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Erschienen in: Journal of Nanoparticle Research 6/2011

01.06.2011 | Research Paper

Transportation of drug–gold nanocomposites by actinomyosin motor system

verfasst von: Harsimran Kaur, Archana Chaudhary, Inderpreet Kaur, Kashmir Singh, Lalit M. Bharadwaj

Erschienen in: Journal of Nanoparticle Research | Ausgabe 6/2011

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Abstract

Nanotechnology is playing an important role in drug delivery to overcome limitations of conventional drug delivery systems in terms of solubility, in vivo stability, pharmacokinetics, and bio-distribution. The controlled transportation of drug into the cell and within the cell is a major challenge to be addressed. Cellular molecular motors have been exploited for their cargo carrying capacity for various applications including engineering and health care. Combination of nanotechnology and biomolecular motors can address some of the challenges in drug delivery. In the present study, transportation of drug nanocomposites has been demonstrated. Nanocomposites of 6-mercaptopurine and levodopa drugs (cancer and Parkinson’s disease, respectively) were prepared with gold nanoparticles (GNPs) by covalent attachment and these nanocomposites were attached to actin filaments. These nanocomposites were in-turn transported by actin filaments on myosin tracks. Characterization of drug nanocomposites formation was done by UV–Vis spectroscopy, field emission scanning electron microscopy, transmission electron microscopy, and confocal microscopy. GNP composites of 6-mercaptopurine and levodopa were formed by sulfide and amide bond formation, respectively. Average velocity of actin filament attached to nanocomposites was found to be 3.17 and 3.89 μm/s for levodopa and 6-mercaptopurine, respectively, as compared to actin filaments with velocity of 4.0–6.0 μm/s. Three concepts have been proposed for the study of drug transportation into the cell based on polycationic complex formation, interaction of actin with cellular myosin and Biomolecular Adaptor for Retrograde Transport (BART) technology. The aspects of this study heads toward the development of an approach to utilize molecular motors for nanoscale transportation endogenously.

