Regulation of carotenoid biosynthetic genes expression and carotenoid accumulation in the green alga Haematococcus pluvialis under nutrient stress conditions.
暂无分享,去创建一个
Gokare A. Ravishankar | R. Sarada | Ravi Sarada | Gokare Aswathanarayana Ravishankar | Raman Vidhyavathi | Lakshmanan Venkatachalam | L. Venkatachalam | R. Vidhyavathi
[1] F. Nagy,et al. Short- and long-term redox regulation of photosynthetic light energy distribution and photosystem stoichiometry by acetate metabolism in the green alga, Chlamydobotrys stellata , 2004, Photosynthesis Research.
[2] Accumulation of astaxanthin in flagellated cells of Haematococcus pluvialis – cultural and regulatory aspects , 2004 .
[3] Production of astaxanthin in Haematococcus pluvialis cultured in various media. , 1999 .
[4] Lu Fan,et al. The Biosynthetic Pathway of Astaxanthin in a Green Alga Haematococcus pluvialis as Indicated by Inhibition with Diphenylamine , 1995 .
[5] T. Lotan,et al. Cloning and expression inEscherichia coli of the gene encoding β‐C‐4‐oxygenase, that converts β‐carotene to the ketocarotenoid canthaxanthin inHaematococcus pluvialis , 1995, FEBS letters.
[6] M. Ovadis,et al. CHRC, Encoding a Chromoplast-specific Carotenoid-associated Protein, Is an Early Gibberellic Acid-responsive Gene* , 1997, The Journal of Biological Chemistry.
[7] P. Fraser,et al. Recent advances in carotenoid biosynthesis, regulation and manipulation , 2005, Planta.
[8] Differential expression of carotenogenic genes and associated changes in pigment profile during regeneration of Haematococcus pluvialis cysts , 2007, Applied Microbiology and Biotechnology.
[9] J. Steinbrenner,et al. Light induction of carotenoid biosynthesis genes in the green alga Haematococcus pluvialis: regulation by photosynthetic redox control , 2003, Plant Molecular Biology.
[10] Gokare A. Ravishankar,et al. Influence of stress on astaxanthin production in Haematococcus pluvialis grown under different culture conditions , 2002 .
[11] Ashverya Laxmi,et al. Global Transcription Profiling Reveals Multiple Sugar Signal Transduction Mechanisms in Arabidopsis , 2004, The Plant Cell Online.
[12] E. Gantt,et al. GENES AND ENZYMES OF CAROTENOID BIOSYNTHESIS IN PLANTS. , 1998, Annual review of plant physiology and plant molecular biology.
[13] Gokare A. Ravishankar,et al. An efficient method for extraction of astaxanthin from green alga Haematococcus pluvialis. , 2006, Journal of agricultural and food chemistry.
[14] N. Misawa,et al. Enzymic confirmation of reactions involved in routes to astaxanthin formation, elucidated using a direct substrate in vitro assay. , 1998, European journal of biochemistry.
[15] M. Kuntz,et al. Light-dark regulation of carotenoid biosynthesis in pepper (Capsicum annuum) leaves. , 2003, Journal of plant physiology.
[16] Shiro Nagai,et al. Effects of light intensity, light quality, and illumination cycle on astaxanthin formation in a green alga, Haematococcus pluvialis , 1992 .
[17] H. Leon Harter,et al. THE PROBABILITY INTEGRALS OF THE RANGE AND OF THE STUDENTIZED RANGE. PROBABILITY INTEGRAL AND PERCENTAGE POINTS OF THE STUDENTIZED RANGE; CRITICAL VALUES FOR DUNCAN'S NEW MULTIPLE RANGE TEST , 1959 .
[18] K. Grünewald,et al. Ketocarotenoid Biosynthesis Outside of Plastids in the Unicellular Green Alga Haematococcus pluvialis * , 2001, The Journal of Biological Chemistry.
[19] Feng Chen,et al. Changes in pigments profile in the green alga Haeamtococcus pluvialis exposed to environmental stresses , 1999, Biotechnology Letters.
[20] K. Grünewald,et al. Phytoene desaturase is localized exclusively in the chloroplast and up-regulated at the mRNA level during accumulation of secondary carotenoids in Haematococcus pluvialis (Volvocales, chlorophyceae). , 2000, Plant physiology.
[21] G. Sandmann,et al. Stress-related differential expression of multiple beta-carotene ketolase genes in the unicellular green alga Haematococcus pluvialis. , 2006, Journal of biotechnology.
[22] J. Steinbrenner,et al. Regulation of two carotenoid biosynthesis genes coding for phytoene synthase and carotenoid hydroxylase during stress-induced astaxanthin formation in the green alga Haematococcus pluvialis. , 2001, Plant physiology.
[23] Miguel Olaizola,et al. Haematococcus astaxanthin: applications for human health and nutrition. , 2003, Trends in biotechnology.
[24] Choul-Gyun Lee,et al. Secondary Carotenoid Accumulation in Haematococcus (Chlorophyceae): Biosynthesis, Regulation, and Biotechnology , 2006 .
[25] H. Linden,et al. Regulation of carotenoid biosynthesis genes in response to light in Chlamydomonas reinhardtii. , 2002, Biochimica et biophysica acta.
[26] Shiro Nagai,et al. Enhanced Carotenoid Biosynthesis by Oxidative Stress in Acetate-Induced Cyst Cells of a Green Unicellular Alga, Haematococcus pluvialis , 1993, Applied and environmental microbiology.
[27] S. Nagai,et al. Effect of carbon/nitrogen ratio on encystment accompanied with astaxanthin formation in a green alga, Haematococcus pluvialis , 1992 .
[28] S. Boussiba. Carotenogenesis in the green alga Haematococcus pluvialis: Cellular physiology and stress response , 2000 .
[29] P. A. Scolnik,et al. Plant carotenoids: pigments for photoprotection, visual attraction, and human health. , 1995, The Plant cell.
[30] K. Asada,et al. Dark Induction of the Non-Photochemical Quenching of Chlorophyll Fluorescence by Acetate in Chlamydomonas reinhardtii , 1996 .