Abstract
Prolamin mixtures were isolated from oats, rice, normal and high-lysine sorghum, two varieties of pearl millet, two strains of teosinte, and gamma grass and subjected to NH2-terminal amino acid sequence determinations. In each case (except for rice, whose prolamins apparently have blocked or unavailable NH2-terminal residues), primarily a single sequence was observed despite significant heterogeneity, suggesting that prolamin homology in each cereal arose through duplication and mutation of a single ancestral gene. Comparisons were then made to prolamin sequences previously determined for wheat, corn, barley, and rye. Within genera, different varieties or subspecies exhibited few differences, but more distantly related genera, subtribes, and tribes showed increasingly large differences. Within the subfamily Festucoideae, no homology was apparent between prolamins of oats and those of the subtribe Triticinae (including wheat, rye, and barley, for which prolamin homology was previously demonstrated). Within the subfamily Panicoideae, corn was shown to be closely related to teosinte but more distantly to Tripsacum. Sorghum was shown to have diverged less from corn than had millet. These comparisons demonstrate that prolamin sequence analyses can successfully predict and clarify evolutionary relationships of cereals.
MeSH Terms
Amino Acid Sequence
Edible Grain/genetics
Hordeum/genetics
Oryza/genetics
Panicum/genetics
Phylogeny
Plant Proteins/genetics
Poaceae/genetics
Prolamins
Secale/genetics
Triticum/genetics
Zea mays/genetics
Chemicals
Plant Proteins
Prolamins
Authors & Affiliations
1 authors, click to expand affiliations / ORCID
Bietz J A
References (17)
17 references, click to expand
-
Lysine level in solvent fractions of pearl millet.
J Agric Food Chem. 1979 Nov-Dec;27(6):1329-31
PMID: 120881
-
Corn protein subunits: molecular weights determined by sodium dodecyl sulfate-polyacrylamide gel electrophoresis.
J Agric Food Chem. 1975 Mar-Apr;23(2):197-201
PMID: 1133291
-
THE ORIGIN OF TRIPSACOID MAIZE (ZEA MAYS L.).
Evolution. 1978 Jun;32(2):233-244
PMID: 28563739
-
N-terminal sequence of alpha2-gliadin.
Biochim Biophys Acta. 1974 Jun 7;351(2):290-4
PMID: 4407310
-
Genetic aspects of wheat gliadin proteins.
Biochem Genet. 1978 Aug;16(7-8):831-53
PMID: 728070
-
Heterogeneity of avenin, the oat prolamin. Fractionation, molecular weight and amino acid composition.
Biochim Biophys Acta. 1978 Nov 20;537(1):22-30
PMID: 718979
-
Genes and mRNAs coding for zein polypeptides in Zea mays.
Eur J Biochem. 1979 Dec;102(1):211-22
PMID: 520323
-
Rye prolamins: extractability, separation, and characterization.
J Agric Food Chem. 1981 Sep-Oct;29(5):968-73
PMID: 7310005
-
Thin-layer chromatography of sub-nanomole amounts of phenylthiohydantoin (PTH) amino acids on polyamide sheets.
Anal Biochem. 1973 Jun;53(2):624-8
PMID: 4716391
-
COMPARATIVE EVOLUTION OF CEREALS.
Evolution. 1973 Jun;27(2):311-325
PMID: 28564784
-
Distribution and amino acid composition of protein groups located in different histological parts of maize grain.
J Agric Food Chem. 1980 Nov-Dec;28(6):1186-91
PMID: 7451746
-
The primary structure of a plant storage protein: zein.
Nucleic Acids Res. 1981 Oct 10;9(19):5163-74
PMID: 6895552
-
Letter: Sequence comparison of gamma-gliadin and coeliac-toxic alpha-gliadin.
Lancet. 1975 Oct 11;2(7937):718
PMID: 52101
-
The chromatographic determination of cystine and cysteine residues in proteins as s-beta-(4-pyridylethyl)cysteine.
J Biol Chem. 1970 Aug 10;245(15):3868-71
PMID: 5492953
-
Complete amino acid sequence of rabbit beta 2-microglobulin.
Biochemistry. 1979 May 29;18(11):2267-72
PMID: 87220
-
High-speed gel filtration of polypeptides in sodium dodecyl sulfate.
J Biochem. 1979 Sep;86(3):639-42
PMID: 511843
-
Analysis of the complexity and frequency of zein genes in the maize genome.
Biochemistry. 1980 Apr 15;19(8):1644-50
PMID: 6155140