Home LiteratureArticle Details
PMID: 18263779 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

New connections across pathways and cellular processes: industrialized mutant screening reveals novel associations between diverse phenotypes in Arabidopsis.

Plant physiology ·Vol. 146 ·No. 4 ·2008-04-00 ·Pages 1482-500

Lu Y, Savage LJ, Ajjawi I, Imre KM, Yoder DW, Benning C, Dellapenna D, Ohlrogge JB, Osteryoung KW, Weber AP, Wilkerson CG, Last RL

Abstract

In traditional mutant screening approaches, genetic variants are tested for one or a small number of phenotypes. Once bona fide variants are identified, they are typically subjected to a limited number of secondary phenotypic screens. Although this approach is excellent at finding genes involved in specific biological processes, the lack of wide and systematic interrogation of phenotype limits the ability to detect broader syndromes and connections between genes and phenotypes. It could also prevent detection of the primary phenotype of a mutant. As part of a systems biology approach to understand plastid function, large numbers of Arabidopsis thaliana homozygous T-DNA lines are being screened with parallel morphological, physiological, and chemical phenotypic assays (www.plastid.msu.edu). To refine our approaches and validate the use of this high-throughput screening approach for understanding gene function and functional networks, approximately 100 wild-type plants and 13 known mutants representing a variety of phenotypes were analyzed by a broad range of assays including metabolite profiling, morphological analysis, and chlorophyll fluorescence kinetics. Data analysis using a variety of statistical approaches showed that such industrial approaches can reliably identify plant mutant phenotypes. More significantly, the study uncovered previously unreported phenotypes for these well-characterized mutants and unexpected associations between different physiological processes, demonstrating that this approach has strong advantages over traditional mutant screening approaches. Analysis of wild-type plants revealed hundreds of statistically robust phenotypic correlations, including metabolites that are not known to share direct biosynthetic origins, raising the possibility that these metabolic pathways have closer relationships than is commonly suspected.

MeSH Terms
Arabidopsis/genetics,metabolism Chromatography, Gas Chromatography, High Pressure Liquid Cluster Analysis Fluorescence Genetic Variation Mutation Tandem Mass Spectrometry
Authors & Affiliations
12 authors, click to expand affiliations / ORCID
Lu Yan
Department of Biochemistry and Molecular Biology , Michigan State University, East Lansing, Michigan 48824, USA.
Savage Linda J
Ajjawi Imad
Imre Kathleen M
Yoder David W
Benning Christoph
Dellapenna Dean
Ohlrogge John B
Osteryoung Katherine W
Weber Andreas P
Wilkerson Curtis G
Last Robert L
References (65)
65 references, click to expand
  1. Arabidopsis thaliana VTC4 encodes L-galactose-1-P phosphatase, a plant ascorbic acid biosynthetic enzyme.
    J Biol Chem. 2006 Jun 9;281(23):15662-70 PMID: 16595667
  2. Metabolite profiling for plant functional genomics.
    Nat Biotechnol. 2000 Nov;18(11):1157-61 PMID: 11062433
  3. Disruption of the FATB gene in Arabidopsis demonstrates an essential role of saturated fatty acids in plant growth.
    Plant Cell. 2003 Apr;15(4):1020-33 PMID: 12671095
  4. A heteromeric plastidic pyruvate kinase complex involved in seed oil biosynthesis in Arabidopsis.
    Plant Cell. 2007 Jun;19(6):2006-22 PMID: 17557808
  5. A standardized method for analysis of Medicago truncatula phenotypic development.
    Plant Physiol. 2006 Sep;142(1):207-19 PMID: 16877701
  6. Functional characterization of the S. cerevisiae genome by gene deletion and parallel analysis.
    Science. 1999 Aug 6;285(5429):901-6 PMID: 10436161
  7. Metabolic profiling allows comprehensive phenotyping of genetically or environmentally modified plant systems.
    Plant Cell. 2001 Jan;13(1):11-29 PMID: 11158526
  8. Genes directing flower development in Arabidopsis.
    Plant Cell. 1989 Jan;1(1):37-52 PMID: 2535466
  9. 5-Formyltetrahydrofolate is an inhibitory but well tolerated metabolite in Arabidopsis leaves.
