Global transcriptome and deletome profiles of yeast exposed to transition metals

被引:122
作者
Jin, Yong Hwan [1 ]
Dunlap, Paul E. [2 ]
McBride, Sandra J. [1 ]
Al-Refai, Hanan [1 ]
Bushel, Pierre R. [3 ]
Freedman, Jonathan H. [2 ]
机构
[1] Duke Univ, Nicholas Sch Environm & Earth Sci, Durham, NC 27706 USA
[2] Natl Inst Environm Hlth Sci, Mol Toxicol Lab, NIH, Res Triangle Pk, NC USA
[3] Natl Inst Environm Hlth Sci, Biostat Branch, NIH, Res Triangle Pk, NC USA
来源
PLOS GENETICS | 2008年 / 4卷 / 04期
关键词
D O I
10.1371/journal.pgen.1000053
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
A variety of pathologies are associated with exposure to supraphysiological concentrations of essential metals and to nonessential metals and metalloids. The molecular mechanisms linking metal exposure to human pathologies have not been clearly defined. To address these gaps in our understanding of the molecular biology of transition metals, the genomic effects of exposure to Group IB ( copper, silver), IIB ( zinc, cadmium, mercury), VIA ( chromium), and VB ( arsenic) elements on the yeast Saccharomyces cerevisiae were examined. Two comprehensive sets of metal-responsive genomic profiles were generated following exposure to equi-toxic concentrations of metal: one that provides information on the transcriptional changes associated with metal exposure (transcriptome), and a second that provides information on the relationship between the expression of similar to 4,700 non-essential genes and sensitivity to metal exposure (deletome). Approximately 22% of the genome was affected by exposure to at least one metal. Principal component and cluster analyses suggest that the chemical properties of the metal are major determinants in defining the expression profile. Furthermore, cells may have developed common or convergent regulatory mechanisms to accommodate metal exposure. The transcriptome and deletome had 22 genes in common, however, comparison between Gene Ontology biological processes for the two gene sets revealed that metal stress adaptation and detoxification categories were commonly enriched. Analysis of the transcriptome and deletome identified several evolutionarily conserved, signal transduction pathways that may be involved in regulating the responses to metal exposure. In this study, we identified genes and cognate signaling pathways that respond to exposure to essential and non-essential metals. In addition, genes that are essential for survival in the presence of these metals were identified. This information will contribute to our understanding of the molecular mechanism by which organisms respond to metal stress, and could lead to an understanding of the connection between environmental stress and signal transduction pathways.
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页数:14
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共 82 条
  • [1] Genomic and proteomic profiling of responses to toxic metals in human lung cells
    Andrew, AS
    Warren, AJ
    Barchowsky, A
    Temple, KA
    Klei, L
    Soucy, NV
    O'Hara, KA
    Hamilton, JW
    [J]. ENVIRONMENTAL HEALTH PERSPECTIVES, 2003, 111 (06) : 825 - 838
  • [2] Standardizing global gene expression analysis between laboratories and across platforms
    Bammler, T
    Beyer, RP
    Bhattacharya, S
    Boorman, GA
    Boyles, A
    Bradford, BU
    Bumgarner, RE
    Bushel, PR
    Chaturvedi, K
    Choi, D
    Cunningham, ML
    Dengs, S
    Dressman, HK
    Fannin, RD
    Farun, FM
    Freedman, JH
    Fry, RC
    Harper, A
    Humble, MC
    Hurban, P
    Kavanagh, TJ
    Kaufmann, WK
    Kerr, KF
    Jing, L
    Lapidus, JA
    Lasarev, MR
    Li, J
    Li, YJ
    Lobenhofer, EK
    Lu, X
    Malek, RL
    Milton, S
    Nagalla, SR
    O'Malley, JP
    Palmer, VS
    Pattee, P
    Paules, RS
    Perou, CM
    Phillips, K
    Qin, LX
    Qiu, Y
    Quigley, SD
    Rodland, M
    Rusyn, I
    Samson, LD
    Schwartz, DA
    Shi, Y
    Shin, JL
    Sieber, SO
    Slifer, S
    [J]. NATURE METHODS, 2005, 2 (05) : 351 - 356
  • [3] Genetic interactions among ZDS1,2, CDC37, and protein kinase CK2 in Saccharomyces cerevisiae
    Bandhakavi, S
    McCann, RO
    Hanna, DE
    Glover, CVC
    [J]. FEBS LETTERS, 2003, 554 (03) : 295 - 300
  • [4] Begley TJ, 2002, MOL CANCER RES, V1, P103
  • [5] Comprehensive mutational analysis of yeast DEXD/H box RNA helicases involved in large ribosomal subunit biogenesis
    Bernstein, KA
    Granneman, S
    Lee, AV
    Manickam, S
    Baserga, SJ
    [J]. MOLECULAR AND CELLULAR BIOLOGY, 2006, 26 (04) : 1195 - 1208
  • [6] The small-subunit processome is a ribosome assembly intermediate
    Bernstein, KA
    Gallagher, JEG
    Mitchell, BM
    Granneman, S
    Baserga, SJ
    [J]. EUKARYOTIC CELL, 2004, 3 (06) : 1619 - 1626
  • [7] Multicenter study of acetaminophen hepatotoxicity reveals the importance of biological endpoints in genomic analyses
    Beyer, Richard P.
    Fry, Rebecca C.
    Lasarev, Michael R.
    McConnachie, Lisa A.
    Meira, Lisiane B.
    Palmer, Valerie S.
    Powell, Christine L.
    Ross, Pamela K.
    Bammler, Theo K.
    Bradford, Blair U.
    Cranson, Alex B.
    Cunningham, Michael L.
    Fannin, Rickie D.
    Higgins, Gregory M.
    Hurban, Patrick
    Kayton, Robert J.
    Kerr, Kathleen F.
    Kosyk, Oksana
    Lobenhofer, Edward K.
    Sieber, Stella O.
    Vliet, Portia A.
    Weis, Brenda K.
    Wolfinger, Russel
    Woods, Courtney G.
    Freedman, Jonathan H.
    Linney, Elwood
    Kaufmann, William K.
    Kavanagh, Terrance J.
    Paules, Richard S.
    Rusyn, Ivan
    Samson, Leona D.
    Spencer, Peter S.
    Suk, William
    Tennant, Raymond J.
    Zarbl, Helmut
    [J]. TOXICOLOGICAL SCIENCES, 2007, 99 (01) : 326 - 337
  • [8] Transcriptional response of Saccharomyces cerevisiae to DNA-damaging agents does not identify the genes that protect against these agents
    Birrell, GW
    Brown, JA
    Wu, HI
    Giaever, G
    Chu, AM
    Davis, RW
    Brown, JM
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (13) : 8778 - 8783
  • [9] Aft2p, a novel iron-regulated transcription activator that modulates, with Aft1p, intracellular iron use and resistance to oxidative stress in yeast.
    Blaiseau, PL
    Lesuisse, E
    Camadro, JM
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (36) : 34221 - 34226
  • [10] Brachmann CB, 1998, YEAST, V14, P115