Взаимодействие живых клеток с флуоресцентными полупроводниковыми наночастицами и органическими флуорофорами: проникновение и внутриклеточный транспорт
Диссертация
Визуализация происходящих в живой клетке процессов имеет огромное значение для их понимания. Существенные усилия затрачиваются на создание оптических микроскопов" с высокой разрешающей способностью и разработку новых методических подходов. Такие методы, как FRET, FRAP, TIRF и др., все шире используются для выявления локализации макромолекул и их взаимодействий. Во всех методах визуализации… Читать ещё >
Список литературы
- Кроленко С. А. 1975. Т-система мышечных волокон. Л.: Наука. 128 с.
- Кроленко С. А., Адамян С. Я., Беляева Т. Н., Моженок Т. П. 2003. Локализация кислых органоидов в скелетных мышечных волокнах лягушки. Цитология. 45 (7): 714−721.
- Кроленко С. А., Адамян С. ЯБеляева Т. Н., Моженок Т. П., Салова А. В. 2007. Конфокально-микроскопическое исследование мембранных органоидов скелетного мышечного волокна в процессе распространяющегося некроза. Цитология. 49 (2): 107—114.
- Крылова Т. А., Фридлянская И. И. 1988. Культивирование скелетно-мышечных клеток. В кн.: Методы культивирования клеток. Л., Наука: 282−290.
- Никольский Н. Н., Соркин А. Д., Соркин А. В. 1987. Эпидермальный фактор роста. Л.: Наука. 200 с.
- Олейников В. А., Суханова А. В., Набиев И. Р. 2007. Флуоресцентные полупроводниковые нанокристаллы в биологии и медицине. Российские нанотехнологии. 2 (1−2): 160−173.
- Харченко М. В., Аксенов Н. Д., Корнилова Е. С. 2002. Влияние гипертонического раствора сахарозы и 5-(М, М-гексаметилен)-амилорида на рецептор-опосредованный и жидкофазный эндоцитоз. Цитология. 44 (7): 681−690.
- Abe Т., Такапо К., Suzuki A., Shimada Y., Inagaki М., Sato N., Obinata Т., Endo Т. 2004. Myocyte differentiation generates nuclear invaginations traversed by myofibrils associating with sarcomeric protein mRNAs. J. Cell Sci. 117: 6523−6534.
- Akerman M. E., Chan W. C., Laakkonen P., Bhatia S. N., Ruoslahti E. 2002. Nanocrystal targeting in vivo. Proc. Natl. Acad. Sci. USA. 99: 12 617−12 621.
- Alivisatos A. P. 1996. Semiconductor clusters, nanocrystals, and quantum dots. Science. 271 :933−937.
- Anderson R. G. 1998. The caveolae membrane system. Annu. Rev. Biochem. 67: 199−225.
- Bache K. G., Raiborg C., Mehlum A., Stenmark H. 2003. STAM and Hrs are subunits of a multivalent ubiquitin-binding complex on early endosomes. J. Biol. Chem. 278: 12 513−12 521.
- Ballou B., Ernst L. A., Andreko S., Harper T., Fitzpatrick J. A., Waggoner A. S., Bruchez M. P. 2007. Sentinel lymph node imaging using quantum dots in mouse tumor models. Bioconjug. Chem. 18: 389−396.
- Barua S., Rege K. 2009. Cancer-cell-phenotype-dependent differential intracellular trafficking of unconjugated quantum dots. Small. 5: 370−376.
- Beguinot L., Lyall R. M., Willingham M. C., Pastan I. 1984. Down-regulation of the epidermal growth factor receptor. Proc. Natl. Acad. Sci. USA. 81: 2384−2388.
- Ben-Kasus T., Schechter B., Lavi S., Yarden Y., Sela M. 2009. Persistent elimination of ErbB-2/HER2-overexpressing tumors using combinations of monoclonal antibodies: relevance of receptor endocytosis. Proc. Natl. Acad. Sci. USA. 106: 3294−3299.
- BentzenE. L., Tomlinson I. D., Mason J., GreschP., Warnement M. R., Wright D., Sanders-Bush E., Blakely R., Rosenthal S. J. 2005. Surface modification to reduce nonspecific binding of quantum dots in live cell assays. Bioconjug. Chem. 16: 1488−1494.
