Changing Form and Function through Carotenoids and Synthetic Biology1[OPEN]
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[1] P. Nabity,et al. Phylloxerids share ancestral carotenoid biosynthesis genes of fungal origin with aphids and adelgids , 2017, PloS one.
[2] A. Aharoni,et al. Efficient in planta gene targeting in tomato using geminiviral replicons and the CRISPR/Cas9 system. , 2018, The Plant journal : for cell and molecular biology.
[3] P. He,et al. A tomato B-box protein SlBBX20 modulates carotenoid biosynthesis by directly activating PHYTOENE SYNTHASE 1, and is targeted for 26S proteasome-mediated degradation. , 2018, The New phytologist.
[4] Ratnakar Vallabhaneni,et al. Maize Provitamin A Carotenoids, Current Resources, and Future Metabolic Engineering Challenges , 2012, Front. Plant Sci..
[5] Pooja Singh,et al. Prospects and progress in the production of valuable carotenoids: Insights from metabolic engineering, synthetic biology, and computational approaches. , 2018, Journal of biotechnology.
[6] R. Monaco,et al. Plastid Localization of the Key Carotenoid Enzyme Phytoene Synthase Is Altered by Isozyme, Allelic Variation, and Activity[W] , 2012, Plant Cell.
[7] A. Weber,et al. Surveying the Oligomeric State of Arabidopsis thaliana Chloroplasts. , 2017, Molecular plant.
[8] O. Köster,et al. β-Cyclocitral, a Grazer Defence Signal Unique to the Cyanobacterium Microcystis , 2010, Journal of Chemical Ecology.
[9] Jian-Ren Shen,et al. Structural basis for energy transfer pathways in the plant PSI-LHCI supercomplex , 2015, Science.
[10] S. Al‐Babili,et al. Mechanistic aspects of carotenoid biosynthesis. , 2014, Chemical reviews.
[11] S. Danoun,et al. Carotenoid accumulation during tomato fruit ripening is modulated by the auxin-ethylene balance , 2015, BMC Plant Biology.
[12] E. Majer,et al. Rewiring carotenoid biosynthesis in plants using a viral vector , 2017, Scientific Reports.
[13] Scott A. Taylor,et al. The Evolution and Genetics of Carotenoid Processing in Animals. , 2017, Trends in genetics : TIG.
[14] Y. Kamiya,et al. Inhibition of shoot branching by new terpenoid plant hormones , 2008, Nature.
[15] P. Beyer,et al. Phytoene Desaturase from Oryza sativa: Oligomeric Assembly, Membrane Association and Preliminary 3D-Analysis , 2015, PloS one.
[16] M. Zubko,et al. Unique chromoplast organisation and carotenoid gene expression in carotenoid-rich carrot callus , 2018, Planta.
[17] Changfu Zhu,et al. A global perspective on carotenoids: Metabolism, biotechnology, and benefits for nutrition and health. , 2018, Progress in lipid research.
[18] P. Beyer,et al. Transcription Factor RAP 2 . 2 and Its Interacting Partner SINAT 2 : Stable Elements in the Carotenogenesis of Arabidopsis Leaves 1 [ W ] , 2007 .
[19] S. Al‐Babili,et al. 3-Hydroxycarlactone, a Novel Product of the Strigolactone Biosynthesis Core Pathway. , 2018, Molecular plant.
[20] Tobias Kretzschmar,et al. The importance of strigolactone transport regulation for symbiotic signaling and shoot branching , 2016, Planta.
[21] J. Timlin,et al. Localizing and Quantifying Carotenoids in Intact Cells and Tissues , 2017 .
[22] P. Fraser,et al. Carotenoid profiling of yams: Clarity, comparisons and diversity. , 2018, Food chemistry.
[23] Oliver Rübel,et al. Dirigent Protein-Mediated Lignan and Cyanogenic Glucoside Formation in Flax Seed: Integrated Omics and MALDI Mass Spectrometry Imaging. , 2015, Journal of natural products.
[24] Ratnakar Vallabhaneni,et al. Timing and Biosynthetic Potential for Carotenoid Accumulation in Genetically Diverse Germplasm of Maize1[C][W][OA] , 2009, Plant Physiology.
