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Targeted delivery of quercetin via pH-responsive zinc oxide nanoparticles for breast cancer therapy. | LitMetric

Targeted delivery of quercetin via pH-responsive zinc oxide nanoparticles for breast cancer therapy.

Mater Sci Eng C Mater Biol Appl

Division of Molecular Medicine, Bose Institute, P-1/12, CIT Scheme VII M, Kolkata 700054, India. Electronic address:

Published: July 2019

AI Article Synopsis

  • Naturally occurring bioactive compounds, like quercetin, show promise as anti-tumor agents, but face challenges like poor targeting and low bioavailability, limiting their therapeutic applications.
  • To address these issues, researchers developed phenylboronic acid (PBA) conjugated zinc oxide nanoparticles (PBA-ZnO) that effectively deliver quercetin specifically to cancer cells, demonstrating a pH-responsive release mechanism.
  • In studies, PBA-ZnO-Q nanoparticles induced cell death in breast cancer cells and inhibited tumor growth in mice while reducing toxicity to vital organs, indicating their potential for clinical cancer treatment.

Article Abstract

Naturally occurring bioactive compounds are gaining much importance as anti-tumor agents in recent times due to their high therapeutic potential and less systemic toxicity. However, different preclinical and clinical studies have noted significant shortcomings, such as nonspecific tumor targeting and low bioavailability which limit their usage in therapeutics. Therefore, a safe and compatible nanoparticle mediated controlled drug delivery system is in high demand to enable effective transport of the drug candidates in the tumor tissue. Herein, we have synthesized phenylboronic acid (PBA) conjugated Zinc oxide nanoparticles (PBA-ZnO), loaded with quercetin (a bioflavonoid widely found in plants), with zeta potential around -10.2 mV and diameter below 40 nm. Presence of PBA moieties over the nanoparticle surface facilitates targeted delivery of quercetin to the sialic acid over-expressed cancer cells. Moreover, Quercetin loaded PBA-ZnO nanoparticles (denoted as PBA-ZnO-Q) showed pH responsive drug release behavior. Results suggested that PBA-ZnO-Q induced apoptotic cell death in human breast cancer cells (MCF-7) via enhanced oxidative stress and mitochondrial damage. In line with the in vitro results, PBA-ZnO-Q was found to be effective in reducing tumor growth in EAC tumor bearing mice. Most interestingly, PBA-ZnO-Q is found to reduce tumor associated toxicity in liver, kidney and spleen. The cytotoxic potential of the nanohybrid is attributed to the combinatorial cytotoxic effects of quercetin and ZnO in the cancer cells. Overall, the presented data highlighted the chemotherapeutic potential of the novel nanohybrid, PBA-ZnO-Q which can be considered for clinical cancer treatment.

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Source
http://dx.doi.org/10.1016/j.msec.2019.02.096DOI Listing

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