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Literatur
Zurück zum Zitat Agasti SS, Chompoosor A, You CC, Ghosh P, Kim CK, Rotello VM (2009) Photoregulated release of caged anticancer drugs from gold nanoparticles. J Am Chem Soc 131:5728–5729CrossRef Agasti SS, Chompoosor A, You CC, Ghosh P, Kim CK, Rotello VM (2009) Photoregulated release of caged anticancer drugs from gold nanoparticles. J Am Chem Soc 131:5728–5729CrossRef
Zurück zum Zitat Alisar SZ, de Melgardt V, Michael VP (2005) Encapsulation of drug nanoparticles in self-assembled macromolecular nanoshells. Langmuir 21:403–410CrossRef Alisar SZ, de Melgardt V, Michael VP (2005) Encapsulation of drug nanoparticles in self-assembled macromolecular nanoshells. Langmuir 21:403–410CrossRef
Zurück zum Zitat Cohen RN, Rashkin MJ, Wen X, Szoka FC Jr (2005) Molecular motors as drug delivery vehicles. Drug Discov Today Technol 2:111–118CrossRef Cohen RN, Rashkin MJ, Wen X, Szoka FC Jr (2005) Molecular motors as drug delivery vehicles. Drug Discov Today Technol 2:111–118CrossRef
Zurück zum Zitat Couvreur P, Vauthier C (2006) Nanotechnology: intelligent design to treat complex disease. Pharm Res 23:1417–1450CrossRef Couvreur P, Vauthier C (2006) Nanotechnology: intelligent design to treat complex disease. Pharm Res 23:1417–1450CrossRef
Zurück zum Zitat Daniel ME, Astruc D (2004) Gold nanoparticles: assembly, supramolecular chemistry, quantum-size-related properties, and applications toward biology, catalysis, and nanotechnology. Chem Rev 104:293–346CrossRef Daniel ME, Astruc D (2004) Gold nanoparticles: assembly, supramolecular chemistry, quantum-size-related properties, and applications toward biology, catalysis, and nanotechnology. Chem Rev 104:293–346CrossRef
Zurück zum Zitat Diez S, Reuther C, Dinu C, Seidel R, Mertig M, Pompe W, Howard J (2003) Stretching and transporting DNA molecules using motor proteins. Nano Lett 3:1251–1254CrossRef Diez S, Reuther C, Dinu C, Seidel R, Mertig M, Pompe W, Howard J (2003) Stretching and transporting DNA molecules using motor proteins. Nano Lett 3:1251–1254CrossRef
Zurück zum Zitat Emerich DF, Thanos CG (2006) The pin point promises of nanoparticles-based drug delivery and molecular diagnosis. Biomol Eng 23:171–184CrossRef Emerich DF, Thanos CG (2006) The pin point promises of nanoparticles-based drug delivery and molecular diagnosis. Biomol Eng 23:171–184CrossRef
Zurück zum Zitat Goldstein LSB (2001) Molecular motors—from one motor many tails to one motor many tales. Trends Cell Biol 11:477–482CrossRef Goldstein LSB (2001) Molecular motors—from one motor many tails to one motor many tales. Trends Cell Biol 11:477–482CrossRef
Zurück zum Zitat Han G, Ghosh P, De M, Rotello VM (2007) Drug and gene delivery using gold nanoparticles. Nanobiotechnology 3:40–45CrossRef Han G, Ghosh P, De M, Rotello VM (2007) Drug and gene delivery using gold nanoparticles. Nanobiotechnology 3:40–45CrossRef
Zurück zum Zitat Hosseinkhani H, Hosseinkhani M (2009) Biodegradable polymer–metal complexes for gene and drug delivery. Curr Drug Saf 6:79–83CrossRef Hosseinkhani H, Hosseinkhani M (2009) Biodegradable polymer–metal complexes for gene and drug delivery. Curr Drug Saf 6:79–83CrossRef
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 (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, 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, Hosseinkhani M, Gabrielson NP, Pack DW, Khademhosseini A, Kobayashi H (2008) DNA nanoparticles encapsulated in 3D tissue-engineered scaffolds enhances osteogenic differentiation of mesenchymal stem cells. J Biomed Mater Res A 85:47–60 Hosseinkhani H, Hosseinkhani M, Gabrielson NP, Pack DW, Khademhosseini A, Kobayashi H (2008) DNA nanoparticles encapsulated in 3D tissue-engineered scaffolds enhances osteogenic differentiation of mesenchymal stem cells. J Biomed Mater Res A 85:47–60
Zurück zum Zitat Kamal A, Goldsmith LSB (2002) Principal of cargo attachment to cytoplasmic motor proteins. Curr Opin Cell Biol 14:63–68CrossRef Kamal A, Goldsmith LSB (2002) Principal of cargo attachment to cytoplasmic motor proteins. Curr Opin Cell Biol 14:63–68CrossRef
Zurück zum Zitat Karcher RL (2002) Motor-cargo interactions: the key to transport specificity. Trends Cell Biol 12:21–27CrossRef Karcher RL (2002) Motor-cargo interactions: the key to transport specificity. Trends Cell Biol 12:21–27CrossRef
Zurück zum Zitat Kaur H, Das T, Kumar R, Ajore R, Bharadwaj LM (2008) Covalent attachment of actin filaments to tween 80 coated polystyrene beads for cargo transportation. Biosystems 92:69–75CrossRef Kaur H, Das T, Kumar R, Ajore R, Bharadwaj LM (2008) Covalent attachment of actin filaments to tween 80 coated polystyrene beads for cargo transportation. Biosystems 92:69–75CrossRef