[25] P. Fraser,et al. Subchromoplast Sequestration of Carotenoids Affects Regulatory Mechanisms in Tomato Lines Expressing Different Carotenoid Gene Combinations[C][W] , 2013, Plant Cell.
[26] H. Bouwmeester,et al. A petunia ABC protein controls strigolactone-dependent symbiotic signalling and branching , 2012, Nature.
[27] A. Wyss,et al. Carotenoids in human nutrition and health. , 2018, Archives of biochemistry and biophysics.
[28] Johannes Pfeifer,et al. Changes in the allocation of endogenous strigolactone improve plant biomass production on phosphate‐poor soils , 2017, The New phytologist.
[29] J. Dawson,et al. Control of carotenoid biosynthesis through a heme-based cis-trans isomerase , 2015, Nature chemical biology.
[30] Peter A. Crisp,et al. Learning the Languages of the Chloroplast: Retrograde Signaling and Beyond. , 2016, Annual review of plant biology.
[31] A. Ross,et al. Metabolic Effects of Inflammation on Vitamin A and Carotenoids in Humans and Animal Models. , 2017, Advances in nutrition.
[32] Eleanore T. Wurtzel,et al. A transcriptional analysis of carotenoid, chlorophyll and plastidial isoprenoid biosynthesis genes during development and osmotic stress responses in Arabidopsis thaliana , 2011, BMC Systems Biology.
[33] Walter Sanseverino,et al. A high-quality carrot genome assembly provides new insights into carotenoid accumulation and asterid genome evolution , 2016, Nature Genetics.
[34] J. A. Teixeira da Silva,et al. The biotechnology (genetic transformation and molecular biology) of Bixa orellana L. (achiote) , 2018, Planta.
[35] P. León,et al. An Uncharacterized Apocarotenoid-Derived Signal Generated in ζ-Carotene Desaturase Mutants Regulates Leaf Development and the Expression of Chloroplast and Nuclear Genes in Arabidopsis[C][W] , 2014, Plant Cell.
[36] I. Wheeldon,et al. Host and Pathway Engineering for Enhanced Lycopene Biosynthesis in Yarrowia lipolytica , 2017, Front. Microbiol..
[37] Qiang Xu,et al. The Citrus Transcription Factor CsMADS6 Modulates Carotenoid Metabolism by Directly Regulating Carotenogenic Genes1 , 2018, Plant Physiology.
[38] R. McQuinn,et al. AtPDS overexpression in tomato: exposing unique patterns of carotenoid self‐regulation and an alternative strategy for the enhancement of fruit carotenoid content , 2017, Plant biotechnology journal.
[39] S. Katsumura,et al. Strategies to enhance the excitation energy-transfer efficiency in a light-harvesting system using the intra-molecular charge transfer character of carotenoids. , 2017, Faraday discussions.
[40] O. Tzfadia,et al. The phytoene synthase gene family in the Grasses , 2009, Plant signaling & behavior.
[41] M. W. Butler,et al. Ancient origins and multiple appearances of carotenoid-pigmented feathers in birds , 2014, Proceedings of the Royal Society B: Biological Sciences.
[42] A. Allan,et al. A kiwifruit (Actinidia deliciosa) R2R3‐MYB transcription factor modulates chlorophyll and carotenoid accumulation , 2018, The New phytologist.
[43] P. Fraser,et al. The regulation of carotenoid formation in tomato fruit , 2017, The Plant journal : for cell and molecular biology.
[44] Q. Xia,et al. CRISPR/Cas9-Mediated Mutagenesis of Carotenoid Cleavage Dioxygenase 8 (CCD8) in Tobacco Affects Shoot and Root Architecture , 2018, International journal of molecular sciences.
[45] R. McQuinn,et al. Integrative Transcript and Metabolite Analysis of Nutritionally Enhanced DE-ETIOLATED1 Downregulated Tomato Fruit[W] , 2010, Plant Cell.
[46] Ratnakar Vallabhaneni,et al. From epoxycarotenoids to ABA: the role of ABA 8'-hydroxylases in drought-stressed maize roots. , 2010, Archives of biochemistry and biophysics.
[47] Vangelis Daskalakis. Protein-protein interactions within photosystem II under photoprotection: the synergy between CP29 minor antenna, subunit S (PsbS) and zeaxanthin at all-atom resolution. , 2018, Physical chemistry chemical physics : PCCP.
