DocumentCode
3607676
Title
Plumbagin-silver nanoparticle formulations enhance the cellular uptake of plumbagin and its antiproliferative activities
Author
Appadurai, Prakash ; Rathinasamy, Krishnan
Author_Institution
Sch. of Biotechnol., Nat. Inst. of Technol. Calicut, Calicut, India
Volume
9
Issue
5
fYear
2015
Firstpage
264
Lastpage
272
Abstract
Colloidal silver nanoparticles (AgNPs) have attracted much attention in recent years as diagnostics and new drug delivery system in cancer medicine. To study the effects of plumbagin (PLB), a relatively non-toxic napthaquinone isolated from the roots of Plumbago indica in human cervical cancer cell line and developed a formulation to enhance its cytotoxic activities. Silver nanoparticles were synthesised by chemical reduction method and complexed with PLB. Both the AgNPs and the complex PLB-AgNPs were characterised by dynamic light scattering, high-resolution scanning electron microscopy and transmission electron microscopy. The amount of PLB and PLB-AgNPs internalised was determined by ultra-violet-visible spectrophotometer. Cell inhibition was determined by sulphorhodamine B assay. Mitotic index was determined by Wright-Giemsa staining. Apoptosis induction was assessed by western blot using cleaved poly adenosine diphosphate-ribose polymerase antibody. The scanning electron microscope analysis indicated an average particle size of 32 ± 8 nm in diameter. Enhanced internalisation of PLB into the HeLa cells was observed in PLB-AgNPs. PLB inhibited proliferation of cells with IC50 value of about 18 ± 0.6 μM and blocked the cells at mitosis in a concentration-dependent manner. PLB also inhibited the post-drug exposure clonogenic survival of cells and induced apoptosis. The antiproliferative, antimitotic and apoptotic activities were also found to be increased when cells were treated with PLB-AgNPs. The authors results support the idea that AgNP could be a promising and effective drug delivery system for enhanced activity of PLB in cancer treatment.
Keywords
biochemistry; biomedical materials; cancer; cellular biophysics; colloids; drug delivery systems; drugs; enzymes; molecular biophysics; nanocomposites; nanomedicine; nanoparticles; particle size; scanning electron microscopy; silver; transmission electron microscopy; ultraviolet spectra; visible spectra; HeLa cells; PLB inhibited cell proliferation; Wright-Giemsa staining; antimitotic activities; antiproliferative activities; antiproliferative activity; apoptosis induction; apoptotic activities; cancer medicine; cancer treatment; cell inhibition; cell mitosis; cellular uptake; chemical reduction method; cleaved polyadenosine diphosphate-ribose polymerase antibody; colloidal silver nanoparticles; cytotoxic activity; drug delivery system; dynamic light scattering; enhanced internalisation; high-resolution scanning electron microscopy; human cervical cancer cell line; mitotic index; nontoxic napthaquinone; particle size; plumbagin-silver nanoparticle formulations; plumbago indica; post-drug exposure clonogenic cell survival; size 8 nm to 32 nm; sulphorhodamine B assay; transmission electron microscopy; ultra-violetvisible spectrophotometer; western blot;
fLanguage
English
Journal_Title
Nanobiotechnology, IET
Publisher
iet
ISSN
1751-8741
Type
jour
DOI
10.1049/iet-nbt.2015.0008
Filename
7289528
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