- Biju V., Itoh T., Anas A., Sujith A., Ishikawa M. 2008. Semiconductor quantum dots and metal nanoparticles: syntheses, optical properties, and biological applications. Anal. Bioanal. Chem. 391: 2469−2495.
- Biju V., Itoh 71, Ishikawa M. 2010. Delivering quantum dots to cells: bioconjugated quantum dots for targeted and nonspecific extracellular and intracellular imaging. Chem. Soc. Rev. 39: 3031−3056.
- Bruchez M. Jr., Moronne M., Gin P., Weiss S., Alivisatos A. P. 1998. Semiconductor nanocrystals as fluorescent biological labels. Science. 281: 2013−2016.
- Burattini S., Ferri P., Battistelli M., Curci R., Luchetti F., Falcieri E. 2004. C2C12 murine myoblasts as a model of skeletal muscle development: morpho-functional characterization. Eur. J. Histochem. 48: 223−233*.
- Cahill K. 2009. Simple model of the transduction of cell-penetrating peptides. IET Syst. Biol. 3: 300−306.
- Cai W., Chen X. 2008. Preparation of peptide-conjugated quantum dots for tumor vasculature-targeted imaging. Nat. Protoc. 3: 89−96.
- Carpenter G. 1992. Receptor tyrosine kinase substrates: src homology domains and signal transduction. Faseb J. 6: 3283−3289.
- Carpenter G., Cohen S. 1979. Epidermal growth factor. Annu Rev. Biochem. 48: 193−216.
- Chan W.C.W., Nie S. 1998. Quantum dot bioconjugates for ultrasensitive nonisotopic detection. Science 281: 2016−2018.
- Chan W. S. W., Maxwell D. J., Gao X., Bailey R. E., Han M., Nie S. 2002. Luminescent quantum dots for multiplexed biological detection and imaging. Curr. Opin. Biotechnol. 13: 4016.
- Chen B., Liu Q., Zhang Y., Xu L., Fang X. 2008. Transmembrane delivery of the cell-penetrating peptide conjugated semiconductor quantum dots. Langmuir. 24: 11 866−11 871.
- Chen F., Gerion D. 2004. Fluorescent CdSe/ZnS nanocrystal-peptide conjugates for long-term, nontoxic imaging and nuclear, targeting in living cells. Nano Lett. 4: 1827−1832.
- Choi H. S., Liu IV., Liu F., Nasr K., Misra P., Bawendi M. G., Frangioni J. V. 2010. Design considerations for tumour-targeted nanoparticles. Nat. Nano. 5: 42−47.
- Cohen S. 1962. Isolation of a mouse submaxillary gland protein accelerating incisor eruption and eyelid opening in the new-born animal: J:. Biol- Chem. 237:1555−1562.
- Dauber W., Voigt T., HartelX., Mayer J. 2000. The T-tubular network and its triads in the sole plate sarcoplasm of the motor end-plate of mammals. J Muscle Res. Cell Motil. 21: 443−449.
- Delehanty J. B., Mattoussi H., Medintz I: L. 2009. Delivering quantum dots into cells: strategies, progress and remaining issues. Anal. Bioanal. Chem. 393: 1091−1105.
- Delehanty J. B., Medintz I. L., Pons T., Brunei F. M., Dawson P. E., Mattoussi H. 2006. Self-assembled quantum dot-peptide bioconjugates for selective intracellular delivery. Bioconjug. Chem. 17: 920−927.
- Derfus A. M., Chan W. C. W., Bhatia S. N. 2004a. Intracellular delivery of quantum dots for live cell labeling and organelle tracking. Adv. Mater. 16: 961−966.
- Derfus A. M., Chan W. C. W., Bhatia S. N. 2004b. Probing the cytotoxicity of semiconductor quantum dots. Nano Lett. 4: 11−18.
- Duan Hi, Nie S. 2007. Cell-penetrating* quantum dots based on multivalent and endosome-disruptingsurface coatings. J. Am. Chem. Soc. 129: 3333−3338.
- Dubertret B., Skourides P., Norris D. J., Noireaux V., Brivanlou A. H, Libchaber A. 2002. In vivo imaging* of quantum" dots encapsulated in phospholipid micelles. Science. 298: 1759−1762.
