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Artykuły w czasopismach na temat "Flower development biology"
COEN, E. "Flower development". Current Opinion in Cell Biology 4, nr 6 (grudzień 1992): 929–33. http://dx.doi.org/10.1016/0955-0674(92)90120-2.
Pełny tekst źródłaBotta, Roberto, Grazia Vergano, Giovanni Me i Rosalina Vallania. "Floral Biology and Embryo Development in Chestnut (Castanea sativa Mill.)". HortScience 30, nr 6 (październik 1995): 1283–86. http://dx.doi.org/10.21273/hortsci.30.6.1283.
Pełny tekst źródłaHANDAYANI, TRI. "Flower morphology, floral development and insect visitors to flowers of Nepenthes mirabilis". Biodiversitas Journal of Biological Diversity 18, nr 4 (7.10.2017): 1624–31. http://dx.doi.org/10.13057/biodiv/d180441.
Pełny tekst źródłaLuo, Yan, Bang-Zhen Pan, Lu Li, Chen-Xuan Yang i Zeng-Fu Xu. "Developmental basis for flower sex determination and effects of cytokinin on sex determination in Plukenetia volubilis (Euphorbiaceae)". Plant Reproduction 33, nr 1 (6.01.2020): 21–34. http://dx.doi.org/10.1007/s00497-019-00382-9.
Pełny tekst źródłaChen, Q., A. Atkinson, D. Otsuga, T. Christensen, L. Reynolds i G. N. Drews. "The Arabidopsis FILAMENTOUS FLOWER gene is required for flower formation". Development 126, nr 12 (15.06.1999): 2715–26. http://dx.doi.org/10.1242/dev.126.12.2715.
Pełny tekst źródłaBlázquez, Miguel A. "Flower development pathways". Journal of Cell Science 113, nr 20 (1.01.2000): 3547–48. http://dx.doi.org/10.1242/jcs.113.20.3547.
Pełny tekst źródłaHoque, MA. "Floral biology of indigenous pummelo genotypes". Bangladesh Journal of Agricultural Research 40, nr 2 (20.08.2015): 177–88. http://dx.doi.org/10.3329/bjar.v40i2.24556.
Pełny tekst źródłaCoen, Enrico S., Sandra Doyle, Jose M. Romero, Robert Elliott, Ruth Magrath i Rosemary Carpenter. "Homeotic genes controlling flower development in Antirrhinum". Development 113, Supplement_1 (1.01.1991): 149–55. http://dx.doi.org/10.1242/dev.113.supplement_1.149.
Pełny tekst źródłaDornelas, Marcelo C., i Adriana P. M. Rodriguez. "A genomic approach to elucidating grass flower development". Genetics and Molecular Biology 24, nr 1-4 (grudzień 2001): 69–76. http://dx.doi.org/10.1590/s1415-47572001000100011.
Pełny tekst źródłaBossinger, G., i D. R. Smyth. "Initiation patterns of flower and floral organ development in Arabidopsis thaliana". Development 122, nr 4 (1.04.1996): 1093–102. http://dx.doi.org/10.1242/dev.122.4.1093.
Pełny tekst źródłaRozprawy doktorskie na temat "Flower development biology"
Ferraro, Benjamin James. "Examining the roles of CYCLOIDEA, RADIALIS and DIVARICATA in driving the evolution of flower shape Californian Diplacus pictus (Curran ex Greene) Nesom (Phrymaceae)". Thesis, California State University, Long Beach, 2014. http://pqdtopen.proquest.com/#viewpdf?dispub=1526903.
Pełny tekst źródłaFlower shape, color and size are extensively studied to both identify and classify different angiosperm taxa. The availability of well-supported molecular phylogenies produced using complex models of sequence evolution, coupled with an understanding of the genes that regulate morphological form in model organisms, and new methods to infer gene expression patterns in diverse species now allow us to understand the genetic basis of morphological differences among closely related species. Studies in Plantaginaceae, Gesneriaceae, Fabaceae and Brassicaceae show the importance of CYCLOIDEA (CYC), RADIALIS (RAD) and DIVARICATA (DIV) in regulating flower shape, but also show divergence in gene function within flowering plants. Previous studies in the zygomorphic model species Antirrhinum majus (snapdragon) have shown that AmCYC is expressed in the adaxial (dorsal) petals of flowers where it activates AmRAD . This expression of AmRAD within adaxial petals represses AmDIV expression causing AmDIV to be restricted to abaxial (ventral) and lateral petals. Like Antirrhinum , traditional Diplacus flowers have distinct dorsal, ventral and lateral petal identities. However, within the clade actinomorphic flowers have evolved independently on two occasions: once in D. pictus and once in D. mohaviensis. mRNA reveal DIV expression to be conserved between D. pictus and snapdragon, whereas CYC and RAD expression, and presumably function, differ between the two species. DpCYC is expressed in a narrow portion on the upper lip of abaxial petals, whereas DpRAD is expressed within both lateral and abaxial petals. D. pictus flowers are characterized by a novel upturned abaxial petal which may be linked to localized CYC expression along the upper surface of the structure. This study sheds new light on the mechanisms regulating flower shape in an endemic Californian monkey flower and shows the importance of testing hypotheses from model species such as Arabidopsis and snapdragon in non-model taxa such as D. pictus to undercover the true variety of mechanisms driving morphological evolution.
