Literature DB >> 14637382

The utility of biological monitoring for manganese in ferroalloy smelter workers in South Africa.

Jonathan E Myers1, Mary Lou Thompson, Inakshi Naik, Penny Theodorou, Eric Esswein, Halina Tassell, Aarti Daya, Kevin Renton, Adri Spies, Janice Paicker, Taryn Young, Mohamed Jeebhay, Suzan Ramushu, Leslie London, David J Rees.   

Abstract

Five hundred and nine workers at a manganese (Mn) smelting works comprising eight production facilities and 67 external controls were studied cross-sectionally. Exposure measures from personal sampling included inhalable dust, cumulative exposure indices (CEI) and average intensity (INT = CEI/years exposed) calculated for the current job at the smelter and also across all jobs held by subjects. Biological exposure was measured by Mn in the blood (MnB) and urine (MnU) and biological effect was measured by serum prolactin. Average lifetime exposure intensity across all jobs ranged from near 0 (0.06 microg/m3) for unexposed external referents to 5 mg/m3. Atmospheric exposures and MnB and MnU distributions were consistent with published data for both unexposed and smelter workers. Associations between biological exposures and groups defined by atmospheric exposures in the current job were substantial for MnB, less so for MnU and absent for serum prolactin. Random sampling of MnB measurements representative of a group of workers with more than 1-2 years of service in the same job and notionally homogenous exposure conditions could serve as a cross-sectional predictor of atmospheric Mn exposure in the current job, as well as for surveillance of Mn exposure trends over time. Correlations at the individual level were only modest for MnB (33% of the variance in log atmospheric Mn intensity in the current job was explained by log MnB), much worse for MnU (only 7%). However, a receiver operating characteristic (ROC) analysis was performed which showed that it is possible to use a MnB cut-off of 10 microg/l (the 95th percentile in the unexposed) to good effect as a screening tool to discriminate between individual exposures exceeding and falling below a relatively strict atmospheric Mn exposure threshold at the ACGIH threshold limit value (TLV) of 0.2 mg/m3. MnU has no utility as a measure of biological exposure nor does serum prolactin as a measure of biological effect.

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Year:  2003        PMID: 14637382     DOI: 10.1016/S0161-813X(03)00082-2

Source DB:  PubMed          Journal:  Neurotoxicology        ISSN: 0161-813X            Impact factor:   4.294


  14 in total

1.  A compact DD neutron generator-based NAA system to quantify manganese (Mn) in bone in vivo.

Authors:  Yingzi Liu; Patrick Byrne; Haoyu Wang; David Koltick; Wei Zheng; Linda H Nie
Journal:  Physiol Meas       Date:  2014-08-26       Impact factor: 2.833

2.  Upper reference limits for biomarkers of exposure to aromatic diisocyanates.

Authors:  Carl Johan Sennbro; Margareta Littorin; Håkan Tinnerberg; Bo A G Jönsson
Journal:  Int Arch Occup Environ Health       Date:  2005-07-02       Impact factor: 3.015

3.  Manganese and neurobehavioral impairment. A preliminary risk assessment.

Authors:  Robert M Park; Shannon L Berg
Journal:  Neurotoxicology       Date:  2017-08-10       Impact factor: 4.294

4.  Reference values for cobalt, copper, manganese, and nickel in urine among women of the general population in Japan.

Authors:  Fumiko Ohashi; Yoshinari Fukui; Shiro Takada; Jiro Moriguchi; Takafumi Ezaki; Masayuki Ikeda
Journal:  Int Arch Occup Environ Health       Date:  2006-05-31       Impact factor: 3.015

5.  Predictors of urinary and blood Metal(loid) concentrations among pregnant women in Northern Puerto Rico.

Authors:  Pahriya Ashrap; Deborah J Watkins; Bhramar Mukherjee; Jonathan Boss; Michael J Richards; Zaira Rosario; Carmen M Vélez-Vega; Akram Alshawabkeh; José F Cordero; John D Meeker
Journal:  Environ Res       Date:  2020-01-23       Impact factor: 6.498

6.  Association of exposure to manganese and iron with relaxation rates R1 and R2*- magnetic resonance imaging results from the WELDOX II study.

Authors:  Beate Pesch; Ulrike Dydak; Anne Lotz; Swaantje Casjens; Clara Quetscher; Martin Lehnert; Jessica Abramowski; Christoph Stewig; Chien-Lin Yeh; Tobias Weiss; Christoph van Thriel; Lennard Herrmann; Siegfried Muhlack; Dirk Woitalla; Benjamin Glaubitz; Tobias Schmidt-Wilcke; Thomas Brüning
Journal:  Neurotoxicology       Date:  2017-08-25       Impact factor: 4.294

7.  Prolactin levels in manganese-exposed male welders.

Authors:  Engin Tutkun; Sedat Abuşoğlu; Hinç Yılmaz; Meşide Gündüzöz; Nilgün Gıynas; Ceylan Demir Bal; Ali Ünlü
Journal:  Pituitary       Date:  2014-12       Impact factor: 4.107

8.  Preweaning manganese exposure causes hyperactivity, disinhibition, and spatial learning and memory deficits associated with altered dopamine receptor and transporter levels.

Authors:  Cynthia H Kern; Gregg D Stanwood; Donald R Smith
Journal:  Synapse       Date:  2010-05       Impact factor: 2.562

9.  Manganese exposure among smelting workers: blood manganese-iron ratio as a novel tool for manganese exposure assessment.

Authors:  Dallas M Cowan; Qiyuan Fan; Yan Zou; Xiujuan Shi; Jian Chen; Michael Aschner; Frank S Rosenthal; Wei Zheng
Journal:  Biomarkers       Date:  2009-02       Impact factor: 2.658

Review 10.  Manganese (Mn) and iron (Fe): interdependency of transport and regulation.

Authors:  Vanessa A Fitsanakis; Na Zhang; Stephanie Garcia; Michael Aschner
Journal:  Neurotox Res       Date:  2009-11-18       Impact factor: 3.911

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