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1.
Phys Chem Chem Phys ; 23(24): 13473-13482, 2021 Jun 23.
Artigo em Inglês | MEDLINE | ID: mdl-34109956

RESUMO

Nanomaterials possess a wide range of potential applications due to their novel properties and exceptionally high activity as a result of their large surface to volume ratios compared to bulk matter. The active surface may present both advantage and risk when the nanomaterials interact with living organisms. As the overall biological impact of nanomaterials is triggered and mediated by interactions at the bio-nano interface, an ability to predict those from the atomistic descriptors, especially before the material is produced, can present enormous advantage for the development of nanotechnology. Fast screening of nanomaterials and their variations for specific biological effects can be enabled using computational materials modelling. The challenge lies in the range of scales that needs to be crossed from the material-specific atomistic representation to the relevant length scales covering typical biomolecules (proteins and lipids). In this work, we present a systematic multiscale approach that allows one to evaluate crucial interactions at the bionano interface from the first principles without any prior information about the material and thus establish links between the details of the nanomaterials structure to protein-nanoparticle interactions. As an example, an advanced computational characterization of titanium dioxide nanoparticles (6 different surfaces of rutile and anatase polymorphs) has been performed. We computed characteristics of the titanium dioxide interface with water using density functional theory for electronic density, used these parameters to derive an atomistic force field, and calculated adsorption energies for essential biomolecules on the surface of titania nanoparticles via direct atomistic simulations and coarse-grained molecular dynamics. Hydration energies, as well as adsorption energies for a set of 40 blood proteins are reported.


Assuntos
Nanopartículas/química , Proteínas/química , Teoria da Densidade Funcional , Simulação de Dinâmica Molecular , Propriedades de Superfície , Titânio/química , Água/química
2.
Adv Mater ; 32(47): e2003913, 2020 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-33073368

RESUMO

On a daily basis, people are exposed to a multitude of health-hazardous airborne particulate matter with notable deposition in the fragile alveolar region of the lungs. Hence, there is a great need for identification and prediction of material-associated diseases, currently hindered due to the lack of in-depth understanding of causal relationships, in particular between acute exposures and chronic symptoms. By applying advanced microscopies and omics to in vitro and in vivo systems, together with in silico molecular modeling, it is determined herein that the long-lasting response to a single exposure can originate from the interplay between the newly discovered nanomaterial quarantining and nanomaterial cycling between different lung cell types. This new insight finally allows prediction of the spectrum of lung inflammation associated with materials of interest using only in vitro measurements and in silico modeling, potentially relating outcomes to material properties for a large number of materials, and thus boosting safe-by-design-based material development. Because of its profound implications for animal-free predictive toxicology, this work paves the way to a more efficient and hazard-free introduction of numerous new advanced materials into our lives.


Assuntos
Simulação por Computador , Inalação , Pulmão/efeitos dos fármacos , Pulmão/patologia , Material Particulado/toxicidade , Doença Crônica , Epitélio/efeitos dos fármacos , Epitélio/metabolismo , Epitélio/patologia , Inflamação/induzido quimicamente , Inflamação/metabolismo , Inflamação/patologia , Pulmão/metabolismo , Tamanho da Partícula , Material Particulado/química , Material Particulado/metabolismo , Segurança , Testes de Toxicidade
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