Zurück zum Zitat Kawaguchi T, Hajime H (2006) Unidirectional movement of an actin filament taking advantage of temperature gradients. Biosystems 90:252–263 Kawaguchi T, Hajime H (2006) Unidirectional movement of an actin filament taking advantage of temperature gradients. Biosystems 90:252–263
Zurück zum Zitat Kimling J, Maier M, Okenve B, Kotaidis V, Ballot H, Plech A (2006) Turkevich method for gold nanoparticle synthesis revisited. J Phys Chem B 110:15700–15707CrossRef Kimling J, Maier M, Okenve B, Kotaidis V, Ballot H, Plech A (2006) Turkevich method for gold nanoparticle synthesis revisited. J Phys Chem B 110:15700–15707CrossRef
Zurück zum Zitat Konishia M, Tabatab Y, Kariyaa M, Hosseinkhani H, Suzukia A, Fukuharaa K, Mandaia M, Takakuraa K, Fujiia S (2005) In vivo anti-tumor effect of dual release of cisplatin and adriamycin from biodegradable gelatin hydrogel. J Control Release 103:7–19CrossRef Konishia M, Tabatab Y, Kariyaa M, Hosseinkhani H, Suzukia A, Fukuharaa K, Mandaia M, Takakuraa K, Fujiia 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 Mallik R, Gross SP (2004) Molecular motors: strategies to get along. Curr Biol 14:R971–R982CrossRef Mallik R, Gross SP (2004) Molecular motors: strategies to get along. Curr Biol 14:R971–R982CrossRef
Zurück zum Zitat Mansson A, Sundberg M, Balaz M, Bunk R, Nicholls IA, Omling P, Tagerud S, Montelius L (2004) In vitro sliding of actin filaments labelled with single quantum dots. Biochem Biophys Res Commun 314:529–534CrossRef Mansson A, Sundberg M, Balaz M, Bunk R, Nicholls IA, Omling P, Tagerud S, Montelius L (2004) In vitro sliding of actin filaments labelled with single quantum dots. Biochem Biophys Res Commun 314:529–534CrossRef
Zurück zum Zitat Mansson A, Sundberg M, Bunk R, Balaz M, Nicholls IA, Omling P, Tegenfeldt JO, Tagerud S, Montelius L (2005) Actin-based molecular motors for cargo transportation in nanotechnology—potentials and challenges. IEEE Trans Adv Packag 28:547–554CrossRef Mansson A, Sundberg M, Bunk R, Balaz M, Nicholls IA, Omling P, Tegenfeldt JO, Tagerud S, Montelius L (2005) Actin-based molecular motors for cargo transportation in nanotechnology—potentials and challenges. IEEE Trans Adv Packag 28:547–554CrossRef
Zurück zum Zitat Miyata H, Hakozaki H, Yoshikawa H, Suzuki N, Kinosita K Jr, Nishizaka T, Ishiwata S (1994) Stepwise motion of an actin filament over a small number of heavy meromyosin molecules is revealed in an in vitro motility assay. J Biochem 115:644–647 Miyata H, Hakozaki H, Yoshikawa H, Suzuki N, Kinosita K Jr, Nishizaka T, Ishiwata S (1994) Stepwise motion of an actin filament over a small number of heavy meromyosin molecules is revealed in an in vitro motility assay. J Biochem 115:644–647
Zurück zum Zitat Mohan J (2001) Handbook of organic spectroscopy: principles and applications. Narosa, London Mohan J (2001) Handbook of organic spectroscopy: principles and applications. Narosa, London
Zurück zum Zitat Paciotti GF, Myer L, Weinreich D, Goia D, Pavel N, McLaughlin RE, Tamarkin L (2004) Colloidal gold: a novel nanoparticle vector for tumor directed drug delivery. Drug Deliv 11:169–183CrossRef Paciotti GF, Myer L, Weinreich D, Goia D, Pavel N, McLaughlin RE, Tamarkin L (2004) Colloidal gold: a novel nanoparticle vector for tumor directed drug delivery. Drug Deliv 11:169–183CrossRef
Zurück zum Zitat Pearl C, Reisler E (1982) The actomyosin ATPase of synthetic myosin minifilaments, filaments, and heavy meromyosin. J Biol Chem 258:5040–5044 Pearl C, Reisler E (1982) The actomyosin ATPase of synthetic myosin minifilaments, filaments, and heavy meromyosin. J Biol Chem 258:5040–5044
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 Tang JX, Janmey PA (1996) The polyelectrolyte nature of F-actin and the mechanism of actin bundle formation. J Biol Chem 271:8556–8563CrossRef Tang JX, Janmey PA (1996) The polyelectrolyte nature of F-actin and the mechanism of actin bundle formation. J Biol Chem 271:8556–8563CrossRef
Zurück zum Zitat Vale RD (2003) The molecular motor toolbox for intracellular transport. Cell 112:467–480CrossRef Vale RD (2003) The molecular motor toolbox for intracellular transport. Cell 112:467–480CrossRef
Metadaten
Titel
Transportation of drug–gold nanocomposites by actinomyosin motor system
verfasst von
Harsimran Kaur
Archana Chaudhary
Inderpreet Kaur
Kashmir Singh
Lalit M. Bharadwaj
Publikationsdatum
01.06.2011
Verlag
Springer Netherlands
Erschienen in
Journal of Nanoparticle Research / Ausgabe 6/2011
Print ISSN: 1388-0764
Elektronische ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-010-9987-1

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