- Duchardt F., Fotin-Mleczek M., Schwarz H., Fischer R., Brock R. 2007. A comprehensive model for the cellular uptake of cationic cell-penetrating peptides. Traffic. 8: 848−866.
- Dunn K. W., Maxfield F. R. 1992. Delivery of ligands from sorting endosomes to late endosomes occurs by maturation of sorting endosomes. J. Cell Biol. 117: 301−310.
- Dupre S., Volland C., Haguenauer-Tsapis R: 2001. Membrane transport: ubiquitylation in endosomal sorting. Curr. Biol. 11: 932−934.
- De Duve C. 1963. The lysosome. Sci. Am. 208: 64−72.
- Erogbogbo F., Yong K., Roy L, Xu G., Prasad P. N., Swihart M. T. 2008. Biocompatible luminescent silicon quantum dots for imaging of cancer cells. ACS Nano. 2: 873−878.
- Flucher B. E., Terasaki M., Chin H. M., Beeler T. J., Daniels M. P. 1991. Biogenesis of transverse tubules in skeletal muscle in vitro. Develop. Biol. 145: 77−90.
- Geys J., Nemmar A., Verbeken E., Smolders E., Ratoi M., Hoylaerts M. F., Nemery B., Hoet P. H. 2008. Acute toxicity and prothrombotic effects of quantum dots: impact of surface charge. Environ Health Perspect. 116: 16 071 613.
- Germain R. N. 2004. An innately interesting decade of research in immunology. Nat. Med. 10: 1307−1320.
- Gruenberg J., Griffiths G., Howell K. E. 1989. Characterization^ of the early endosome and putative endocytic carrier vesicles in vivo and' with an assay of vesicle fusion in vitro. J. Cell Biol. 108: 1301−1316.
- Hardman R. 2006. A toxicologic review of quantum dots: toxicity depends on physicochemical and environmental factors. Environ Health Perspect. 114: 165−172.
- Heuser J. E., Anderson R. G. 1989. Hypertonic media inhibit receptor-mediated endocytosis by blocking clathrin-coated pit formation. J. Cell Biol. 108 :38SM00.
- Hild W. A., Breunig M., Goepferich A. 2008. Quantum dots nano-sized probes for the exploration of cellular and intracellular targeting. Eur. J. Pharm. Biopharm. 68: 153−168.
- Hines M. A., Guyot-Sionnest P. 1996. Synthesis and characterization of strongly luminescent ZnS-capped CdSe nanocrystals. J. Phys. Chem. 100: 468−471.
- Holbro T., Civenni G., Hynes N. E. 2003. The ErbB receptors and their role in cancer progression. Exp. Cell Res. 284: 99−110.
- Hoshino A., FujiokaK., Oku T., Suga M, Sasaki Y. F., Ohta T., Yasuhara M., Suzuki K., Yamamoto K. 2004. Physicochemical properties and cellular toxicity of nanocrystal quantum dots depend on their surface modification. Nano Lett. 4: 2163−2169.
- Howarth M., Liu W., Puthenveetil S., Zheng Y., Marshall L. F., Schmidt M: M., Wittrup K. D., Bawendi M. G., Ting A., Y. 2008. Monovalent, reduced-size quantum dots for imaging receptors on? living cells. Nat. Meth. 5: 397—399.
- Hurley J. H., Emr Si D. 2006. The ESCRT complexes: structure and mechanism of a membrane-trafficking network. Annu Rev. Biophys. Biomol: Struct: 35: 277−298.
- Jaiswal J. K, Mattoussi H., Mauro J. M., Simon S. M. 2003. Long-term multiple color imaging of live cells using quantum dot bioconjugates. Nat. Biotechnol. 21: 47−51.
- Jorissen R. N., Walker F., Pouliot N., Garrett T. P., Ward C. W., Burgess A. W. 2003. Epidermal growth factor receptor: mechanisms of activation and signalling. Exp. Cell. Res. 284: 31−53.
- Jovic M, Sharma M., Rahajeng J., Caplan S. 2010. The early endosome: a busy sorting station for proteins at the crossroads. Histol. Histopathol. 25: 99−112.
