Literature DB >> 22786674

The challenge to relate the physicochemical properties of colloidal nanoparticles to their cytotoxicity.

Pilar Rivera-Gil1, Dorleta Jimenez de Aberasturi, Verena Wulf, Beatriz Pelaz, Pablo del Pino, Yuanyuan Zhao, Jesus M de la Fuente, Idoia Ruiz de Larramendi, Teófilo Rojo, Xing-Jie Liang, Wolfgang J Parak.   

Abstract

Nanomaterials offer opportunities to construct novel compounds for many different fields. Applications include devices for energy, including solar cells, batteries, and fuel cells, and for health, including contrast agents and mediators for photodynamic therapy and hyperthermia. Despite these promising applications, any new class of materials also bears a potential risk for human health and the environment. The advantages and innovations of these materials must be thoroughly compared against risks to evaluate each new nanomaterial. Although nanomaterials are often used intentionally, they can also be released unintentionally either inside the human body, through wearing of a prosthesis or the inhalation of fumes, or into the environment, through mechanical wear or chemical powder waste. This possibility adds to the importance of understanding potential risks from these materials. Because of fundamental differences in nanomaterials, sound risk assessment currently requires that researchers perform toxicology studies on each new nanomaterial. However, if toxicity could be correlated to the basic physicochemical properties of nanomaterials, those relationships could allow researchers to predict potential risks and design nanomaterials with minimum toxicity. In this Account we describe the physicochemical properties of nanoparticles (NPs) and how they can be determined and discuss their general importance for cytotoxicity. For simplicity, we focus primarily on in vitro toxicology that examines the interaction of living cells with engineered colloidal NPs with an inorganic core. Serious risk assessment of NPs will require additional in vivo studies. Basic physicochemical properties of nanoparticulate materials include colloidal stability, purity, inertness, size, shape, charge, and their ability to adsorb environmental compounds such as proteins. Unfortunately, the correlation of these properties with toxicity is not straightforward. First, for NPs released either unintentionally or intentionally, it can be difficult to pinpoint these properties in the materials. Therefore, researchers typically use NP models with better defined properties, which don't include the full complexity of most industrially relevant materials. In addition, many of these properties are strongly mutually connected. Therefore, it can be difficult to vary individual properties in NP models while keeping the others constant.

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Year:  2012        PMID: 22786674     DOI: 10.1021/ar300039j

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  62 in total

1.  In vivo integrity of polymer-coated gold nanoparticles.

Authors:  Wolfgang G Kreyling; Abuelmagd M Abdelmonem; Zulqurnain Ali; Frauke Alves; Marianne Geiser; Nadine Haberl; Raimo Hartmann; Stephanie Hirn; Dorleta Jimenez de Aberasturi; Karsten Kantner; Gülnaz Khadem-Saba; Jose-Maria Montenegro; Joanna Rejman; Teofilo Rojo; Idoia Ruiz de Larramendi; Roser Ufartes; Alexander Wenk; Wolfgang J Parak
Journal:  Nat Nanotechnol       Date:  2015-06-15       Impact factor: 39.213

2.  Interaction between drug delivery vehicles and cells under the effect of shear stress.

Authors:  M Godoy-Gallardo; P K Ek; M M T Jansman; B M Wohl; L Hosta-Rigau
Journal:  Biomicrofluidics       Date:  2015-06-30       Impact factor: 2.800

Review 3.  Multifunctional scanning ion conductance microscopy.

Authors:  Ashley Page; David Perry; Patrick R Unwin
Journal:  Proc Math Phys Eng Sci       Date:  2017-04-12       Impact factor: 2.704

Review 4.  Diverse Applications of Nanomedicine.

