Literature DB >> 10210695

The independent contribution of bone and erythrocyte lead to urinary lead among middle-aged and elderly men: the normative aging study.

S W Tsaih1, J Schwartz, M L Lee, C Amarasiriwardena, A Aro, D Sparrow, H Hu.   

Abstract

Plasma is the component of blood from which lead is free to cross cell membranes and cause organ toxicity. Plasma lead levels, however, are extremely low and difficult to measure. Urinary lead originates from plasma lead that has been filtered at the glomerular level; thus, urinary lead adjusted for glomerular filtration rate serves as a proxy for plasma lead levels. In this investigation we examined the interrelationships of lead levels in whole blood corrected by hematocrit [i.e., erythrocyte lead (EPb)], trabecular bone (TBoPb), cortical bone (CBoPb), and urine excreted over 24 hr (UPb); all samples were obtained from 71 middle-aged and elderly men with no known occupational lead exposures. Lead was measured by graphite furnace atomic absorption spectroscopy (blood), K-X-ray fluorescence (bone), and inductively coupled plasma mass spectroscopy (urine). Lead levels were generally low, with mean EPb, TBoPb, and CBoPb values of 13.8, 31.1, and 21.7 microg/g, respectively, and a median UPb value of 6.15 microg/day. In generalized additive models adjusted for body weight and creatinine clearance rate, both EPb and bone lead variables remained independently and significantly associated with UPb. This finding suggests that bone influences plasma lead in a manner that is independent of the influence of erythrocytic lead on plasma lead. Thus, the superiority of bone lead over blood lead in predicting some chronic forms of toxicity may be mediated through bone's influence on plasma lead. In addition, this study suggests that measurement of urinary lead might be useful as a proxy for plasma lead levels in studies of lead toxicity.

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Year:  1999        PMID: 10210695      PMCID: PMC1566410          DOI: 10.1289/ehp.99107391

Source DB:  PubMed          Journal:  Environ Health Perspect        ISSN: 0091-6765            Impact factor:   9.031


  61 in total

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Journal:  Br J Ind Med       Date:  1970-10

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Journal:  Health Phys       Date:  1977-01       Impact factor: 1.316

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Authors:  A Cavalleri; C Minoia; L Pozzoli; A Baruffini
Journal:  Br J Ind Med       Date:  1978-02

6.  Lead metabolism in the normal human: stable isotope studies.

Authors:  M B Rabinowitz; G W Wetherill; J D Kopple
Journal:  Science       Date:  1973-11-16       Impact factor: 47.728

7.  High accuracy (stable isotope dilution) measurements of lead in serum and cerebrospinal fluid.

Authors:  W I Manton; J D Cook
Journal:  Br J Ind Med       Date:  1984-08

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Authors:  M B Rabinowitz; G W Wetherill; J D Kopple
Journal:  J Clin Invest       Date:  1976-08       Impact factor: 14.808

9.  Detection and treatment of occupational lead nephropathy.

Authors:  R P Wedeen; D K Malik; V Batuman
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Authors:  C N Ong; W R Lee
Journal:  Br J Ind Med       Date:  1980-02
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  12 in total

1.  Association between urinary lead and bone health in a general population from Taiwan.

Authors:  Tsung-Lin Tsai; Wen-Harn Pan; Yu-Teh Chung; Trong-Neng Wu; Ying-Chih Tseng; Saou-Hsing Liou; Shu-Li Wang
Journal:  J Expo Sci Environ Epidemiol       Date:  2015-07-08       Impact factor: 5.563

2.  Urinary metals and metal mixtures in midlife women: The Study of Women's Health Across the Nation (SWAN).

Authors:  Xin Wang; Bhramar Mukherjee; Stuart Batterman; Siobán D Harlow; Sung Kyun Park
Journal:  Int J Hyg Environ Health       Date:  2019-05-15       Impact factor: 5.840

3.  Individual species and cumulative mixture relationships of 24-hour urine metal concentrations with DNA methylation age variables in older men.

Authors:  Jamaji C Nwanaji-Enwerem; Elena Colicino; Aaron J Specht; Xu Gao; Cuicui Wang; Pantel Vokonas; Marc G Weisskopf; Edward W Boyer; Andrea A Baccarelli; Joel Schwartz
Journal:  Environ Res       Date:  2020-04-25       Impact factor: 6.498

4.  Investigation of lead concentrations in whole blood, plasma and urine as biomarkers for biological monitoring of lead exposure.

Authors:  Johan Nilsson Sommar; Maria Hedmer; Thomas Lundh; Leif Nilsson; Staffan Skerfving; Ingvar A Bergdahl
Journal:  J Expo Sci Environ Epidemiol       Date:  2013-02-27       Impact factor: 5.563

5.  Urinary lead exposure and breast cancer risk in a population-based case-control study.

Authors:  Jane A McElroy; Martin M Shafer; Ronald E Gangnon; Luis A Crouch; Polly A Newcomb
Journal:  Cancer Epidemiol Biomarkers Prev       Date:  2008-09       Impact factor: 4.254

6.  The (1)H NMR structure of bovine Pb(2+)-osteocalcin and implications for lead toxicity.

Authors:  T L Dowd; L Li; C M Gundberg
Journal:  Biochim Biophys Acta       Date:  2008-08-27

Review 7.  Neurotoxic effects and biomarkers of lead exposure: a review.

Authors:  Talia Sanders; Yiming Liu; Virginia Buchner; Paul B Tchounwou
Journal:  Rev Environ Health       Date:  2009 Jan-Mar       Impact factor: 3.458

8.  Influence of bone resorption on the mobilization of lead from bone among middle-aged and elderly men: the Normative Aging Study.

Authors:  S W Tsaih; S Korrick; J Schwartz; M L Lee; C Amarasiriwardena; A Aro; D Sparrow; H Hu
Journal:  Environ Health Perspect       Date:  2001-10       Impact factor: 9.031

Review 9.  A critical review of biomarkers used for monitoring human exposure to lead: advantages, limitations, and future needs.

Authors:  Fernando Barbosa; José Eduardo Tanus-Santos; Raquel Fernanda Gerlach; Patrick J Parsons
Journal:  Environ Health Perspect       Date:  2005-12       Impact factor: 9.031

10.  Urinary metal mixtures and longitudinal changes in glucose homeostasis: The Study of Women's Health Across the Nation (SWAN).

Authors:  Xin Wang; Bhramar Mukherjee; Carrie A Karvonen-Gutierrez; William H Herman; Stuart Batterman; Siobán D Harlow; Sung Kyun Park
Journal:  Environ Int       Date:  2020-09-12       Impact factor: 9.621

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