- Kairdolf B. A., Mancini M. C., Smith A. M., Nie S. 2008. Minimizing nonspecific cellular binding of quantum dots with hydroxyl-derivatized surface coatings. Anal. Chem. 80: 3029−3034.
- Kaisto T., Rahkila P., Marjomaki V., Parton R. G., Metsikko K. 1999. Endocytosis in skeletal muscle fibers. Exp. Cell Res. 253: 551−560.
- KelfT. A., Sreenivasan V. K., Sun J., Kim E. J., Goldys E. M., Zvyagin A. V. 2010. Non-specific cellular uptake of surface-fiinctionalized quantum dots. Nanotechnology. 21 :285 105.
- Kharchenko M. V., Aksyonov A. A., Melikova M. M., Kornilova. E. S. 2007. Epidermal growth factor (EGF) receptor endocytosis is accompanied by reorganization of microtubule system in HeLa cells. Cell Biol. Int. 31: 349 359.
- Kingeter L. M., Schaefer B. C. 2009. Expanding the multicolor capabilities of basic confocal microscopes by employing red and near-infrared quantum dot conjugates. BMC Biotechnol. 9: 49.
- Kirchner C., Liedl T., Kudera S., Pellegrino T., Javier A. M., Gaub H. E., Stoelzle S., Fertig N., Parak W. J. 2005. Cytotoxicity of colloidal,' cdse and cdse/zns nanoparticles. Nano Lett. 5: 331—338.
- Kollias H. D., Perry R. L., Miyake T., Aziz A., McDermott J. C. 2006. Smad7 promotes and enhances skeletal muscle differentiation. Mol. Cell. Biol. 26: 6248−6260.
- Kong C., Su X., Chen P. /., Stahl P. D. 2007. Rinl interacts with signal-transducing adaptor molecule (STAM) and mediates epidermal growth factor receptor trafficking and degradation. J. Biol. Chem. 282: 15 294−15 301.
- Koshman Y. E., Waters S. B., Walker L. A., Los T., de Tombe P., Goldspink P. H., Russell B. 2008. Delivery and visualization of proteins conjugated to quantum dots in cardiac myocytes. J. Mol. Cell Cardiol. 45: 853−856.
- Krolenko S. A., Adamyan S. Ya., Belyaeva T. N., Mozhenok T. P. 2006. Acridine orange accumulation in acid organelles of normal and vacuolated frog skeletal muscle fibres. Cell Biol. Int. 30: 933−939.
- Krolenko S. A., Lucy J. A. 2001. Reversible vacuolation of T-tubules in skeletal muscle: mechanisms and implications for cell biology. Int. Rev. Cytol. 202: 243−298.
- Kuo T. R., Lee C. F., Lin S. J., Dong C. Y., Chen C. C., Tan H. Y. 2011. Studies of Intracorneal Distribution and Cytotoxicity of Quantum Dots: Risk Assessment of Eye Exposure. Toxicol. 24: 253−261.
- Lee J., Kim J., Park E., Jo S., Song R. 2008. PEG-ylated cationic CdSe/ZnS QDs as an efficient intracellular labeling agent. Phys. Chem. Chem. Phys. 10: 1739−1742.
- Li S., Wang Y., Wang H., Bai Y., Liang G., Wang Y., Huang N., Xiao Z. 2011. MicroRNAs as participants in cytotoxicity of CdTe quantum dots in NIH/3T3 cells. Biomaterials 32: 3807−3814.
- Lidke D. S., Nagy P., Heintzmann R., Arndt-Jovin D. J., Post J. N., Grecco H. E., Jares-Erijman E. A., Jovin T. M. 2004. Quantum dot ligands provide new insights into erbB/HER receptor-mediated signal transduction. Nat. Biotechnol. 22: 198−203.
- Lin S., Xie X., Patel M. R., Yang Y H., Li Z., Cao F., Gheysens O., Zhang Y., Gambhir S. S., Rao J. H., Wu J. C. 2007. Quantum dot imaging for. embryonic stem cells. BMC Biotechnol. 7:67.
- Lindgren M., Hallbrink M., Prochiantz A., Langel U. 2000. Cellpenetrating peptides. Trends Pharmacol. Sci. 21: 99−103.
