Literature DB >> 22697169

Autophagy and lysosomal dysfunction as emerging mechanisms of nanomaterial toxicity.

Stephan T Stern1, Pavan P Adiseshaiah, Rachael M Crist.   

Abstract

The study of the potential risks associated with the manufacture, use, and disposal of nanoscale materials, and their mechanisms of toxicity, is important for the continued advancement of nanotechnology. Currently, the most widely accepted paradigms of nanomaterial toxicity are oxidative stress and inflammation, but the underlying mechanisms are poorly defined. This review will highlight the significance of autophagy and lysosomal dysfunction as emerging mechanisms of nanomaterial toxicity. Most endocytic routes of nanomaterial cell uptake converge upon the lysosome, making the lysosomal compartment the most common intracellular site of nanoparticle sequestration and degradation. In addition to the endo-lysosomal pathway, recent evidence suggests that some nanomaterials can also induce autophagy. Among the many physiological functions, the lysosome, by way of the autophagy (macroautophagy) pathway, degrades intracellular pathogens, and damaged organelles and proteins. Thus, autophagy induction by nanoparticles may be an attempt to degrade what is perceived by the cell as foreign or aberrant. While the autophagy and endo-lysosomal pathways have the potential to influence the disposition of nanomaterials, there is also a growing body of literature suggesting that biopersistent nanomaterials can, in turn, negatively impact these pathways. Indeed, there is ample evidence that biopersistent nanomaterials can cause autophagy and lysosomal dysfunctions resulting in toxicological consequences.

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Year:  2012        PMID: 22697169      PMCID: PMC3441384          DOI: 10.1186/1743-8977-9-20

Source DB:  PubMed          Journal:  Part Fibre Toxicol        ISSN: 1743-8977            Impact factor:   9.400


  139 in total

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2.  Induction of oxidative stress, lysosome activation and autophagy by nanoparticles in human brain-derived endothelial cells.

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Journal:  Biochem J       Date:  2012-02-01       Impact factor: 3.857

3.  Semiconductor nanocrystals in autophagy research: methodology improvement at nanosized scale.

Authors:  Oleksandr Seleverstov; James M Phang; Olga Zabirnyk
Journal:  Methods Enzymol       Date:  2009       Impact factor: 1.600

4.  Oxidative stress and toxicity of gold nanoparticles in Mytilus edulis.

Authors:  Sara Tedesco; Hugh Doyle; Julian Blasco; Gareth Redmond; David Sheehan
Journal:  Aquat Toxicol       Date:  2010-03-23       Impact factor: 4.964

Review 5.  Autophagy: assays and artifacts.

Authors:  Sandra Barth; Danielle Glick; Kay F Macleod
Journal:  J Pathol       Date:  2010-06       Impact factor: 7.996

6.  Acetylated microtubules are required for fusion of autophagosomes with lysosomes.

Authors:  Rui Xie; Susan Nguyen; Wallace L McKeehan; Leyuan Liu
Journal:  BMC Cell Biol       Date:  2010-11-22       Impact factor: 4.241

Review 7.  Regulation mechanisms and signaling pathways of autophagy.

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Journal:  Annu Rev Genet       Date:  2009       Impact factor: 16.830

8.  Listeria monocytogenes ActA-mediated escape from autophagic recognition.

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Journal:  Nat Cell Biol       Date:  2009-09-13       Impact factor: 28.824

9.  A functionalized single-walled carbon nanotube-induced autophagic cell death in human lung cells through Akt-TSC2-mTOR signaling.

Authors:  H-L Liu; Y-L Zhang; N Yang; Y-X Zhang; X-Q Liu; C-G Li; Y Zhao; Y-G Wang; G-G Zhang; P Yang; F Guo; Y Sun; C-Y Jiang
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  184 in total

1.  Autophagy upregulation promotes macrophages to escape mesoporous silica nanoparticle (MSN)-induced NF-κB-dependent inflammation.

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Journal:  Inflamm Res       Date:  2016-02-09       Impact factor: 4.575

Review 2.  Intracellular signal modulation by nanomaterials.

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Journal:  Adv Exp Med Biol       Date:  2014       Impact factor: 2.622

Review 3.  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 4.  Toxicological effect of engineered nanomaterials on the liver.

Authors:  A Kermanizadeh; B K Gaiser; H Johnston; D M Brown; V Stone
Journal:  Br J Pharmacol       Date:  2014-07-02       Impact factor: 8.739

Review 5.  Carbon black and titanium dioxide nanoparticles induce distinct molecular mechanisms of toxicity.

Authors:  Sonja Boland; Salik Hussain; Armelle Baeza-Squiban
Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2014-09-30

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

Authors:  Wenpeng Zhu; Annette von dem Bussche; Xin Yi; Yang Qiu; Zhongying Wang; Paula Weston; Robert H Hurt; Agnes B Kane; Huajian Gao
Journal:  Proc Natl Acad Sci U S A       Date:  2016-10-17       Impact factor: 11.205

7.  Effects of vitamin A and vitamin E on attenuation of titanium dioxide nanoparticles-induced toxicity in the liver of male Wistar rats.

Authors:  Arash Moradi; Nasrin Ziamajidi; Abolfazl Ghafourikhosroshahi; Roghayeh Abbasalipourkabir
Journal:  Mol Biol Rep       Date:  2019-03-18       Impact factor: 2.316

Review 8.  The use of nanoparticulates to treat breast cancer.

Authors:  Xiaomeng Tang; Welley S Loc; Cheng Dong; Gail L Matters; Peter J Butler; Mark Kester; Craig Meyers; Yixing Jiang; James H Adair
Journal:  Nanomedicine (Lond)       Date:  2017-09-04       Impact factor: 5.307

9.  Tuning cell autophagy by diversifying carbon nanotube surface chemistry.

Authors:  Ling Wu; Yi Zhang; Chengke Zhang; Xuehui Cui; Shumei Zhai; Yin Liu; Changlong Li; Hao Zhu; Guangbo Qu; Guibin Jiang; Bing Yan
Journal:  ACS Nano       Date:  2014-02-25       Impact factor: 15.881

10.  Extracellular ATP induces intracellular alpha-synuclein accumulation via P2X1 receptor-mediated lysosomal dysfunction.

Authors:  Ming Gan; Simon Moussaud; Peizhou Jiang; Pamela J McLean
Journal:  Neurobiol Aging       Date:  2014-11-05       Impact factor: 4.673

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