Home LiteratureArticle Details
PMID: 9691053 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Genetic mechanisms underlying apimaysin and maysin synthesis and corn earworm antibiosis in maize (Zea mays L.).

Genetics ·Vol. 149 ·No. 4 ·1998-08-00 ·Pages 1997-2006

Lee EA, Byrne PF, McMullen MD, Snook ME, Wiseman BR, Widstrom NW, Coe EH

Abstract

C-glycosyl flavones in maize silks confer resistance (i.e., antibiosis) to corn earworm (Helicoverpa zea [Boddie]) larvae and are distinguished by their B-ring substitutions, with maysin and apimaysin being the di- and monohydroxy B-ring forms, respectively. Herein, we examine the genetic mechanisms underlying the synthesis of maysin and apimaysin and the corresponding effects on corn earworm larval growth. Using an F2 population, we found a quantitative trait locus (QTL), rem1, which accounted for 55.3% of the phenotypic variance for maysin, and a QTL, pr1, which explained 64.7% of the phenotypic variance for apimaysin. The maysin QTL did not affect apimaysin synthesis, and the apimaysin QTL did not affect maysin synthesis, suggesting that the synthesis of these closely related compounds occurs independently. The two QTLs, rem1 and pr1, were involved in a significant epistatic interaction for total flavones, suggesting that a ceiling exists governing the total possible amount of C-glycosyl flavone. The maysin and apimaysin QTLs were significant QTLs for corn earworm antibiosis, accounting for 14. 1% (rem1) and 14.7% (pr1) of the phenotypic variation. An additional QTL, represented by umc85 on the short arm of chromosome 6, affected antibiosis (R2 = 15.2%), but did not affect the synthesis of the C-glycosyl flavones.

MeSH Terms
Alleles Animals Anti-Infective Agents/metabolism Chromosome Mapping Crosses, Genetic Epistasis, Genetic Flavonoids/biosynthesis,genetics Genes, Plant Genetic Linkage Genetic Markers Genetic Variation Genotype Glucosides/biosynthesis Larva/pathogenicity Models, Genetic Moths/pathogenicity Phenotype Quantitative Trait, Heritable Zea mays/genetics,metabolism,parasitology
Chemicals
Anti-Infective Agents Flavonoids Genetic Markers Glucosides maysin apimaysin
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Lee E A
Plant Genetics Research Unit, Agricultural Research Service, U.S. Department of Agriculture, Columbia, Missouri 65211, USA.
Byrne P F
McMullen M D
Snook M E
Wiseman B R
Widstrom N W
Coe E H
References (16)
16 references, click to expand
  1. Metabolic pathways as enzyme complexes: evidence for the synthesis of phenylpropanoids and flavonoids on membrane associated enzyme complexes.
    Arch Biochem Biophys. 1985 Feb 15;237(1):88-100 PMID: 3970546
  2. Enzymes of B-ring-deoxy flavonoid biosynthesis in elicited cell cultures of "old man" cactus (Cephalocereus senilis).
    Arch Biochem Biophys. 1995 Aug 20;321(2):397-404 PMID: 7646065
  3. Maize anthocyanin regulatory gene pl is a duplicate of c1 that functions in the plant.
    Plant Cell. 1993 Dec;5(12):1795-805 PMID: 8305872
  4. Genetics and Biochemistry of Anthocyanin Biosynthesis.
    Plant Cell. 1995 Jul;7(7):1071-1083 PMID: 12242398
  5. Variation in Lignin Content and Composition (Mechanisms of Control and Implications for the Genetic Improvement of Plants).
    Plant Physiol. 1996 Jan;110(1):3-13 PMID: 12226169
  6. A maize gene controlling silk browning in response to wounding.
    Genetics. 1971 Dec;69(4):491-8 PMID: 17248552
  7. The duplicated chalcone synthase genes C2 and Whp (white pollen) of Zea mays are independently regulated; evidence for translational control of Whp expression by the anthocyanin intensifying gene in.
    EMBO J. 1991 Sep;10(9):2605-12 PMID: 1714383
  8. Influence of transposable elements on the structure and function of the A1 gene of Zea mays.
    EMBO J. 1987 Feb;6(2):287-94 PMID: 15981326
  9. Quantitative trait loci and metabolic pathways: genetic control of the concentration of maysin, a corn earworm resistance factor, in maize silks.
    Proc Natl Acad Sci U S A. 1996 Aug 20;93(17):8820-5 PMID: 11607699
  10. Two regulatory genes of the maize anthocyanin pathway are homologous: isolation of B utilizing R genomic sequences.
    Plant Cell. 1989 Dec;1(12):1175-83 PMID: 2535537
  11. Gene-dependent flavonoid glucosyltransferase in maize.
    Biochem Genet. 1977 Feb;15(1-2):153-6 PMID: 849249
  12. Quantitative trait loci and metabolic pathways.
    Proc Natl Acad Sci U S A. 1998 Mar 3;95(5):1996-2000 PMID: 9482823
  13. Intragenic transposition of Ac generates a new allele of the maize P gene.
    Genetics. 1990 Oct;126(2):469-76 PMID: 1700963
  14. Development of a core RFLP map in maize using an immortalized F2 population.
    Genetics. 1993 Jul;134(3):917-30 PMID: 8102344
  15. Gene-dependent flavonoid 3'-hydroxylation in maize.
    Biochem Genet. 1986 Aug;24(7-8):615-24 PMID: 3753432
  16. Alleles of the maize P gene with distinct tissue specificities encode Myb-homologous proteins with C-terminal replacements.
    Plant Cell. 1996 Jul;8(7):1149-58 PMID: 8768374
Article Info
Journal
Genetics
Abbr.
Genetics
ISSN
0016-6731
Published
1998-08-00
Pages
1997-2006
Language
English
Region
United States
NLM ID
0374636
PMCID
PMC1460254
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: [email protected]