    J Biol Chem. 2005 Jul 15;280(28):26137-42 PMID: 15888445
  10. A Robot-based platform to measure multiple enzyme activities in Arabidopsis using a set of cycling assays: comparison of changes of enzyme activities and transcript levels during diurnal cycles and in prolonged darkness.
    Plant Cell. 2004 Dec;16(12):3304-25 PMID: 15548738
  11. Highly specific gene silencing by artificial microRNAs in Arabidopsis.
    Plant Cell. 2006 May;18(5):1121-33 PMID: 16531494
  12. A map of the interactome network of the metazoan C. elegans.
    Science. 2004 Jan 23;303(5657):540-3 PMID: 14704431
  13. Application of a high-throughput HPLC-MS/MS assay to Arabidopsis mutant screening; evidence that threonine aldolase plays a role in seed nutritional quality.
    Plant J. 2004 Aug;39(3):465-75 PMID: 15255874
  14. Growth stage-based phenotypic analysis of Arabidopsis: a model for high throughput functional genomics in plants.
    Plant Cell. 2001 Jul;13(7):1499-510 PMID: 11449047
  15. The Arabidopsis phenylalanine insensitive growth mutant exhibits a deregulated amino acid metabolism.
    Plant Physiol. 2004 Oct;136(2):3058-69 PMID: 15448200
  16. Effects of mutations in Arabidopsis FtsZ1 on plastid division, FtsZ ring formation and positioning, and FtsZ filament morphology in vivo.
    Plant Cell Physiol. 2007 Jun;48(6):775-91 PMID: 17468127
  17. An Arabidopsis photolyase mutant is hypersensitive to ultraviolet-B radiation.
    Proc Natl Acad Sci U S A. 1997 Jan 7;94(1):328-32 PMID: 8990208
  18. Two Arabidopsis threonine aldolases are nonredundant and compete with threonine deaminase for a common substrate pool.
    Plant Cell. 2006 Dec;18(12):3564-75 PMID: 17172352
  19. The Arabidopsis vitamin E pathway gene5-1 mutant reveals a critical role for phytol kinase in seed tocopherol biosynthesis.
    Plant Cell. 2006 Jan;18(1):212-24 PMID: 16361393
  20. Computational analysis of microarray data.
    Nat Rev Genet. 2001 Jun;2(6):418-27 PMID: 11389458
  21. A gene expression map of Arabidopsis thaliana development.
    Nat Genet. 2005 May;37(5):501-6 PMID: 15806101
  22. Chloroplast division in higher plants requires members of two functionally divergent gene families with homology to bacterial ftsZ.
