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L. Comai, R. Dietrich, D. Maslyar, Catherine Baden, J. Harada (1989)
Coordinate expression of transcriptionally regulated isocitrate lyase and malate synthase genes in Brassica napus L.The Plant cell, 1
V. Averyhart-Fullard, Ketaki Datta, Abraham Marcus (1988)
A hydroxyproline-rich protein in the soybean cell wall.Proceedings of the National Academy of Sciences of the United States of America, 85 4
J. Rogers, D. Dean, G. Heck (1985)
Aleurain: a barley thiol protease closely related to mammalian cathepsin H.Proceedings of the National Academy of Sciences of the United States of America, 82 19
D. Verma, R. Goldberg (1988)
Temporal and Spatial Regulation of Plant Genes
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Activation of embryo during rape (Brassica napus) seed germination
E. Chen, P. Seeburg (1985)
Supercoil sequencing: a fast and simple method for sequencing plasmid DNA.DNA, 4 2
Susan Koehler, Tuan-Hua Ho (1988)
Purification and characterization of gibberellic Acid-induced cysteine endoproteases in barley aleurone layers.Plant physiology, 87 1
S. Henikoff (1984)
Unidirectional digestion with exonuclease III creates targeted breakpoints for DNA sequencing.Gene, 28 3
Larry Cohen, Vincent Coghlan, Larry Dihel (1986)
Cloning and sequencing of papain-encoding cDNA.Gene, 48 2-3
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The Synthesis of RNA in Imbibing Seed of Rape (Brassica napus) prior to the Onset of Germination: A Biochemical and Cytological StudyJournal of Experimental Botany, 29
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Physiology and Biochemistry of Seeds. in Relation to Germination
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The amino acid sequence of the tryptic peptides from actinidin, a proteolytic enzyme from the fruit of Actinidia chinensis.The Biochemical journal, 173 1
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Control of storage protein metabolism in the cotyledons of germinating mung beans: role of endopeptidase.Plant physiology, 55 6
Susan Barker, J. Harada, Robert Goldberg (1988)
Cellular localization of soybean storage protein mRNA in transformed tobacco seeds.Proceedings of the National Academy of Sciences of the United States of America, 85 2
J. Jacobsen (1984)
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DNA sequencing with chain-terminating inhibitors.Proceedings of the National Academy of Sciences of the United States of America, 74 12
K. Cox, D. DeLeon, L. Angerer, R. Angerer (1984)
Detection of mrnas in sea urchin embryos by in situ hybridization using asymmetric RNA probes.Developmental biology, 101 2
K. Takio, T. Towatari, N. Katunuma, D. Teller, K. Titani (1983)
Homology of amino acid sequences of rat liver cathepsins B and H with that of papain.Proceedings of the National Academy of Sciences of the United States of America, 80 12
A. Mayer, A. Poljakoff-mayber (1982)
METABOLISM OF GERMINATING SEEDS
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Anatomy of seed plants
J. Harada, R. Dietrich, L. Comai, Catherine Baden (1988)
Regulation of Gene Expression During Seed Germination and Postgerminative Development
I. Kamphuis, Jan Drenth, Edward Baker (1985)
Thiol proteases. Comparative studies based on the high-resolution structures of papain and actinidin, and on amino acid sequence information for cathepsins B and H, and stem bromelain.Journal of molecular biology, 182 2
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J. Cooper (1988)
Cell Wall Extensin Genes
Abstract We investigated the spatial expression of three genes that are expressed during seed germination and postgerminative development in Brassica napus L. using in situ hybridization procedures. Two of the mRNAs encode isocitrate lyase and a predicted polypeptide that is homologous to cysteine proteinases. We reported previously that the mRNAs are prevalent primarily in cotyledons of seedlings and accumulate with similar kinetics during postgerminative growth. Here, we show that the two mRNAs are detected in several seedling tissues, but they display different distribution patterns in both cotyledons and root-shoot axes. The third mRNA is abundant in seedling axes and accumulates specifically in the ground meristem and mature cortex of hypocotyls and roots. Distribution of the mRNA in root meristems suggests that the gene product participates in an early event in cortical cell differentiation. Our results provide insight into the physiological processes that characterize seedlings. This content is only available as a PDF. © 1989 by American Society of Plant Biologists This article is published and distributed under the terms of the Oxford University Press, Standard Journals Publication Model (https://academic.oup.com/journals/pages/open_access/funder_policies/chorus/standard_publication_model)
The Plant Cell – Oxford University Press
Published: Jan 1, 1989
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