Abstract

Designing nanocarriers with actions directed at a specific organ or tissue is a very promising strategy since it can significantly reduce the toxicity of a bioactive drug. In this study, an organometallic dendrimer was used to synthesize a biocompatible drug delivery system by attaching aspirin to the periphery of the dendrimer. Our goal is to enhance the bioavailability and anticancer activity of aspirin and reduce its toxicity through successive generations of organoiron dendrimers. The biological activity of aspirin-based dendrimer complexes was evaluated. The result of antimicrobial activity of the synthesized dendrimers also demonstrated an increase in their antimicrobial activity with increased generation of the dendrimers for most types of microorganisms. This study reveals for the first time that organoiron dendrimers linked with aspirin exhibit an excellent Gram-negative activity comparable to the reference drug Gentamicin. All synthesized dendrimers were tested for their anticancer activity against breast cancer cell lines (MCF-7), hepatocellular cell lines (Hep-G2), and a non-cancer cell line, Human Embryonic Kidney (HEK293), using the MTT cell viability assay and compared against a standard anticancer drug, Doxorubicin. Compounds G3-D9-Asp and G4-D12-Asp exhibited noticeable activity against both cell lines, both of which were more effective than aspirin itself. In addition, the in vivo anti-inflammatory activity and histopathology of swollen paws showed that the designed aspirin-based dendrimers displayed significant anti-inflammatory activity; however, G2-D6-Asp showed the best anti-inflammatory activity, which was more potent than the reference drug aspirin during the same period. Moreover, the coupling of aspirin to the periphery of organoiron dendrimers showed a significant reduction in the toxicity of aspirin on the stomach.

Highlights

  • Coupling aspirin with dendrimer generations was conducted by the Steglich esterification procedure using appropriated molar ratios

  • The first-generation aspirin-based dendrimer was obtained by the reaction between G1-D2 and aspirin by obtaining the appropriate molar ratio yielding G1-D3-Asp

  • The first-generation aspirin-based dendrimer was obtained by the reaction between G1-D2 and aspirin by obtaining the8 of ap35 propriate molar ratio yielding G1-D3-Asp

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Summary

Introduction

Dendrimers are hyperbranched molecules whose size, topology, and flexibility can be strictly controlled during their synthesis.. Dendrimers are hyperbranched molecules whose size, topology, and flexibility can be strictly controlled during their synthesis.4 This allows for various functional groups to be grafted onto the outer shell of dendrimers, which can interact with other (macro) molecules [4,5]. This functionalization can be tuned to develop biocompatible and versatile products [6,7,8,9]. Their unique properties, including globular shape, nanoscale size, internal cavities, high

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