Barium titanate microparticles as potential carrier platform for lanthanide radionuclides for their use in the treatment of arthritis.
Sudipta ChakrabortyK V VimalnathJyothi SharmaPriyalata ShettyH D SarmaRubel ChakravartyDeep PrakashP K SinhaAshutosh DashPublished in: Journal of labelled compounds & radiopharmaceuticals (2018)
Since the inception of radiation synovectomy, a host of radioactive colloids and microparticles incorporating suitable therapeutic radionuclides have been proposed for the treatment of arthritis. The present article reports the synthesis and evaluation of barium titanate microparticles as an innovative and effective carrier platform for lanthanide radionuclides in the preparation of therapeutic agents for treatment of arthritis. The material was synthesized by mechanochemical route and characterized by X-ray diffraction, scanning electron microscopy, surface area, and particle size distribution analyses. Loading of lanthanide radionuclides (166 Ho, 153 Sm, 177 Lu, and 169 Er) on the microparticles was achieved in high yield (> 95%) resulting in the formulation of loaded particulates with excellent radiochemical purities (> 99%). Radiolanthanide-loaded microparticles exhibited excellent in vitro stability in human serum. In vitro diethylene triamine pentaacetic acid challenge study indicated fairly strong chemical association of lanthanides with barium titanate microparticles. Long-term biodistribution studies carried out after administration of 177 Lu-loaded microparticles into one of the knee joints of normal Wistar rats revealed near-complete retention of the formulation (> 96% of the administered radioactivity) within the joint cavity even 14 days post-administration. The excellent localization of the loaded microparticles was further confirmed by sequential whole-body radio-luminescence imaging studies carried out using 166 Ho-loaded microparticles.
Keyphrases
- drug delivery
- electron microscopy
- cancer therapy
- rheumatoid arthritis
- wound healing
- emergency department
- total knee arthroplasty
- energy transfer
- high throughput
- risk assessment
- metal organic framework
- human health
- signaling pathway
- radiation induced
- smoking cessation
- replacement therapy
- single cell
- contrast enhanced