[48] Jianbing Yan,et al. Natural Genetic Variation in Lycopene Epsilon Cyclase Tapped for Maize Biofortification , 2008, Science.
[49] M. Rodríguez-Concepcíon,et al. Illuminating colors: regulation of carotenoid biosynthesis and accumulation by light. , 2017, Current opinion in plant biology.
[50] R. Shamir,et al. The MORPH Algorithm: Ranking Candidate Genes for Membership in Arabidopsis and Tomato Pathways[C][W] , 2012, Plant Cell.
[51] E. Wurtzel,et al. The carotenoid biosynthetic pathway: thinking in all dimensions. , 2013, Plant science : an international journal of experimental plant biology.
[52] T. Thannhauser,et al. Arabidopsis OR proteins are the major posttranscriptional regulators of phytoene synthase in controlling carotenoid biosynthesis , 2015, Proceedings of the National Academy of Sciences.
[53] P. Fraser,et al. Engineering of tomato for the sustainable production of ketocarotenoids and its evaluation in aquaculture feed , 2017, Proceedings of the National Academy of Sciences.
[54] E. Harrison,et al. Apocarotenoids: Emerging Roles in Mammals. , 2018, Annual review of nutrition.
[55] P. Beyer,et al. Enzyme Fusion Removes Competition for Geranylgeranyl Diphosphate in Carotenogenesis1[OPEN] , 2018, Plant Physiology.
[56] Mauricio S. Antunes,et al. Engineering synthetic regulatory circuits in plants. , 2018, Plant science : an international journal of experimental plant biology.
[57] G. Aprea,et al. Candidate Enzymes for Saffron Crocin Biosynthesis Are Localized in Multiple Cellular Compartments1[OPEN] , 2018, Plant Physiology.
[58] W. Kohlen,et al. Strigolactone Levels in Dicot Roots Are Determined by an Ancestral Symbiosis-Regulated Clade of the PHYTOENE SYNTHASE Gene Family , 2018, Front. Plant Sci..
[59] H. Ernst,et al. Structure activity relationship of carotenoid derivatives in activation of the electrophile/antioxidant response element transcription system. , 2009, Free radical biology & medicine.
[60] P. Christou,et al. Combined transcript, proteome, and metabolite analysis of transgenic maize seeds engineered for enhanced carotenoid synthesis reveals pleotropic effects in core metabolism , 2015, Journal of experimental botany.
[61] Carla C. C. R. de Carvalho,et al. Carotenoids in Aquatic Ecosystems and Aquaculture: A Colorful Business with Implications for Human Health , 2017, Front. Mar. Sci..
[62] M. Christodoulou,et al. Enzymatic Kinetic Resolution of 2-Piperidineethanol for the Enantioselective Targeted and Diversity Oriented Synthesis , 2015, International journal of molecular sciences.
[63] S. Al‐Babili,et al. From carotenoids to strigolactones. , 2018, Journal of experimental botany.
[64] Marcel Fuciman,et al. Zeaxanthin Protects Plant Photosynthesis by Modulating Chlorophyll Triplet Yield in Specific Light-harvesting Antenna Subunits* , 2012, The Journal of Biological Chemistry.
[65] R. Reski,et al. Strigolactone biosynthesis is evolutionarily conserved, regulated by phosphate starvation and contributes to resistance against phytopathogenic fungi in a moss, Physcomitrella patens. , 2017, The New phytologist.
[66] Broome,et al. Literature cited , 1924, A Guide to the Carnivores of Central America.
[67] S. Sawayama,et al. Overexpression of DnaJ-Like Chaperone Enhances Carotenoid Synthesis in Chlamydomonas reinhardtii , 2017, Applied Biochemistry and Biotechnology.
[68] Jordan A. Greco,et al. High Efficiency Light Harvesting by Carotenoids in the LH2 Complex from Photosynthetic Bacteria: Unique Adaptation to Growth under Low-Light Conditions , 2014, The journal of physical chemistry. B.
[69] L. Gómez-Gómez,et al. Carotenoid Cleavage Oxygenases from Microbes and Photosynthetic Organisms: Features and Functions , 2016, International journal of molecular sciences.
[70] Faqiang Li,et al. Maize Y9 encodes a product essential for 15-cis-zeta-carotene isomerization. , 2007, Plant physiology.