    Plant Cell. 1998 Dec;10(12):1991-2004 PMID: 9836740
  23. A predicted interactome for Arabidopsis.
    Plant Physiol. 2007 Oct;145(2):317-29 PMID: 17675552
  24. Metabolite profiling: from diagnostics to systems biology.
    Nat Rev Mol Cell Biol. 2004 Sep;5(9):763-9 PMID: 15340383
  25. Identification of ascorbic acid-deficient Arabidopsis thaliana mutants.
    Genetics. 2000 Feb;154(2):847-56 PMID: 10655235
  26. Ethylmethanesulfonate saturation mutagenesis in Arabidopsis to determine frequency of herbicide resistance.
    Plant Physiol. 2003 Jan;131(1):139-46 PMID: 12529522
  27. Genetic evidence for the role of GDP-mannose in plant ascorbic acid (vitamin C) biosynthesis.
    Proc Natl Acad Sci U S A. 1999 Mar 30;96(7):4198-203 PMID: 10097187
  28. Arabidopsis map-based cloning in the post-genome era.
    Plant Physiol. 2002 Jun;129(2):440-50 PMID: 12068090
  29. Genetic mutant screening by direct metabolite analysis.
    Anal Biochem. 2004 Sep 1;332(1):1-9 PMID: 15301943
  30. Full-genome RNAi profiling of early embryogenesis in Caenorhabditis elegans.
    Nature. 2005 Mar 24;434(7032):462-9 PMID: 15791247
  31. Comprehensive metabolic profiling and phenotyping of interspecific introgression lines for tomato improvement.
    Nat Biotechnol. 2006 Apr;24(4):447-54 PMID: 16531992
  32. Signal transduction mutants of Arabidopsis uncouple nuclear CAB and RBCS gene expression from chloroplast development.
    Cell. 1993 Sep 10;74(5):787-99 PMID: 7690685
  33. AtPID: Arabidopsis thaliana protein interactome database--an integrative platform for plant systems biology.
    Nucleic Acids Res. 2008 Jan;36(Database issue):D999-1008 PMID: 17962307
  34. Phosphatidylglycerol biosynthesis in chloroplasts of Arabidopsis mutants deficient in acyl-ACP glycerol-3- phosphate acyltransferase.
    Plant J. 2006 Jul;47(2):296-309 PMID: 16774646
  35. Identification of the Arabidopsis thaliana flavonoid 3'-hydroxylase gene and functional expression of the encoded P450 enzyme.
    Biol Chem. 2000 Aug;381(8):749-53 PMID: 11030432
  36. A T-DNA insertion knockout of the bifunctional lysine-ketoglutarate reductase/saccharopine dehydrogenase gene elevates lysine levels in Arabidopsis seeds.
    Plant Physiol. 2001 Aug;126(4):1539-45 PMID: 11500552
  37. Genome-wide insertional mutagenesis of Arabidopsis thaliana.
    Science. 2003 Aug 1;301(5633):653-7 PMID: 12893945
  38. Identification and characterization of mutants capable of rapid seed germination at 10 degrees C from activation-tagged lines of Arabidopsis thaliana.
    J Exp Bot. 2005 Aug;56(418):2059-69 PMID: 15967779
  39. Environmental stress sensitivity of an ascorbic acid-deficient Arabidopsis mutant.
    Proc Natl Acad Sci U S A. 1996 Sep 3;93(18):9970-4 PMID: 8790441
  40. Transcript and metabolite profiling during cold acclimation of Arabidopsis reveals an intricate relationship of cold-regulated gene expression with modifications in metabolite content.
    Plant J. 2007 Jun;50(6):967-81 PMID: 17461790
  41. Genome-wide analysis of glucose-6-phosphate dehydrogenases in Arabidopsis.
    Plant J. 2005 Jan;41(2):243-56 PMID: 15634201
  42. Genomic scale profiling of nutrient and trace elements in Arabidopsis thaliana.
    Nat Biotechnol. 2003 Oct;21(10):1215-21 PMID: 12949535
  43. Moving forward in reverse: genetic technologies to enable genome-wide phenomic screens in Arabidopsis.
    Nat Rev Genet. 2006 Jul;7(7):524-36 PMID: 16755288
  44. The missing step of the L-galactose pathway of ascorbate biosynthesis in plants, an L-galactose guanyltransferase, increases leaf ascorbate content.
    Proc Natl Acad Sci U S A. 2007 May 29;104(22):9534-9 PMID: 17485667
  45. Chlorophyll fluorescence--a practical guide.
    J Exp Bot. 2000 Apr;51(345):659-68 PMID: 10938857
  46. Rapid Image Analysis Screening Procedure for Identifying Chloroplast Number Mutants in Mesophyll Cells of Arabidopsis thaliana (L.) Heynh.
