Literature DB >> 27791073

Nanomechanical mechanism for lipid bilayer damage induced by carbon nanotubes confined in intracellular vesicles.

Wenpeng Zhu1,2, Annette von dem Bussche3, Xin Yi1, Yang Qiu1, Zhongying Wang1, Paula Weston4, Robert H Hurt1,5, Agnes B Kane4,5, Huajian Gao6,5.   

Abstract

Understanding the behavior of low-dimensional nanomaterials confined in intracellular vesicles has been limited by the resolution of bioimaging techniques and the complex nature of the problem. Recent studies report that long, stiff carbon nanotubes are more cytotoxic than flexible varieties, but the mechanistic link between stiffness and cytotoxicity is not understood. Here we combine analytical modeling, molecular dynamics simulations, and in vitro intracellular imaging methods to reveal 1D carbon nanotube behavior within intracellular vesicles. We show that stiff nanotubes beyond a critical length are compressed by lysosomal membranes causing persistent tip contact with the inner membrane leaflet, leading to lipid extraction, lysosomal permeabilization, release of cathepsin B (a lysosomal protease) into the cytoplasm, and cell death. The precise material parameters needed to activate this unique mechanical pathway of nanomaterials interaction with intracellular vesicles were identified through coupled modeling, simulation, and experimental studies on carbon nanomaterials with wide variation in size, shape, and stiffness, leading to a generalized classification diagram for 1D nanocarbons that distinguishes pathogenic from biocompatible varieties based on a nanomechanical buckling criterion. For a wide variety of other 1D material classes (metal, oxide, polymer), this generalized classification diagram shows a critical threshold in length/width space that represents a transition from biologically soft to stiff, and thus identifies the important subset of all 1D materials with the potential to induce lysosomal permeability by the nanomechanical mechanism under investigation.

Entities:  

Keywords:  biomembrane; lipid extraction; lysosomal permeabilization; molecular dynamics; one-dimensional nanomaterials

Mesh:

Substances:

Year:  2016        PMID: 27791073      PMCID: PMC5098676          DOI: 10.1073/pnas.1605030113

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  30 in total

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Journal:  Phys Rev Lett       Date:  1996-05-20       Impact factor: 9.161

2.  Shape effects of filaments versus spherical particles in flow and drug delivery.

Authors:  Yan Geng; Paul Dalhaimer; Shenshen Cai; Richard Tsai; Manorama Tewari; Tamara Minko; Dennis E Discher
Journal:  Nat Nanotechnol       Date:  2007-03-25       Impact factor: 39.213

3.  How do functionalized carbon nanotubes land on, bind to and pierce through model and plasma membranes.

Authors:  Lara Lacerda; Hanene Ali-Boucetta; Sebastian Kraszewski; Mounir Tarek; Maurizio Prato; Christophe Ramseyer; Kostas Kostarelos; Alberto Bianco
Journal:  Nanoscale       Date:  2013-09-05       Impact factor: 7.790

4.  Cell entry of one-dimensional nanomaterials occurs by tip recognition and rotation.

Authors:  Xinghua Shi; Annette von dem Bussche; Robert H Hurt; Agnes B Kane; Huajian Gao
Journal:  Nat Nanotechnol       Date:  2011-09-18       Impact factor: 39.213

5.  Pluronic F108 coating decreases the lung fibrosis potential of multiwall carbon nanotubes by reducing lysosomal injury.

Authors:  Xiang Wang; Tian Xia; Matthew C Duch; Zhaoxia Ji; Haiyuan Zhang; Ruibin Li; Bingbing Sun; Sijie Lin; Huan Meng; Yu-Pei Liao; Meiying Wang; Tze-Bin Song; Yang Yang; Mark C Hersam; André E Nel
Journal:  Nano Lett       Date:  2012-05-04       Impact factor: 11.189

6.  Size-Dependent Endocytosis of Nanoparticles.

Authors:  Sulin Zhang; Ju Li; George Lykotrafitis; Gang Bao; Subra Suresh
Journal:  Adv Mater       Date:  2009       Impact factor: 30.849

Review 7.  Pulmonary toxicity of carbon nanotubes and asbestos - similarities and differences.

Authors:  Ken Donaldson; Craig A Poland; Fiona A Murphy; Marion MacFarlane; Tatyana Chernova; Anja Schinwald
Journal:  Adv Drug Deliv Rev       Date:  2013-07-27       Impact factor: 15.470

8.  Carbon nanotubes introduced into the abdominal cavity of mice show asbestos-like pathogenicity in a pilot study.

Authors:  Craig A Poland; Rodger Duffin; Ian Kinloch; Andrew Maynard; William A H Wallace; Anthony Seaton; Vicki Stone; Simon Brown; William Macnee; Ken Donaldson
Journal:  Nat Nanotechnol       Date:  2008-05-20       Impact factor: 39.213

9.  Critical role of surface chemical modifications induced by length shortening on multi-walled carbon nanotubes-induced toxicity.