[71] Tal Isaacson,et al. Epistasis in tomato color mutations involves regulation of phytoene synthase 1 expression by cis-carotenoids , 2012, Proceedings of the National Academy of Sciences.
[72] D. Robertson,et al. The Genetics of Vivipary in Maize. , 1955, Genetics.
[73] P. Benfey,et al. β-Cyclocitral is a conserved root growth regulator , 2019, Proceedings of the National Academy of Sciences.
[74] K. Niyogi,et al. Engineering the lutein epoxide cycle into Arabidopsis thaliana , 2017, Proceedings of the National Academy of Sciences.
[75] G. Britton,et al. Protein‐chromophore interactions in α‐crustacyanin, the major blue carotenoprotein from the carapace of the lobster, Homarus gammarus a study by 13C magic angle spinning NMR , 1995, FEBS letters.
[76] P. Beyer,et al. Transgenic rice (Oryza sativa) endosperm expressing daffodil (Narcissus pseudonarcissus) phytoene synthase accumulates phytoene, a key intermediate of provitamin A biosynthesis. , 1997, The Plant journal : for cell and molecular biology.
[77] D. Schemske,et al. Allele substitution at a flower colour locus produces a pollinator shift in monkeyflowers , 2003, Nature.
[78] Dong Zhang,et al. Genome-wide analysis of carotenoid cleavage oxygenase genes and their responses to various phytohormones and abiotic stresses in apple (Malus domestica). , 2018, Plant physiology and biochemistry : PPB.
[79] L. Tian. Recent advances in understanding carotenoid-derived signaling molecules in regulating plant growth and development , 2015, Front. Plant Sci..
[80] Eleanore T. Wurtzel,et al. Plant metabolism, the diverse chemistry set of the future , 2016, Science.
[81] E. Kennelly,et al. Synergistic Interactions between Carotene Ring Hydroxylases Drive Lutein Formation in Plant Carotenoid Biosynthesis1[W][OA] , 2012, Plant Physiology.
[82] Yuehua Xiao,et al. Specific Upregulation of a Cotton Phytoene Synthase Gene Produces Golden Cottonseeds with Enhanced Provitamin A , 2018, Scientific Reports.
[83] Faqiang Li,et al. Maize Y9 Encodes a Product Essential for 15-cis-ζ-Carotene Isomerization1[OA] , 2007, Plant Physiology.
[84] P. Beyer,et al. Engineering the provitamin A (beta-carotene) biosynthetic pathway into (carotenoid-free) rice endosperm. , 2000, Science.
[85] Yifan Cheng,et al. Single-particle cryo-EM—How did it get here and where will it go , 2018, Science.
[86] M. Fernández,et al. Potential of Dietary Non-Provitamin A Carotenoids in the Prevention and Treatment of Diabetic Microvascular Complications. , 2016, Advances in nutrition.
[87] N. Nagata,et al. Digalactosyldiacylglycerol Is Essential for Organization of the Membrane Structure in Etioplasts1 , 2018, Plant Physiology.
[88] R. Cogdell,et al. Carotenoids and Photosynthesis. , 2016, Sub-cellular biochemistry.
[89] N. Misawa,et al. Elucidation of the Erwinia uredovora carotenoid biosynthetic pathway by functional analysis of gene products expressed in Escherichia coli , 1990, Journal of bacteriology.
[90] H. Klee,et al. The Carotenoid Cleavage Dioxygenase 1 Enzyme Has Broad Substrate Specificity, Cleaving Multiple Carotenoids at Two Different Bond Positions* , 2008, Journal of Biological Chemistry.
[91] G. Giuliano. Provitamin A biofortification of crop plants: a gold rush with many miners. , 2017, Current opinion in biotechnology.
[92] F. Chen,et al. Molecular mechanisms of the coordination between astaxanthin and fatty acid biosynthesis in Haematococcus pluvialis (Chlorophyceae). , 2015, The Plant journal : for cell and molecular biology.
[93] M. Morgante,et al. Long-range patterns of diversity and linkage disequilibrium surrounding the maize Y1 gene are indicative of an asymmetric selective sweep. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[94] P. Beyer,et al. On the Structure and Function of the Phytoene Desaturase CRTI from Pantoea ananatis, a Membrane-Peripheral and FAD-Dependent Oxidase/Isomerase , 2012, PloS one.
