Springer Netherlands
Erschienen in
Journal of Nanoparticle Research / Ausgabe 7/2013
Print ISSN: 1388-0764
Elektronische ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-013-1794-z

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