- Lindmo K., Stenmark H. 2006. Regulation of membrane traffic by phosphoinositide 3-kinases. J. Cell Sci. 119: 605−614.
- Liu W., Howarth M., Greytak A. B., Zheng Y., Nocera D. G., Ting A. Y., Bawendi M. G 2008. Compact biocompatible quantum dots functionalized for cellular imaging. J. Am. Chem. Soc. 130: 1274−1284.
- Lu Z., Joseph D., Bugnard E., Zaal K. J., Ralston E. 2001. Golgi complex reorganization during muscle differentiation: visualization in living cells and mechanism. Mol. Biol. Cell. 12: 795−808.
- Mainardes R. M., Gremiao M. P., Brunetti I. L., da Fonseca L. M., Khalil N. M. 2008. Zidovudine-loaded PLA and PLA-PEG blend nanoparticles: Influence of polymer type on phagocytic uptake by polymorphonuclear cells. J. Pharm. Sci. 98 :257−267.
- Mahto S. K., Park C., Yoon T. H., Rhee S. W. 2010. Assessment of cytocompatibility of surface-modified CdSe/ZnSe quantum dots for BALB/3T3 fibroblast cells. Toxicol In Vitro. 24: 1070−1077.
- Marsh M., McMahon H. T. 1999. The structural era of endocytosis. Science. 285 :215−220.
- Maysinger D., Behrendt M, Lalancette-Hebert M., Kriz J. 2007. Real-time imaging of astrocyte response to quantum dots: in vivo screening model system for biocompatibility of nanoparticles. Nano Lett. 7: 2513−2520.
- Mellman I., Fuchs R., Helenius A. 1986. Acidification of the endocytic and exocytic pathways. Annu. Rev. Biochem. 55: 663−700.
- Miaczynska M., Pelkmans L., Zerial M. 2004. Not just a sink: endosomes in control of signal transduction. Curr. Opin. Cell Biol. 16: 400−406.
- Michalet X., Pinaud F. F., Bentolila L. A., Tsay J. M., Doose S., Li J. J., Sundaresan G., Wu A. M, Gambhir S. S., Weiss S. 2005. Quantum dots for live cells, in vivo imaging, and diagnostics. Science. 307: 538−544.
- Michalet X., Pinaud F., Lacoste T. D., Dahan M., Bruchez M. P., Alivisatos A. P., Weiss S. 2001. Properties of fluorescent semiconductor nanocrystals and their application to biological labeling. Single Mol. 2: 261−276.
- MinshallR. D., Tiruppathi C., Vogel S. M., Niles W. D., Gilchrist A., Hamm H. E., Malik A. B. 2000. Endothelial cell-surface gp60 activates vesicle formation and trafficking via G (i)-coupled Src kinase signaling pathway. J. Cell. Biol. 150: 1057−1070.
- Mok H., Bae K. H., Ahn C. H., Park T. G. 2009. PEGylated and MMP-2 specifically dePEGylated quantum dots: comparative evaluation of cellular uptake. Langmuir 25: 1645−1650.
- Mueller J., Kretzschmar I., Volbner R., Boisguerin P. 2008. Comparison of cellular uptake using 22 CPPs in 4 different cell lines. Bioconjugate Chem. 19: 2363−2374.
- Murphy R. F. 1991. Maturation models for endosome and lysosome biogenesis. Trends Cell Biol. 1: 77−82.
- Murray C. B., Norris D. J., Bawendi M. G. 1993. Synthesis and characterization of nearly monodisperse CdE (E = S, Se, Te) semiconductor nanocrystallites. J. Am. Chem. Soc. 115: 8706−8715.
- Niles W. D., Malik A. B. 1999. Endocytosis and exocytosis events regulate vesicle traffic in endothelial cells. J. Membr. Biol. 167: 85−101.
- Pan Y. L, Cai J. Y., Oin L., Wang H. 2006. Atomic force microscopy-based celli nanostructure for ligand-conjugated quantum dot endocytosis. Acta Biochirm Biophys. Sin. 38: 646−652.
- Park J., Gu L., von Maltzahn G., Ruoslahti E., Bhatia S. N., Sailor M. J. 2009. Biodegradable luminescent porous silicon nanoparticles for in vivo applications. Nat. Mater. 8: 331−336.