[95] P. Fraser,et al. Creating plant molecular factories for industrial and nutritional isoprenoid production. , 2018, Current opinion in biotechnology.
[96] D. Hornero-Méndez,et al. Xanthophyll esterification accompanying carotenoid overaccumulation in chromoplast of Capsicum annuum ripening fruits is a constitutive process and useful for ripeness index. , 2000, Journal of agricultural and food chemistry.
[97] Andrew R. Korte,et al. Spatial Mapping of Lipids at Cellular Resolution in Embryos of Cotton[W][OA] , 2012, Plant Cell.
[98] Yixiong Tang,et al. Metabolic engineering of gossypol in cotton , 2013, Applied Microbiology and Biotechnology.
[99] Huimin Zhao,et al. A plug‐and‐play pathway refactoring workflow for natural product research in Escherichia coli and Saccharomyces cerevisiae , 2017, Biotechnology and bioengineering.
[100] Yutaka Suzuki,et al. Identification of the carotenoid modifying gene PALE YELLOW PETAL 1 as an essential factor in xanthophyll esterification and yellow flower pigmentation in tomato (Solanum lycopersicum). , 2014, The Plant journal : for cell and molecular biology.
[101] P. Beyer,et al. Regulation and activation of phytoene synthase, a key enzyme in carotenoid biosynthesis, during photomorphogenesis , 2000, Planta.
[102] P. Beyer,et al. Structure of Phytoene Desaturase Provides Insights into Herbicide Binding and Reaction Mechanisms Involved in Carotene Desaturation. , 2017, Structure.
[103] P. Matthews,et al. Maize phytoene desaturase and zeta-carotene desaturase catalyse a poly-Z desaturation pathway: implications for genetic engineering of carotenoid content among cereal crops. , 2003, Journal of experimental botany.
[104] R. McQuinn,et al. Synthesis and Function of Apocarotenoid Signals in Plants. , 2016, Trends in plant science.
[105] D. Robertson,et al. Role of Carotenoids in Protecting Chlorophyll From Photodestruction. , 1960, Plant physiology.
[106] Di Liu,et al. Dynamic metabolic control: towards precision engineering of metabolism , 2018, Journal of Industrial Microbiology & Biotechnology.
[107] S. Al‐Babili,et al. Strigolactones, a novel carotenoid-derived plant hormone. , 2015, Annual review of plant biology.
[108] R. Rivera-Madrid,et al. Carotenoid Derivates in Achiote (Bixa orellana) Seeds: Synthesis and Health Promoting Properties , 2016, Front. Plant Sci..
[109] M. Rodriguez-Franco,et al. Establishment of an Arabidopsis callus system to study the interrelations of biosynthesis, degradation and accumulation of carotenoids , 2018, PloS one.
[110] A. Allan,et al. The Phytoene synthase gene family of apple (Malus x domestica) and its role in controlling fruit carotenoid content , 2015, BMC Plant Biology.
[111] P. Beyer,et al. Why Is Golden Rice Golden (Yellow) Instead of Red?1[w] , 2005, Plant Physiology.
[112] B. Wang,et al. Nuclear Receptor Regulation of Aquaporin-2 in the Kidney , 2016, International journal of molecular sciences.
[113] T. Rocheford,et al. The Maize Phytoene Synthase Gene Family: Overlapping Roles for Carotenogenesis in Endosperm, Photomorphogenesis, and Thermal Stress Tolerance1[C][W][OA] , 2008, Plant Physiology.
[114] Michelle D. Miller,et al. Association between Malnutrition and 28-Day Mortality and Intensive Care Length-of-Stay in the Critically ill: A Prospective Cohort Study , 2017, Nutrients.
[115] D. Xing,et al. β-cyclocitral upregulates salicylic acid signalling to enhance excess light acclimation in Arabidopsis. , 2015, Journal of experimental botany.
[116] Seon-Won Kim,et al. Synthetic Biology and Metabolic Engineering for Marine Carotenoids: New Opportunities and Future Prospects , 2014, Marine drugs.
[117] P. Beyer,et al. Phytoene synthase from Narcissus pseudonarcissus: functional expression, galactolipid requirement, topological distribution in chromoplasts and induction during flowering. , 1996, The Plant journal : for cell and molecular biology.
