1 Wang S Q. Cell wall. Biology Teaching, 1999, 25(7): 1–2. (in Chinese)2 Yan J Q. Structure and function of cell wall in higher plant. Bull Biol, 1999, 34(1): 6–10. (in Chinese)3 Filichkin S A, Leonard J M, Monteros A, Liu P P, Nonogaki H. A novel endo-β-mannanase gene in tomato LeMAN5 is associated with anther and pollen development. Plant Physiol, 2004, 134: 1080–1087.4 Bewley J D. Seed germination and dormancy. Plant Cell, 1997, 9: 1055–1066.5 Shibuya N, Iwasaki T. Polysaccharides and glycoproteins in the rice endosperm cell wall. Agric Biol Chem, 1978, 42: 2259–2266.6 Reid J S G, Meier H. Enzymatic activities and galactomannan mobilization in germinating seeds of fenugreek (Trigonella foenum-graecum L. Leguminosae): Secretion of α-galactosidase and β-mannosidase by the aleurone layer. Planta, 1973, 112: 301–308.7 Edwards M E, Marshall E, Gidley M J, Grant Reid J S. Transfer specificity of detergent-solubilized fenugreek galacto- mannanan galactosyltransferase. Plant Physiol, 2002, 129: 1391–1397.8 McCleary B V, Matheson N K. Galactomannan structure and β-mannanase and β-mannanosidase activity in germinating legume seeds. Phytochemistry, 1975, 14: 1187–1194.9 Okamoto K, Akazawa T. Enzymic mechanism of starch breakdown in germinating rice seeds: Amylase formation in the epithelium. Plant Physiol, 1979, 63: 336–340.10 Gomez-Cadenas A, Zentella R, Walker-Simmons M K, Ho T H D. Gibberellin/abscisic acid antagonism in barley aleurone cells: Site of action of the protein kinase PKABA1 in relation to gibberellin signaling molecules. Plant Cell, 2001, 13: 667–679.11 Downie B, Hilhorst H W M, Bewley J D. A new assay for quantifying endo-β-D-mannanase activity using Congo Red dye. Phytochemistry, 1994, 36: 829–835.12 Bourgault R, Bewley J D. Gel diffusion assays for endo- β-mannanase and pectin methylesterase can underestimate enzyme activity due to proteolytic degradation: A remedy. Analy Biochem, 2002, 300: 87–93.13 Mo B, Bewley J D. β-mannosidase (E.C. 3.2.1.25) activity during and following germination of tomato (Lycopersicon esculentum Mill.) seeds: Purification, cloning and characterization. Planta, 2002, 215: 141–152.14 Feurtdo J A, Banik M, Bewley J D. The cloning and characterization of α-galactosidase present during and following germination of tomato (Lycopersicon esculentum Mill.) seed. J Exp Bot, 2001, 52: 1239–1249.15 Nonogaki H, Matsushima H, Morohashi Y. Galactomannan hydrolyzing activity develops during priming in the micropylar endosperm tip of tomato seeds. Plant Physiol, 1992, 85: 167–172.16 Bewley J D. Breaking down the walls–a role for endo- β-mannanase in release from seed dormancy? Trends Plant Sci, 1997, 2: 464–469.17 Dirk L M A, Griffen A M, Downie B, Bewley J D. Multiple isozymes of endo-β-D-mannanase in dry and imbibed seeds. Phytochemistry, 1995, 40: 1045–1056.18 Groot S P C, Rokicka B K, Vermeer E, Karssen M. Gibberellin-induced hydrolysis of endosperm cell walls in gibberellin-deficient tomato seeds prior to radicle protrusion. Planta, 1988, 174: 500–504.19 Nonogaki H, Morohashi Y. An endo-β-mannanase develops exclusively in the micropylar endosperm of tomato seeds prior to radicle emergence. Plant Physiol, 1996, 110: 555– 559.20 Toorop P E, Bewley J D, Hilhorst H W M. Endo-β-mannanase isoforms are present in the endosperm and embryo of tomato seeds, but are not essentially linked to the completion of germination. Planta, 1996, 200: 153–158.21 Still D W, Dahal P, Bradford K J. A single-seed assay for endo-β-mannanase activity from tomato endosperm and radicle tissues. Plant Physiol, 1997, 113: 13–20.22 Sánchez R A, de Miguel L. Phytochrome promotion of mannan-degrading enzyme activities in the micropylar endosperm of Datura ferox seeds requires the presence of the embryo and gibberellin synthesis. Seed Sci Res, 1997, 7: 27– 33.23 Williams H A, Bewley J D, Greenwood J S, Bourgault R, Mo B. The storage cell walls in the endosperm of Asparagus officinalis L. seeds during development and following germination. Seed Sci Res, 2001, 11: 305–315.24 Mo B X, Bewley J D. The relationship between β-mannosidase and endo-β-mannanase activities in tomato seeds during and following germination: A comparison of seed populations and individual seeds. J Exp Bot, 2003, 54(392): 2503–2510.25 Marraccini P, Rogers W J, Caillet V, Deshayes A, Granato D, Lausanne F, Lechat S, Pridmore D, Pétiard V. Biochemical and molecular characterization of D-galactosidase from coffee beans. Plant Physiol Biochem, 2005, 43: 909–920.26 Lisboa C G S, Tonini P P, Tiné M A S, Buckeridge M S. Endo-β-mannanase from the endosperm of seeds of Sesbania virgata (Cav.) Pers. (Leguminosae): Purification, characterisation and its dual role in germination and early seedling growth. Brazil J Plant Physiol, 2006, 18(2): 269–280.27 Obendorf R L. Oligosaccharides and galactosyl cyclitols in seed desiccation tolerance. Seed Sci Res, 1997, 7: 63–74.28 Dulson J, Bewley J D, Johnston R N. Abscisic acid as an endogenous inhibitor in the regulation of mannanase production by isolated lettuce (Lactuca sativa cv. Grand Rapids) endosperms. Plant Physiol, 1988, 87: 660–665. |