- Pelkmans L. 2005. Secrets of caveolae- and lipid raft-mediated endocytosis revealed by mammalian viruses. Biochim. Biophys. Acta. 1746: 295−304.
- Poon G. M., Gariepy J. 2007. Cell-surface proteoglycans as molecular portals for. cationic peptide and polymer entry into cells. Biochem. Soc. Trans. 35: 788−793.
- Pradhan N., Goorskey D., Thessing J., Peng X. 2005. An alternative of CdSe nanocrystal emitters: pure and tunable impurity emissions in ZnSe nanocrystals. J. Am. Chem. Soc. 127: 17 586−17 587.
- Puente L. G., Voisin S., Lee R. E., Megeney L. A. 2006. Reconstructing the regulatory kinase pathways of myogenesis from phosphopeptide data. Molt Cell Proteomics. 5: 2244−2251.
- Raj an S. S., Liu H. Y., Vu T. Q. 2008. Ligand-bound quantum dot probes for studying the molecular scale dynamics of receptor, endocytic trafficking in live cells. ACS Nano. 2: 1153−1166.
- Ralston E. 1993. Changes in architecture of the Golgi complex and other subcellular organelles during myogenesis. J. Cell Biol. 120: 399−409.
- Ralston E., Ploug T., Kalhovde J., Lomo T. 2001. Golgi complex, endoplasmic reticulum exit sites, and microtubules in skeletal muscle fibers are organized by patterned activity. J. Neurosci. 21: 875−883.
- Reiss P., Protiure M., Li L. 2009. Core/Shell semiconductor nanocrystals. Small. 5: 154−168.
- Ren Y" Cheng L., Rong Z., Li Z, Li Y, Zhang X., Xiong S., Hu J., Fu X. Y., Chang Z. 2008. hSef potentiates EGF-mediated MAPK signaling through affecting EGFR trafficking and degradation. Cell Signal. 20: 518−533.
- Ruan G., Agrawal A., Marcus A. I., Nie S. 2007. Imaging and tracking of tat peptide-conjugated quantum dots in living cells: new insights into nanoparticle uptake, intracellular transport, and vesicle shedding. J. Am. Chem. Soc. 129: 14 759−14 766.
- Ryman-Rasmussen J. P., Riviere J. E., Monteiro-Riviere N. A. 2006. Penetration of intact skin by quantum dots with diverse physicochemical properties. Toxicol. Sei. 91: 159—165.
- Ryman-Rasmussen J. P., Riviere J. E., Monteiro-Riviere N. A. 2007a. Variables influencing interactions of untargeted quantum dot nanoparticles with skin cells and identification of biochemical modulators. Nano Lett. 7: 1344−1348.
- Ryman-Rasmussen J. P., Riviere J. E., Monteiro-Riviere N. A. 2007b. Surface coatings determine cytotoxicity and irritation potential -of quantum dot nanoparticles in epidermal keratinocytes. J. Invest. Dermatol. 127: 143—153.
- Sanger J. W., Chowrashi P., Shaner N. C., Spalthoff S., Wang J., Freeman N. L., Sanger J. M. 2002″. Myofibrillogenesis in skeletal muscle cells. Clin. Orthop. Relat. Res. 66: 153−162.
- Sawant R., Torchilin V. 2011. Intracellular delivery of nanoparticles with CPPs. Methods Mol. Biol. 683: 431−451.
- Schlessinger J. 1988. Regulation of cell growth and transformation by the epidermal growth factor receptor. Adv. Exp. Med. Biol. 234: 65—73.
- Smith A. M., Nie S. 2009. Next-generation quantum dots. Nat. Biotech. 27: 732−733.
- Steinman R. M., Mellman I. S., Muller W. A., Cohn Z. A. 1983. Endocytosis and the recycling of plasma membrane. J. Cell Biol. 96: 1−27.
- Sukhanova A., Devy J., Venteo L., Kaplan H., Artemyev M., Oleinikov V., Klinov D., Pluot M., Cohen J. H., Nabiev I. 2004. Biocompatible fluorescent nanocrystals for immunolabeling of membrane proteins and cells. Anal. Biochem. 324: 60−67.