Authors:  Cyrill Bussy; Mathieu Pinault; Julien Cambedouzou; Marion Julie Landry; Pascale Jegou; Martine Mayne-L'hermite; Pascale Launois; Jorge Boczkowski; Sophie Lanone
Journal:  Part Fibre Toxicol       Date:  2012-11-27       Impact factor: 9.400

10.  Effect of MWCNT size, carboxylation, and purification on in vitro and in vivo toxicity, inflammation and lung pathology.

Authors:  Raymond F Hamilton; Zheqiong Wu; Somenath Mitra; Pamela K Shaw; Andrij Holian
Journal:  Part Fibre Toxicol       Date:  2013-11-13       Impact factor: 9.400

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  20 in total

Review 1.  Engineered nanomaterial-induced lysosomal membrane permeabilization and anti-cathepsin agents.

Authors:  Melisa Bunderson-Schelvan; Andrij Holian; Raymond F Hamilton
Journal:  J Toxicol Environ Health B Crit Rev       Date:  2017       Impact factor: 6.393

Review 2.  The asbestos-carbon nanotube analogy: An update.

Authors:  Agnes B Kane; Robert H Hurt; Huajian Gao
Journal:  Toxicol Appl Pharmacol       Date:  2018-06-28       Impact factor: 4.219

3.  Anionic nanoparticle-induced perturbation to phospholipid membranes affects ion channel function.

Authors:  Isabel U Foreman-Ortiz; Dongyue Liang; Elizabeth D Laudadio; Jorge D Calderin; Meng Wu; Puspam Keshri; Xianzhi Zhang; Michael P Schwartz; Robert J Hamers; Vincent M Rotello; Catherine J Murphy; Qiang Cui; Joel A Pedersen
Journal:  Proc Natl Acad Sci U S A       Date:  2020-10-26       Impact factor: 11.205

Review 4.  Safety Considerations of Cancer Nanomedicine-A Key Step toward Translation.

Authors:  Xiangsheng Liu; Ivanna Tang; Zev A Wainberg; Huan Meng
Journal:  Small       Date:  2020-05-14       Impact factor: 13.281

5.  Phagolysosome acidification is required for silica and engineered nanoparticle-induced lysosome membrane permeabilization and resultant NLRP3 inflammasome activity.

Authors:  Forrest Jessop; Raymond F Hamilton; Joseph F Rhoderick; Paige Fletcher; Andrij Holian
Journal:  Toxicol Appl Pharmacol       Date:  2017-01-24       Impact factor: 4.219

6.  Lipophilicity of Cationic Ligands Promotes Irreversible Adsorption of Nanoparticles to Lipid Bilayers.

Authors:  Christian A Lochbaum; Alex K Chew; Xianzhi Zhang; Vincent Rotello; Reid C Van Lehn; Joel A Pedersen
Journal:  ACS Nano       Date:  2021-04-05       Impact factor: 18.027

7.  Shape dependent cytotoxicity of PLGA-PEG nanoparticles on human cells.

Authors:  Bokai Zhang; Ping Sai Lung; Saisai Zhao; Zhiqin Chu; Wojciech Chrzanowski; Quan Li
Journal:  Sci Rep       Date:  2017-08-04       Impact factor: 4.379

8.  The Neutrally Charged Diarylurea Compound PQ401 Kills Antibiotic-Resistant and Antibiotic-Tolerant Staphylococcus aureus.

Authors:  Wooseong Kim; Guijin Zou; Wen Pan; Nico Fricke; Hammad A Faizi; Soo Min Kim; Rajamohammed Khader; Silei Li; Kiho Lee; Iliana Escorba; Petia M Vlahovska; Huajian Gao; Frederick M Ausubel; Eleftherios Mylonakis
Journal:  mBio       Date:  2020-06-30       Impact factor: 7.867

9.  A novel human 3D lung microtissue model for nanoparticle-induced cell-matrix alterations.

Authors:  Pranita K Kabadi; April L Rodd; Alysha E Simmons; Norma J Messier; Robert H Hurt; Agnes B Kane
Journal:  Part Fibre Toxicol       Date:  2019-04-03       Impact factor: 9.400

10.  A Carbon Nanotube Optical Reporter Maps Endolysosomal Lipid Flux.

Authors:  Prakrit V Jena; Daniel Roxbury; Thomas V Galassi; Leila Akkari; Christopher P Horoszko; David B Iaea; Januka Budhathoki-Uprety; Nina Pipalia; Abigail S Haka; Jackson D Harvey; Jeetain Mittal; Frederick R Maxfield; Johanna A Joyce; Daniel A Heller
Journal:  ACS Nano       Date:  2017-09-12       Impact factor: 15.881

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