Seed vigour studies in corn, soybean and tomato in response to fish protein hydrolysates and consequences on phenolic-linked responses.
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[1] E. Stoynova,et al. Structural and functional alterations in radish plants induced by the phenylurea cytokinin 4-PU-30 , 1996, Biologia Plantarum.
[2] K. Shetty. Role of proline-linked pentose phosphate pathway in biosynthesis of plant phenolics for functional food and environmental applications: a review , 2004 .
[3] K. Shetty,et al. Stimulation of phenolics, antioxidant and antimicrobial activities in dark germinated mung bean sprouts in response to peptide and phytochemical elicitors , 2004 .
[4] P. Mazzafera,et al. Cytokinin-like effects of caffeine in bioassays , 1997, Biologia Plantarum.
[5] K. Shetty,et al. Light-mediated fava bean (Vicia faba) response to phytochemical and protein elicitors and consequences on nutraceutical enhancement and seed vigour , 2003 .
[6] A. Yildirim,et al. Determination of antioxidant and antimicrobial activities of Rumex crispus L. extracts. , 2001, Journal of agricultural and food chemistry.
[7] J. Pinkham,et al. A model for enhanced pea seedling vigour following low pH and salicylic acid treatments , 2000 .
[8] N. Andarwulan,et al. Improvement of pea (Pisum sativum) seed vigour response by fish protein hydrolysates in combination with acetyl salicylic acid , 1999 .
[9] K. Shetty,et al. Effect of apple pomace-based Trichoderma inoculants on seedling vigour in pea (Pisum sativum) germinated in potting soil , 1999 .
[10] M. Milazzo,et al. Stimulation of benzyladenine-induced in vitro shoot organogenesis and endogenous proline in melon (Cucumis melo L.) by fish protein hydrolysates in combination with proline analogues. , 1999, Journal of agricultural and food chemistry.
[11] P. S. Sodhi,et al. ON-FARM SEED PRIMING IN SEMI-ARID AGRICULTURE: DEVELOPMENT AND EVALUATION IN MAIZE, RICE AND CHICKPEA IN INDIA USING PARTICIPATORY METHODS , 1999, Experimental Agriculture.
[12] K. Shetty,et al. Biotechnology to harness the benefits of dietary phenolics; focus on Lamiaceae. , 1997, Asia Pacific journal of clinical nutrition.
[13] S. Reinbothe,et al. The regulation of enzymes involved in chlorophyll biosynthesis. , 1996, European journal of biochemistry.
[14] P. Krishnan,et al. Priming Improves Germination and Emergence of Combine-harvested Amaranths cruentus L. Seeds , 1994 .
[15] Gary E. Harman,et al. Concepts and Technologies of Selected Seed Treatments , 1990 .
[16] K. Bradford. Manipulation of Seed Water Relations Via Osmotic Priming to Improve Germination Under Stress Conditions , 1986, HortScience.
[17] H. Greppin,et al. A two‐step control of basic and acidic peroxidases and its significance for growth and development , 1985 .
[18] J. Bewley,et al. Plant Desiccation and Protein Synthesis : VI. Changes in Protein Synthesis Elicited by Desiccation of the Moss Tortula ruralis are Effected at the Translational Level. , 1984, Plant physiology.
[19] Y. Wong,et al. Formation of Mg-Containing Chlorophyll Precursors from Protoporphyrin IX, delta-Aminolevulinic Acid, and Glutamate in Isolated, Photosynthetically Competent, Developing Chloroplasts. , 1984, Plant Physiology.
[20] Daniel J. Cantliffe,et al. Germination of Lettuce Seeds at High Temperature after Seed Priming1 , 1980, Journal of the American Society for Horticultural Science.
[21] W. Heydecker,et al. Accelerated Germination by Osmotic Seed Treatment , 1973, Nature.