- Tekle C., Deurs B., Sandvig K., Iversen T. G. 2008. Cellular trafficking of quantum dot-ligand bioconjugates and their induction of changes in normal routing’of unconjugated ligands. Nano Lett. 8: 1858−1865.
- Thome R. G., Nicholson, C. 2006. In vivo diffusion analysis with quantum: dots and dextrans predicts the width of brain extracellular space. Proc. Natl. Acad. Sci. USA. 103: 5567−5572.
- Thornell L. E., Price M. G. 1991. The cytoskeleton in muscle cells in relation to function. Biochem. Soc. Trans. 19: 1116−1119.
- Ullrich A., Schlessinger J. 1990. Signal transduction by receptors with tyrosine kinase activity. Cell. 61: 203−212.
- Vu T. Q., MaddipatiR., Blute T. A., Nehilla B. J., Nusblat L., Desai T. A. 2005. Peptide-conjugated quantum dots activate neuronal receptors and initiate downstream signaling of neurite growth. Nano Lett. 5: 603−607.
- Walther C., Meyer K., Rennert R., Neundorf I. 2008. Quantum dot-carrier peptide conjugates suitable for imaging and delivery applications. Bioconjug Chem. 19 :2346−2356.
- Wang C, Gao X, SuX. 2010. In vitro and in vivo imaging with quantum dots. Anal Bioanal Chem. 397: 1397−1415.
- Wang L., Nagesha D. K., Selvarasah S., Dokmeci M. R., Carrier R. L. 2008. Toxicity of CdSe nanoparticles in Caco-2 cell cultures. J. Nanobiotechnology. 6: 11−26.
- Wang Y., Pennock S., Chen X., Wang Z. 2002. Endosomal signaling of epidermal growth factor receptor stimulates signal transduction pathways leading to cell survival. Mol. Cell Biol. 22: 7279−7290.
- Wei Y., JanaN. R., TanS. J., YingJ. Y 2009. Surface coating directed cellular delivery of TAT-functionalized quantum dots. Bioconjug. Chem. 20: 17 521 758.
- Weisz O. A. 2003. Acidification and protein traffic. Int. Rev. Cytol. 226: 259 319.
- Wileman T., Harding C., Stahl P. 1985. Receptor-mediated endocytosis. Biochem. J. 232: 1−14.
- Wiley H. S., Burke P. M. 2001. Regulation, of1 receptor tyrosine kinase signaling by endocytic trafficking. Traffic. 2001 2: 12−18.
- Wilkinson K. D. 2000.' Ubiquitination and deubiquitination: targeting of proteins for degradation by the proteasome. Semin. Cell Dev. Biol. 11: !41
- Wu X, Liu H., Liu J., Haley K. N., Treadway J. A., Larson J. P., Ge N., Peale' F., Bruchez M. P. 2003. Immunofluorescent labeling of cancer marker Her2 and other cellular targets with semiconductor quantum dots. Nat. Biotechnol. 21 :41−46.
- Xiong R., Li Z., Mi L., Wang P. N., Chen J. Y., WangL., Yang W. L. 2010. Study on the intracellular fate of Tat peptide-conjugated quantum dots by spectroscopic investigation. J. Fluoresc. 20: 551—556.
- Xiao Y., Forry S. P., Gao X., Hoi brook R. D., Telford W. G., Tona A. 2010. Dynamics and mechanisms" of quantum dot nanoparticle cellular uptake. J. Nanobiotechnology.8: 13 (000−000).
- Xue F. L., Chen J. Y., Guo J., Wang C. C., Yang W. L., Wang P. N., Lu D. R. 2007. Enhancement of intracellular delivery of CdTe quantum dots (QDs) to living cells by Tat conjugation. J. Fluoresc. 17: 149−154.
- Yana M., Zhanga Y., Xua K., Fub T., Qinb H., Zhenga X. 2011. An, in vitro study of vascular endothelial toxicity of CdTe quantum dots. Toxicology. 282 :
- Zhang L. W., Monteiro-Riviere N. A. 2009. Mechanisms of quantum dot nanoparticle cellular uptake. Toxicol Sci. 110: 138−155.148.94.103.