Hemocompatibility of biogenic phosphorus nano-agromaterials at environmentally relevant and supra-environmental concentrations for occupational exposure
Literature Information
Luis O. B. Afonso, Aaron G. Schultz, Amit Kumar Dinda
Phosphorus (P)-based nanomaterials (NMs), such as those derived from rock phosphate (RP) and hydroxyapatite (HAP), have the potential to be used as nanofertilisers to supplement depleting P levels in agricultural soils. Before applying to agricultural areas, complete profiling is essential to assess the potential risk to human health from occupational exposure, particularly for the predicted environmentally relevant concentration (ERC) magnitudes. A systematic investigation on blood contact properties such as percent hemolysis, platelet aggregation, blood coagulation time, and interactions with serum plasma protein was performed in this ex vivo study using National Institute of Health (NIH) guidelines. For ERCs (0–50 μg mL−1) and supra-environmental concentrations (SECs, 50–1000 μg mL−1), the effects of biologically synthesised nanohydroxyapatite (nHAP) and nanophosphorus (nP) were compared to those of chemically synthesised and commercially available nHAPs and bulk RP. Our results show that biogenic nHAP and nP did not have any significant effect on hemolysis, platelet aggregation or coagulation processes at ERCs and SECs whereas the bulk RP had significant hemotoxic effects. Protein quantification analysis revealed that proteins from blood serum adsorb onto NMs, forming a biomolecular corona. Our results highlight the hemocompatible behaviour of biologically synthesized P-based NMs at predicted ERCs, which are most likely to be occupational exposures. These findings may provide a fundamental understanding of the overall risks presented by P-based nanofertilisers.
Recommended Journals
Related Literature
Iron based photoanodes for solar fuel production
Prince Saurabh Bassi, Gurudayal, Lydia Helena Wong
DOI: 10.1039/C3CP55174A
Structure, ligands and substrate coordination of the oxygen-evolving complex of photosystem II in the S2 state: a combined EPR and DFT study
Thomas Lohmiller, Vera Krewald, Montserrat Pérez Navarro, Marius Retegan, Leonid Rapatskiy, Marc M. Nowaczyk, Alain Boussac, Frank Neese, Wolfgang Lubitz, Dimitrios A. Pantazis, Nicholas Cox
DOI: 10.1039/C3CP55017F
Halogen bonding of electrophilic bromocarbons with pseudohalide anions
Sergiy V. Rosokha, Charlotte L. Stern, Alan Swartz, Rory Stewart
DOI: 10.1039/C4CP00976B
Defect-induced semiconductor to metal transition in graphene monoxide
Jungwook Woo, Kyung-Han Yun, Sung Beom Cho, Yong-Chae Chung
DOI: 10.1039/C4CP01518E
Tin doping speeds up hole transfer during light-driven water oxidation at hematite photoanodes
Halina K. Dunn, Johann M. Feckl, Alexander Müller, Dina Fattakhova-Rohlfing, Samuel G. Morehead, Julian Roos, Laurence M. Peter, Christina Scheu, Thomas Bein
DOI: 10.1039/C4CP03946G
Shallow-tunnelling correction factor for use with Wigner–Eyring transition-state theory
Yanchuan Zhang, Judith B. Rommel, Marko T. Cvitaš, Stuart C. Althorpe
DOI: 10.1039/C4CP03235G
Conformational propensities and dynamics of a βγ-crystallin, an intrinsically disordered protein
Venkatraman Ramanujam, Atul K. Srivastava
DOI: 10.1039/C3CP53558D
Deep oxidation of 1,2-dichlorobenzene over Ti-doped iron oxide
Xiaodong Ma, Xueyue Suo, Huiqin Cao, Jie Guo, Lu Lv, Hongwen Sun, Meihua Zheng
DOI: 10.1039/C4CP00979G
Specific features of the electronic structure of a novel ternary Tl3PbI5 optoelectronic material
I. V. Kityk, N. M. Denysyuk, O. Y. Khyzhun, S. I. Levkovets, O. V. Parasyuk, A. O. Fedorchuk, G. L. Myronchuk
DOI: 10.1039/C4CP00591K
Photosynthesis: from natural to artificial
Johannes Messinger, Wolfgang Lubitz, Jian-Ren Shen
DOI: 10.1039/C4CP90053G
You might also like
What is Ethyl 3-cyclohexylpropanoate (CAS: 10094-36-7)?
Ethyl 3-cyclohexylpropanoate is a clear, colorless to light yellow liquid with a...
How should waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl)nicotinic acid (CAS: 34783-31-8) be handled?
Waste containing 2-(Hydroxymethyl)-5-(methoxycarbonyl)-6-methyl-4-(2-nitrophenyl...
How should waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) be handled?
Waste containing 2,4,6-Tris(pentafluoroethyl)-1,3,5-triazine (CAS: 858-46-8) sho...
What precautions should be taken when handling Chloroac-nle-oh (CAS: 56787-36-1)?
When handling Chloroac-nle-oh (CAS: 56787-36-1), it is essential to wear appropr...
What industries use Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate (CAS: 752244-05-6)?
Ethyl 6-phenylimidazo[2,1-b][1,3]thiazole-3-carboxylate is primarily used in the...
Are there alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis?
Alternatives to alpha-(2-Bromophenyl)benzylamine (CAS: 55095-15-3) in synthesis ...
How should waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) be handled?
Waste containing 2-Chloro-5-methoxypyridine (CAS: 139585-48-1) should be managed...
What industries use 1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9)?
1-(4-Methoxyphenyl)-2,5-dimethyl-1H-pyrrole (CAS: 5044-27-9) is used in various ...
Are there alternatives to 3-Bromo-5-(N-Boc)aminomethylisoxazole (CAS: 903131-45-3) in synthesis?
There are alternative reagents and compounds that can be used in the synthesis o...
What is Tungsten(IV) oxide (CAS: 12036-22-5)?
Tungsten(IV) oxide, also known as tungsten dioxide, is a chemical compound with ...













![2-{3-[4-(3-Chlorophenyl)-1-piperazinyl]propyl}[1,2,4]triazolo[4,3-a]pyridin-3(2H)-one hydrochloride (1:1) structure 2-{3-[4-(3-Chlorophenyl)-1-piperazinyl]propyl}[1,2,4]triazolo[4,3-a]pyridin-3(2H)-one hydrochloride (1:1) structure](https://static.chemtradehub.com/structs/253/25332-39-2-496e.webp)