[118] T. Thannhauser,et al. Clp Protease and OR Directly Control the Proteostasis of Phytoene Synthase, the Crucial Enzyme for Carotenoid Biosynthesis in Arabidopsis. , 2018, Molecular plant.
[119] Louis M. T. Bradbury,et al. The carotenoid dioxygenase gene family in maize, sorghum, and rice. , 2010, Archives of biochemistry and biophysics.
[120] Li Li,et al. Carotenoid Metabolism in Plants: The Role of Plastids. , 2018, Molecular plant.
[121] Z. Fei,et al. Distinct Mechanisms of the ORANGE Protein in Controlling Carotenoid Flux1[OPEN] , 2016, Plant Physiology.
[122] Hilla Peretz,et al. Ju n 20 03 Schrödinger ’ s Cat : The rules of engagement , 2003 .
[123] G. Giuliano. Plant carotenoids: genomics meets multi-gene engineering. , 2014, Current opinion in plant biology.
[124] G. Giuliano,et al. Molecular and biochemical characterization of a potato collection with contrasting tuber carotenoid content , 2017, PloS one.
[125] Ratnakar Vallabhaneni,et al. Metabolite Sorting of a Germplasm Collection Reveals the Hydroxylase3 Locus as a New Target for Maize Provitamin A Biofortification1[C][W][OA] , 2009, Plant Physiology.
[126] Xixian Chen,et al. A “plug‐n‐play” modular metabolic system for the production of apocarotenoids , 2018, Biotechnology and bioengineering.
[127] M. Madigan,et al. Probing structure–function relationships in early events in photosynthesis using a chimeric photocomplex , 2017, Proceedings of the National Academy of Sciences.
[128] W. Eyster. Vivipary in Maize. , 1931, Genetics.
[129] Je-Gun Joung,et al. Combined transcriptome, genetic diversity and metabolite profiling in tomato fruit reveals that the ethylene response factor SlERF6 plays an important role in ripening and carotenoid accumulation. , 2012, The Plant journal : for cell and molecular biology.
[130] W. Gruszecki,et al. Carotenoids as modulators of lipid membrane physical properties. , 2005, Biochimica et biophysica acta.
[131] E. Kennelly,et al. Lycopene cyclase paralog CruP protects against reactive oxygen species in oxygenic photosynthetic organisms , 2012, Proceedings of the National Academy of Sciences.
[132] T. Friedrich,et al. The photocycle of orange carotenoid protein conceals distinct intermediates and asynchronous changes in the carotenoid and protein components , 2017, bioRxiv.
[133] Faqiang Li,et al. PSY3, a New Member of the Phytoene Synthase Gene Family Conserved in the Poaceae and Regulator of Abiotic Stress-Induced Root Carotenogenesis1[W][OA] , 2007, Plant Physiology.
[134] M. Smulders,et al. Genome-Wide Association Analysis of the Anthocyanin and Carotenoid Contents of Rose Petals , 2016, Front. Plant Sci..
[135] P. Benfey,et al. β-cyclocitral is a conserved root growth regulator , 2018, bioRxiv.
[136] Naiman A. Khan,et al. The Macular Carotenoids are Associated with Cognitive Function in Preadolescent Children , 2018, Nutrients.
[137] Zhenfeng Liu,et al. Structure of spinach photosystem II–LHCII supercomplex at 3.2 Å resolution , 2016, Nature.
[138] R. Efremov,et al. Lipid Nanodiscs as a Tool for High-Resolution Structure Determination of Membrane Proteins by Single-Particle Cryo-EM. , 2017, Methods in enzymology.
[139] Denis S. Willett,et al. Maize w3 disrupts homogentisate solanesyl transferase (ZmHst) and reveals a plastoquinone-9 independent path for phytoene desaturation and tocopherol accumulation in kernels. , 2018, The Plant journal : for cell and molecular biology.
[140] J. Friml,et al. Asymmetric Localizations of the ABC Transporter PaPDR1 Trace Paths of Directional Strigolactone Transport , 2015, Current Biology.
[141] K. Niyogi,et al. Evolution of an atypical de-epoxidase for photoprotection in the green lineage , 2016, Nature Plants.
[142] P. Benfey,et al. Periodic root branching in Arabidopsis requires synthesis of an uncharacterized carotenoid derivative , 2014, Proceedings of the National Academy of Sciences.
