Literature DB >> 12787884

Sarin (nerve agent GB)-induced differential expression of mRNA coding for the acetylcholinesterase gene in the rat central nervous system.

Tirupapuliyur V Damodaran1, Katherine H Jones, Anand G Patel, Mohamed B Abou-Donia.   

Abstract

We carried out a time-course study on the effects of a single intramuscular (i.m.) dose (0.5x LD(50)) of sarin (O-isopropyl methylphosphonofluoridate), also known as nerve agent GB, on the mRNA expression of acetylcholinesterase (AChE) in the brain of male Sprague-Dawley rats. Sarin inactivates the enzyme AChE which is responsible for the breakdown of the neurotransmitter acetylcholine (ACh), leading to its accumulation at ACh receptors and overstimulation of the cholinergic system. Rats were treated with 50 microg/kg of sarin (0.5x LD(50)) in 1 mL saline/kg and terminated at the following time points: 1 and 2 hr and 1, 3, and 7 days post-treatment. Control rats were treated with normal saline. Total RNA was extracted, and northern blots were hybridized with cDNA probes for AChE and 28S RNA (control). Poly-A RNA from both treated and control cortex was used for reverse transcription-polymerase chain reaction (RT-PCR)-based verification of the data from the northern blots. The results obtained indicate that a single (i.m.) dose of sarin (0.5x LD(50)) produced differential induction and persistence of AChE mRNA levels in different regions of the brain. Immediate induction of AChE transcripts was noted in the brainstem (126+/-6%), cortex (149+/-4%), midbrain (153+/-5%), and cerebellum (234+/-2%) at 1 hr. The AChE expression level, however, increased over time and remained elevated after a decline at 1 day in the previously shown more susceptible brainstem. The transcript levels remained elevated at a later time point (3 days) in the midbrain, after a dramatic decline at day 1 (110+/-2%). In the cortex, transcript levels came down to control values by day 1. The cerebellum also showed a decline of the elevated levels observed at 2 hr (275+/-2%) to control values by day 1. RT-PCR analysis of the AChE transcript at 30 min in the cortex showed an induction to 213+/-3% of the control level, confirming the expression pattern obtained by the northern blot data. The immediate induction followed by the complex pattern of the AChE mRNA time-course in the CNS may indicate that the activation of both cholinergic-related and unrelated functions of the gene plays an important role in the pathological manifestations of sarin-induced neurotoxicity.

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Year:  2003        PMID: 12787884     DOI: 10.1016/s0006-2952(03)00160-6

Source DB:  PubMed          Journal:  Biochem Pharmacol        ISSN: 0006-2952            Impact factor:   5.858


  9 in total

1.  Toxicogenomic studies of the rat brain at an early time point following acute sarin exposure.

Authors:  Tirupapuliyur V Damodaran; Stephen T Greenfield; Anand G Patel; Holly K Dressman; Siomon K Lin; Mohamed B Abou-Donia
Journal:  Neurochem Res       Date:  2006-05-13       Impact factor: 3.996

2.  Production of ES1 plasma carboxylesterase knockout mice for toxicity studies.

Authors:  Ellen G Duysen; Frank Koentgen; Gareth R Williams; Christopher M Timperley; Lawrence M Schopfer; Douglas M Cerasoli; Oksana Lockridge
Journal:  Chem Res Toxicol       Date:  2011-09-07       Impact factor: 3.739

3.  Differential sensitivity of plasma carboxylesterase-null mice to parathion, chlorpyrifos and chlorpyrifos oxon, but not to diazinon, dichlorvos, diisopropylfluorophosphate, cresyl saligenin phosphate, cyclosarin thiocholine, tabun thiocholine, and carbofuran.

Authors:  Ellen G Duysen; John R Cashman; Lawrence M Schopfer; Florian Nachon; Patrick Masson; Oksana Lockridge
Journal:  Chem Biol Interact       Date:  2011-12-24       Impact factor: 5.192

Review 4.  Sarin (GB, O-isopropyl methylphosphonofluoridate) neurotoxicity: critical review.

Authors:  Mohamed B Abou-Donia; Briana Siracuse; Natasha Gupta; Ashly Sobel Sokol
Journal:  Crit Rev Toxicol       Date:  2016-10-05       Impact factor: 5.635

5.  Comparative developmental neurotoxicity of organophosphates in vivo: transcriptional responses of pathways for brain cell development, cell signaling, cytotoxicity and neurotransmitter systems.

Authors:  Theodore A Slotkin; Frederic J Seidler
Journal:  Brain Res Bull       Date:  2007-01-25       Impact factor: 4.077

6.  Transcriptional analysis of rat piriform cortex following exposure to the organophosphonate anticholinesterase sarin and induction of seizures.

Authors:  Kimberly D Spradling; Lucille A Lumley; Christopher L Robison; James L Meyerhoff; James F Dillman
Journal:  J Neuroinflammation       Date:  2011-07-21       Impact factor: 8.322

7.  Exposure to acetylcholinesterase inhibitors alters the physiology and motor function of honeybees.

Authors:  Sally M Williamson; Christopher Moffat; Martha A E Gomersall; Nastja Saranzewa; Christopher N Connolly; Geraldine A Wright
Journal:  Front Physiol       Date:  2013-02-05       Impact factor: 4.566

8.  Nonenzymatic functions of acetylcholinesterase splice variants in the developmental neurotoxicity of organophosphates: chlorpyrifos, chlorpyrifos oxon, and diazinon.

Authors:  Ruth R Jameson; Frederic J Seidler; Theodore A Slotkin
Journal:  Environ Health Perspect       Date:  2007-01       Impact factor: 9.031

Review 9.  Acetylcholinesterase as a biomarker in environmental and occupational medicine: new insights and future perspectives.

Authors:  Maria Giulia Lionetto; Roberto Caricato; Antonio Calisi; Maria Elena Giordano; Trifone Schettino
Journal:  Biomed Res Int       Date:  2013-07-11       Impact factor: 3.411

  9 in total

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