Authors:  Beatriz Pelaz; Christoph Alexiou; Ramon A Alvarez-Puebla; Frauke Alves; Anne M Andrews; Sumaira Ashraf; Lajos P Balogh; Laura Ballerini; Alessandra Bestetti; Cornelia Brendel; Susanna Bosi; Monica Carril; Warren C W Chan; Chunying Chen; Xiaodong Chen; Xiaoyuan Chen; Zhen Cheng; Daxiang Cui; Jianzhong Du; Christian Dullin; Alberto Escudero; Neus Feliu; Mingyuan Gao; Michael George; Yury Gogotsi; Arnold Grünweller; Zhongwei Gu; Naomi J Halas; Norbert Hampp; Roland K Hartmann; Mark C Hersam; Patrick Hunziker; Ji Jian; Xingyu Jiang; Philipp Jungebluth; Pranav Kadhiresan; Kazunori Kataoka; Ali Khademhosseini; Jindřich Kopeček; Nicholas A Kotov; Harald F Krug; Dong Soo Lee; Claus-Michael Lehr; Kam W Leong; Xing-Jie Liang; Mei Ling Lim; Luis M Liz-Marzán; Xiaowei Ma; Paolo Macchiarini; Huan Meng; Helmuth Möhwald; Paul Mulvaney; Andre E Nel; Shuming Nie; Peter Nordlander; Teruo Okano; Jose Oliveira; Tai Hyun Park; Reginald M Penner; Maurizio Prato; Victor Puntes; Vincent M Rotello; Amila Samarakoon; Raymond E Schaak; Youqing Shen; Sebastian Sjöqvist; Andre G Skirtach; Mahmoud G Soliman; Molly M Stevens; Hsing-Wen Sung; Ben Zhong Tang; Rainer Tietze; Buddhisha N Udugama; J Scott VanEpps; Tanja Weil; Paul S Weiss; Itamar Willner; Yuzhou Wu; Lily Yang; Zhao Yue; Qian Zhang; Qiang Zhang; Xian-En Zhang; Yuliang Zhao; Xin Zhou; Wolfgang J Parak
Journal:  ACS Nano       Date:  2017-03-14       Impact factor: 15.881

Review 5.  Positron emission tomography imaging using radiolabeled inorganic nanomaterials.

Authors:  Xiaolian Sun; Weibo Cai; Xiaoyuan Chen
Journal:  Acc Chem Res       Date:  2015-01-30       Impact factor: 22.384

6.  Interaction of colloidal nanoparticles with their local environment: the (ionic) nanoenvironment around nanoparticles is different from bulk and determines the physico-chemical properties of the nanoparticles.

Authors:  Christian Pfeiffer; Christoph Rehbock; Dominik Hühn; Carolina Carrillo-Carrion; Dorleta Jimenez de Aberasturi; Vivian Merk; Stephan Barcikowski; Wolfgang J Parak
Journal:  J R Soc Interface       Date:  2014-04-23       Impact factor: 4.118

7.  Cellular uptake, genotoxicity and cytotoxicity of cobalt ferrite magnetic nanoparticles in human breast cells.

Authors:  Elif Aşık; Yeliz Akpınar; N Tülin Güray; Mesude İşcan; Gonca Çakmak Demircigil; Mürvet Volkan
Journal:  Toxicol Res (Camb)       Date:  2016-09-06       Impact factor: 3.524

8.  The role of natural processes and surface energy of inhaled engineered nanoparticles on aggregation and corona formation.

Authors:  Akira Tsuda; Nagarjun Konduru Venkata
Journal:  NanoImpact       Date:  2016-06-11

Review 9.  The Story of Nanoparticles in Differentiation of Stem Cells into Neural Cells.

Authors:  Vajihe Asgari; Amir Landarani-Isfahani; Hossein Salehi; Noushin Amirpour; Batool Hashemibeni; Saghar Rezaei; Hamid Bahramian
Journal:  Neurochem Res       Date:  2019-11-12       Impact factor: 3.996

10.  Air-blood barrier translocation of tracheally instilled gold nanoparticles inversely depends on particle size.

Authors:  Wolfgang G Kreyling; Stephanie Hirn; Winfried Möller; Carsten Schleh; Alexander Wenk; Gülnaz Celik; Jens Lipka; Martin Schäffler; Nadine Haberl; Blair D Johnston; Ralph Sperling; Günter Schmid; Ulrich Simon; Wolfgang J Parak; Manuela Semmler-Behnke
Journal:  ACS Nano       Date:  2013-12-30       Impact factor: 15.881

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