[143] P. Beyer,et al. Tissue-Specific Apocarotenoid Glycosylation Contributes to Carotenoid Homeostasis in Arabidopsis Leaves1 , 2015, Plant Physiology.
[144] A. Ross,et al. Metabolic Effects of In fl ammation on Vitamin A and Carotenoids in Humans and Animal Models 1 – 3 , 2017 .
[145] A. Plagge,et al. Assessing the Effectiveness of a Far-Red Fluorescent Reporter for Tracking Stem Cells In Vivo , 2017, International journal of molecular sciences.
[146] H. Frank,et al. Molecular factors controlling photosynthetic light harvesting by carotenoids. , 2010, Accounts of chemical research.
[147] Sanwen Huang,et al. A chemical genetic roadmap to improved tomato flavor , 2017, Science.
[148] K. V. van Wijk,et al. Plastoglobuli: Plastid Microcompartments with Integrated Functions in Metabolism, Plastid Developmental Transitions, and Environmental Adaptation. , 2017, Annual review of plant biology.
[149] K. Niyogi,et al. Dissecting and modeling zeaxanthin- and lutein-dependent nonphotochemical quenching in Arabidopsis thaliana , 2017, Proceedings of the National Academy of Sciences.
[150] G. Sandmann,et al. Combinatorial Biosynthesis of Novel Multi-Hydroxy Carotenoids in the Red Yeast Xanthophyllomyces dendrorhous , 2017, Journal of fungi.
[151] P. Beyer,et al. Novel carotenoid cleavage dioxygenase catalyzes the first dedicated step in saffron crocin biosynthesis , 2014, Proceedings of the National Academy of Sciences.
[152] P. Beyer,et al. Transcription Factor RAP2.2 and Its Interacting Partner SINAT2: Stable Elements in the Carotenogenesis of Arabidopsis Leaves1[W] , 2007, Plant Physiology.
[153] Jean-Charles Portais,et al. Strigolactone inhibition of shoot branching , 2008, Nature.
[154] M. Havaux. Carotenoid oxidation products as stress signals in plants. , 2014, The Plant journal : for cell and molecular biology.
[155] J. Zeevaart,et al. The 9-cis-epoxycarotenoid cleavage reaction is the key regulatory step of abscisic acid biosynthesis in water-stressed bean. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[156] Faqiang Li,et al. Isolation and Characterization of the Z-ISO Gene Encoding a Missing Component of Carotenoid Biosynthesis in Plants1[C][W][OA] , 2010, Plant Physiology.
[157] C. Valon,et al. An Update on Abscisic Acid Signaling in Plants and More , 2022 .
[158] M. Morgante,et al. Contrasting Effects of Selection on Sequence Diversity and Linkage Disequilibrium at Two Phytoene Synthase Loci Online version contains Web-only data. Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.012526. , 2003, The Plant Cell Online.
[159] K. Chapman,et al. Lipidomics in situ: insights into plant lipid metabolism from high resolution spatial maps of metabolites. , 2014, Progress in lipid research.
[160] Sriram Subramaniam,et al. Single-particle cryo-EM structure of a voltage-activated potassium channel in lipid nanodiscs , 2018, eLife.
[161] Z. Fei,et al. Ectopic expression of ORANGE promotes carotenoid accumulation and fruit development in tomato , 2018, Plant biotechnology journal.
[162] M. Rodríguez-Concepcíon,et al. A role for &bgr;,&bgr;-xanthophylls in Arabidopsis UV-B photoprotection , 2018, Journal of experimental botany.
[163] R. Finkelstein,et al. Abscisic Acid Synthesis and Response , 2013, The arabidopsis book.
[164] Faqiang Li,et al. PSY 3 , a New Member of the Phytoene Synthase Gene Family Conserved in the Poaceae and Regulator of Abiotic Stress-Induced Root Carotenogenesis 1 [ W ] [ OA ] , 2008 .
[165] P. Beyer,et al. Tissue-Speci fi c Apocarotenoid Glycosylation Contributes to Carotenoid Homeostasis in Arabidopsis Leaves 1 , 2015 .
[166] L. Soubigou-Taconnat,et al. Carotenoid oxidation products are stress signals that mediate gene responses to singlet oxygen in plants , 2012, Proceedings of the National Academy of Sciences.