    Plant Physiol. 1991 Aug;96(4):1193-5 PMID: 16668319
  47. The Arabidopsis sex1 mutant is defective in the R1 protein, a general regulator of starch degradation in plants, and not in the chloroplast hexose transporter.
    Plant Cell. 2001 Aug;13(8):1907-18 PMID: 11487701
  48. Arabidopsis mutants define a central role for the xanthophyll cycle in the regulation of photosynthetic energy conversion.
    Plant Cell. 1998 Jul;10(7):1121-34 PMID: 9668132
  49. High-throughput colorimetric method for the parallel assay of glyoxylic acid and ammonium in a single extract.
    Anal Biochem. 2007 Mar 1;362(1):151-3 PMID: 17222384
  50. Impairment of the photorespiratory pathway accelerates photoinhibition of photosystem II by suppression of repair but not acceleration of damage processes in Arabidopsis.
    Plant Physiol. 2007 May;144(1):487-94 PMID: 17400706
  51. Functional profiling of the Saccharomyces cerevisiae genome.
    Nature. 2002 Jul 25;418(6896):387-91 PMID: 12140549
  52. A redox-regulated chloroplast protein phosphatase binds to starch diurnally and functions in its accumulation.
    Proc Natl Acad Sci U S A. 2006 Jun 20;103(25):9732-7 PMID: 16772378
  53. Targeted screening for induced mutations.
    Nat Biotechnol. 2000 Apr;18(4):455-7 PMID: 10748531
  54. GABA in plants: just a metabolite?
    Trends Plant Sci. 2004 Mar;9(3):110-5 PMID: 15003233
  55. Rapid classification of phenotypic mutants of Arabidopsis via metabolite fingerprinting.
    Plant Physiol. 2007 Apr;143(4):1484-92 PMID: 17277092
  56. Identification and biochemical characterization of mutants in the proanthocyanidin pathway in Arabidopsis.
    Plant Physiol. 2002 Oct;130(2):561-76 PMID: 12376625
  57. Arabidopsis VTC2 encodes a GDP-L-galactose phosphorylase, the last unknown enzyme in the Smirnoff-Wheeler pathway to ascorbic acid in plants.
    J Biol Chem. 2007 Jun 29;282(26):18879-85 PMID: 17462988
  58. LC-MS/MS assay for protein amino acids and metabolically related compounds for large-scale screening of metabolic phenotypes.
    Anal Chem. 2007 Nov 1;79(21):8067-75 PMID: 17918906
  59. Isolation of Arabidopsis mutants with enhanced disease susceptibility by direct screening.
    Genetics. 1996 Jun;143(2):973-82 PMID: 8725243
  60. The phosphatase laforin crosses evolutionary boundaries and links carbohydrate metabolism to neuronal disease.
    J Cell Biol. 2007 Jul 30;178(3):477-88 PMID: 17646401
  61. The role of amylomaltase in maltose metabolism in the cytosol of photosynthetic cells.
    Planta. 2004 Jan;218(3):466-73 PMID: 14593480
  62. Chloroplast division.
    Traffic. 2007 May;8(5):451-61 PMID: 17451550
  63. Predictive metabolic engineering: a goal for systems biology.
    Plant Physiol. 2003 Jun;132(2):420-5 PMID: 12805573
  64. Similar protein phosphatases control starch metabolism in plants and glycogen metabolism in mammals.
    J Biol Chem. 2006 Apr 28;281(17):11815-8 PMID: 16513634
  65. Altered regulation of lipid biosynthesis in a mutant of Arabidopsis deficient in chloroplast glycerol-3-phosphate acyltransferase activity.
    Proc Natl Acad Sci U S A. 1988 Jun;85(12):4143-7 PMID: 16593939
Article Info
Journal
Plant physiology
Abbr.
Plant Physiol
ISSN
0032-0889
Published
2008-04-00
Epub
2008-00-08
Pages
1482-500
Language
English
Region
United States
NLM ID
0401224
PMCID
PMC2287328
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com