Actin cytoskeleton redox proteome oxidation by cadmium

被引:43
作者
Go, Young-Mi [1 ]
Orr, Michael [1 ]
Jones, Dean P. [1 ]
机构
[1] Emory Univ, Dept Med, Div Pulm Allergy & Crit Care Med, Atlanta, GA 30322 USA
关键词
cadmium; cysteine proteome; cytoskeleton remodeling; lung fibroblasts; pathway analysis; GENE-EXPRESSION; PULMONARY INFLAMMATION; LUNG FIBROBLASTS; TGF-BETA; STRESS; CELLS; RAT; GLUTATHIONYLATION; CYSTEINE; ACTIVATION;
D O I
10.1152/ajplung.00203.2013
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Go Y-M, Orr M, Jones DP. Actin cytoskeleton redox proteome oxidation by cadmium. Am J Physiol Lung Cell Mol Physiol 305: L831-L843, 2013. First published September 27, 2013; doi:10.1152/ajplung.00203.2013.-Epidemiological studies associate environmental cadmium (Cd) exposure with the risk of lung diseases. Although mechanisms are not fully elucidated, several studies demonstrate Cd effects on actin and actin-associated proteins. In a recent study of Cd at concentrations similar to environmental exposures, we found that redox-dependent inflammatory signaling by NF-kappa B was sensitive to the actin-disrupting agent, cytochalasin D. The goal of the present study was to use mass spectrometry-based redox proteomics to investigate Cd effects on the actin cytoskeleton proteome and related functional pathways in lung cells at low environmental concentrations. The results showed that Cd under conditions that did not alter total protein thiols or glutathione redox state caused significant oxidation of peptidyl Cys of proteins regulating actin cytoskeleton. Immunofluorescence microscopy of lung fibroblasts and pulmonary artery endothelial cells showed that low-dose Cd exposure stimulated filamentous actin formation and nuclear localization of destrin, an actin-depolymerizing factor. Taken together, the results show that redox states of peptidyl Cys in proteins associated with actin cytoskeleton pathways are selectively oxidized in lung by Cd at levels thought to occur from environmental exposure.
引用
收藏
页码:L831 / L843
页数:13
相关论文
共 84 条
  • [1] Administration OSaH, 2004, CADMIUM, P1
  • [2] Agency for Toxic Substances and Disease Registry, 2012, TOX PROF CADM
  • [3] Agency USEP, CADM COMP TECHN TRAN
  • [4] Effects of Cadmium Exposure on the Ultrastructural Pathology of Different Pulmonary Cells, Leukocyte Count, and Activity of Glutathione Peroxidase and Lactate Dehydrogenase in Relation to Free Radical Production in Uromastyx aegyptius
    Al-Johany, A. M.
    Haffor, A. S.
    [J]. ULTRASTRUCTURAL PATHOLOGY, 2009, 33 (02) : 39 - 47
  • [5] Fibulins: physiological and disease perspectives
    Argraves, WS
    Greene, LM
    Cooley, MA
    Gallagher, WM
    [J]. EMBO REPORTS, 2003, 4 (12) : 1127 - 1131
  • [6] Epigenetics in metal carcinogenesis: nickel, arsenic, chromium and cadmium
    Arita, Adriana
    Costa, Max
    [J]. METALLOMICS, 2009, 1 (03) : 222 - 228
  • [7] BARRETT HM, 1947, J IND HYG TOXICOL, V29, P279
  • [8] Applications of gene arrays in environmental toxicology:: Fingerprints of gene regulation associated with cadmium chloride, benzo(a)pyrene, and trichloroethylene
    Bartosiewicz, M
    Penn, S
    Buckpitt, A
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 2001, 109 (01) : 71 - 74
  • [9] Ultrastructural modifications in the mitochondrion of mouse Sertoli cells after inhalation of lead, cadmium or lead-cadmium mixture
    Bizarro, P
    Acevedo, S
    Niño-Cabrera, A
    Mussali-Galante, P
    Pasos, F
    Avila-Costa, MR
    Fortoul, TI
    [J]. REPRODUCTIVE TOXICOLOGY, 2003, 17 (05) : 561 - 566
  • [10] Metabolic consequences of adenosine deaminase deficiency in mice are associated with defects in alveogenesis, pulmonary inflammation, and airway obstruction
    Blackburn, MR
    Volmer, JB
    Thrasher, JL
    Zhong, HY
    Crosby, JR
    Lee, JJ
    Kellems, RE
    [J]. JOURNAL OF EXPERIMENTAL MEDICINE, 2000, 192 (02) : 159 - 170