Literature DB >> 27805611

Microglia as a Surrogate Biosensor to Determine Nanoparticle Neurotoxicity.

Cayla M Duffy1, Shihab Ahmed2, Ce Yuan3, Vijayakumar Mavanji2, Joshua P Nixon1, Tammy Butterick4.   

Abstract

Nanoparticles found in air pollutants can alter neurotransmitter profiles, increase neuroinflammation, and alter brain function. Therefore, the assay described here will aid in elucidating the role of microglia in neuroinflammation and neurodegenerative diseases. The use of microglia, resident immune cells of the brain, as a surrogate biosensor provides novel insight into how inflammatory responses mediate neuronal insults. Here, we utilize an immortalized murine microglial cell line, designated BV2, and describe a method for nanoparticle exposure using silver nanoparticles (AgNPs) as a standard. We describe how to expose microglia to nanoparticles, how to remove nanoparticles from supernatant, and how to use supernatant from activated microglia to determine toxicity, using hypothalamic cell survival as a measure. Following AgNP exposure, BV2 microglial activation was validated using a tumor necrosis factor alpha (TNF-α) enzyme linked immunosorbent assay (ELISA). The supernatant was filtered to remove the AgNP and to allow cytokines and other secreted factors to remain in the conditioned media. Hypothalamic cells were then exposed to supernatant from AgNP activated microglia and survival of neurons was determined using a resazurin-based fluorescent assay. This technique is useful for utilizing microglia as a surrogate biomarker of neuroinflammation and determining the effect of neuroinflammation on other cell types.

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Year:  2016        PMID: 27805611      PMCID: PMC5092232          DOI: 10.3791/54662

Source DB:  PubMed          Journal:  J Vis Exp        ISSN: 1940-087X            Impact factor:   1.355


  28 in total

1.  Characterization of high molecular weight glycosylated forms of murine tumor necrosis factor.

Authors:  B Sherry; D M Jue; A Zentella; A Cerami
Journal:  Biochem Biophys Res Commun       Date:  1990-12-31       Impact factor: 3.575

Review 2.  Chronic microglial activation and progressive dopaminergic neurotoxicity.

Authors:  M L Block; J-S Hong
Journal:  Biochem Soc Trans       Date:  2007-11       Impact factor: 5.407

3.  Source apportionment of fine (PM1.8) and ultrafine (PM0.1) airborne particulate matter during a severe winter pollution episode.

Authors:  Michael J Kleeman; Sarah G Riddle; Michael A Robert; Chris A Jakober; Phillip M Fine; Michael D Hays; James J Schauer; Michael P Hannigan
Journal:  Environ Sci Technol       Date:  2009-01-15       Impact factor: 9.028

Review 4.  Crosstalk in NF-κB signaling pathways.

Authors:  Andrea Oeckinghaus; Matthew S Hayden; Sankar Ghosh
Journal:  Nat Immunol       Date:  2011-07-19       Impact factor: 25.606

5.  Microglial phagocytosis induced by fibrillar beta-amyloid and IgGs are differentially regulated by proinflammatory cytokines.

Authors:  Jessica Koenigsknecht-Talboo; Gary E Landreth
Journal:  J Neurosci       Date:  2005-09-07       Impact factor: 6.167

6.  Palmitic acid is associated with halorhodopsin as a free fatty acid. Radiolabeling of halorhodopsin with 3H-palmitic acid and chemical analysis of the reaction products of purified halorhodopsin with thiols and NaBH4.

Authors:  M Colella; S Lobasso; F Babudri; A Corcelli
Journal:  Biochim Biophys Acta       Date:  1998-03-13

7.  Microglial activation and chronic neurodegeneration.

Authors:  Melinda E Lull; Michelle L Block
Journal:  Neurotherapeutics       Date:  2010-10       Impact factor: 7.620

8.  Ciliary neurotrophic factor recruitment of glucagon-like peptide-1 mediates neurogenesis, allowing immortalization of adult murine hypothalamic neurons.

Authors:  Denise D Belsham; Laura J Fick; Prasad S Dalvi; Maria-Luisa Centeno; Jennifer A Chalmers; Paul K P Lee; Yangyang Wang; Daniel J Drucker; Margaret M Koletar
Journal:  FASEB J       Date:  2009-08-24       Impact factor: 5.191

9.  Role of orexin A signaling in dietary palmitic acid-activated microglial cells.

Authors:  Cayla M Duffy; Ce Yuan; Lauren E Wisdorf; Charles J Billington; Catherine M Kotz; Joshua P Nixon; Tammy A Butterick
Journal:  Neurosci Lett       Date:  2015-08-22       Impact factor: 3.046

10.  The potential risks of nanomaterials: a review carried out for ECETOC.

Authors:  Paul J A Borm; David Robbins; Stephan Haubold; Thomas Kuhlbusch; Heinz Fissan; Ken Donaldson; Roel Schins; Vicki Stone; Wolfgang Kreyling; Jurgen Lademann; Jean Krutmann; David Warheit; Eva Oberdorster
Journal:  Part Fibre Toxicol       Date:  2006-08-14       Impact factor: 9.400

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  5 in total

1.  Inhalation of Silver Silicate Nanoparticles Leads to Transient and Differential Microglial Activation in the Rodent Olfactory Bulb.

Authors:  Huong Huynh; Priya Upadhyay; Cora H Lopez; Malia K Miyashiro; Laura S Van Winkle; Sara M Thomasy; Kent E Pinkerton
Journal:  Toxicol Pathol       Date:  2022-06-29       Impact factor: 1.930

Review 2.  Neurotoxicology of Nanomaterials.

Authors:  William K Boyes; Christoph van Thriel
Journal:  Chem Res Toxicol       Date:  2020-04-14       Impact factor: 3.739

3.  Microglial Immune Response to Low Concentrations of Combustion-Generated Nanoparticles: An In Vitro Model of Brain Health.

Authors:  Cayla M Duffy; Jacob Swanson; William Northrop; Joshua P Nixon; Tammy A Butterick
Journal:  Nanomaterials (Basel)       Date:  2018-03-09       Impact factor: 5.076

Review 4.  Physiological and Pathological Factors Affecting Drug Delivery to the Brain by Nanoparticles.

Authors:  Yamir Islam; Andrew G Leach; Jayden Smith; Stefano Pluchino; Christopher R Coxon; Muttuswamy Sivakumaran; James Downing; Amos A Fatokun; Meritxell Teixidò; Touraj Ehtezazi
Journal:  Adv Sci (Weinh)       Date:  2021-03-15       Impact factor: 16.806

5.  Microglia-targeting nanotherapeutics for neurodegenerative diseases.

Authors:  Nanxia Zhao; Nicola L Francis; Hannah R Calvelli; Prabhas V Moghe
Journal:  APL Bioeng       Date:  2020-09-08
  5 in total

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