| Literature DB >> 30175032 |
Abdul Azeez Nazeer1, Sreelakshmi Udhayakumar1, Saranpriya Mani1, Mothilal Dhanapal1, Sudarshana Deepa Vijaykumar1.
Abstract
Surface modification of nanoparticles for biological applications is receiving enormous interest among the research community due to the ability to alchemy the toxic nanoparticles into biocompatible compounds. In this study, the agrowastes of Moringa oleifera and Coriandrum sativum were used to surface modify the magnesium oxide nanoparticles and ferric oxide nanoparticles respectively. The agrowaste amended magnesium oxide nano particles (AMNP) and agrowaste amended ferric oxide nanoparticles (AFNP) were characterized using scanning electron microscope, X-ray diffractometer, Fourier transformed-infra red spectroscope to justify the formation and surface modification of nanoparticles with the organic functional groups from the agro wastes. The surface modified nano particles were tested for their biocompatibility and ability to treat the chlorosis in Glycine max. On comparison between the two metal based nanoparticles, AMNP exhibited better chlorosis treating ability than the AFNP. Both the nano particles showed increased potency at minimal amount, 30 μg and the higher concentrations till 125 μg exhibited down run of the potency which was again enhanced from 250 μg of nanoparticle treatment to plants. Further the surface modified nanoparticles were assessed for biocompatibility on human embryonic kidney (HEK-293) cell line which proved that the cell lines are non-toxic to normal human cells. The size of the particles and the concentration is suggested to be responsible for the effective chlorosis treatment and the organic functional groups responsible for the reduction of toxicity of the particles to the plants.Entities:
Keywords: Biocompatibility; Chlorophyll; Chlorosis; Fe2O3 nanoparticles; MgO nanoparticles; Surface modification
Year: 2018 PMID: 30175032 PMCID: PMC6105185 DOI: 10.1186/s40580-018-0155-0
Source DB: PubMed Journal: Nano Converg ISSN: 2196-5404
Fig. 1FTIR spectrum of AFNP
Fig. 2FTIR spectrum of AMNP
Fig. 3XRD pattern of the AFNP
Fig. 4XRD pattern of the AMNP
Fig. 5SEM micrograph of AFNP. a The magnification scale of 5 μm shows the orthorhombic crystals, b the magnification scale of 1μm shows the size of the crystals that are in nanometric scale
Fig. 6SEM micrograph of AMNP. a The magnification scale of 5 μm shows the cubic crystals, b the magnification scale of 1μm shows the size of the crystals that are in nanometric scale
Fig. 7Chlorophyll content curve with respect to the amount of AFNP and AMNP
Fig. 8Graphical representation of the toxicity of the nanoparticles on HEK-293 cell line through MTT assay