Sundström, Jens. "Evolution of genetic mechanisms regulating reproductive development in plants : Characterisation of MADS-box genes active during cone development in Norway spruce". Doctoral thesis, Uppsala University, Department of Evolutionary Biology, 2001. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-620.
Pełny tekst źródłaThe reproductive organs of conifers and angiosperms differ in morphology in several fundamental respects. The conifer Norway spruce (Picea abies) form pollen and seed cones from separate meristems whereas angiosperms bear bipartite flowers with sepals and petals surrounding two inner whorls of stamens and carpels. Despite these differences in morphology this thesis present data to suggest that reproductive development in conifers and angiosperms is regulated by a similar molecular mechanism. This implies an evolutionary conservation of the major mechanism for reproductive development since the origin of seed plants.
Flower organ identity in angiosperms is determined by regulatory genes belonging to the MADS-box gene family of transcription factors. This thesis presents the cloning and characterisation of four novel MADS-box genes from Norway spruce. Three of these genes DAL11, DAL12 and DAL13 are most closely related to angiosperm B function genes i.e. genes required for petal and stamen development. DAL11, 12 and 13 all are specifically active in developing pollen cones, with different temporal and spatial expression pattern. Functional analysis in transgenic Arabidopsis and yeast suggest that the reproductive aspect of the B-function is conserved between conifers and angiosperms. The results also suggest that the B-function in conifers is separated into one shoot identity and one organ identity determinant.
A fourth gene presented; DAL10, is specifically expressed in vegetative parts of pollen- and seed cones. Phylogenetically DAL10 is not closely related to any of the known angiosperm clades, but rather forms a separate clade with other gymnosperm genes, suggesting a gymnosperm specific function. We suggest that the DAL10 activity reflects a function in the determination of the reproductive shoot.
Wang, Yunjing. "Molecular biology of flower development in Viola pubescens, a species with the chasmogamous-cleistogamous mixed breeding system". Ohio : Ohio University, 2008. http://www.ohiolink.edu/etd/view.cgi?ohiou1205379431.
Pełny tekst źródłaLegrand, Jonathan. "Toward a multi-scale understanding of flower development - from auxin networks to dynamic cellular patterns". Thesis, Lyon, École normale supérieure, 2014. http://www.theses.fr/2014ENSL0947/document.
Pełny tekst źródłaA striking aspect of flowering plants is that, although they seem to display a great diversity of size and shape, they are made of the same basics constituents, that is the cells. The major challenge is then to understand how multicellular tissues, originally undifferentiated, can give rise to such complex shapes. We first investigated the uncharacterised signalling network of auxin since it is a major phytohormone involved in flower organogenesis.We started by determining the potential binary network, then applied model-based graph clustering methods relying on connectivity profiles. We demonstrated that it could be summarise in three groups, closely related to putative biological groups. The characterisation of the network function was made using ordinary differential equation modelling, which was later confirmed by experimental observations.In a second time, we modelled the influence of the protein dimerisation sequences on the auxin interactome structure using mixture of linear models for random graphs. This model lead us to conclude that these groups behave differently, depending on their dimerisation sequence similarities, and that each dimerisation domains might play different roles.Finally, we changed scale to represent the observed early stages of A. thaliana flower development as a spatio-temporal property graph. Using recent improvements in imaging techniques, we could extract 3D+t cellular features, and demonstrated the possibility of identifying and characterising cellular identity on this basis. In that respect, hierarchical clustering methods and hidden Markov tree have proven successful in grouping cell depending on their feature similarities
Hooi, Wei Yeng. "Search for early molecular markers of the mantled floral variation of oil palm". Thesis, Montpellier, 2015. http://www.theses.fr/2015MONTS244.
Pełny tekst źródłaProject title : Search for early molecular markers of the mantled floral variation of oil palmObjectives : - identifying expression markers of the mantled somaclonal variation through the comparison between the true-to-type and the variant transcriptome. - assessing the discriminating power of the selected markers at early stages of the in vitro process.Strategy and Methods : Transcriptomic analysis of the normal oil palm inflorescence, construction of a reference transcriptome. Technique : RNAseq, Illumina sequencing.Identification of sequences and pathways of interest. Technique : bioinformatic analysis of sequencing data.Comparison between the normal and the mantled inflorescence transcriptome through the re-sequencing of libraries generated from several different clonal lines. Technique : Illumina. Identification of sequences displaying consistently a phenotype-dependent differential expression pattern. Technique : bioinformatic analysis of sequencing data, statistical analysis of expression patterns. Validation of candidate markers on normal/mantled regenerant palm pairs from different clonal lines and on normal-/mantled-derived in vitro cultures at various stages of the industrial regeneration process. Technique : quantitative PCR (q-PCR)
FERRARI, ROBERTO. "MOLECULAR BASES OF SVP REGULATORY FUNCTIONS IN ARABIDOPSIS THALIANA". Doctoral thesis, Università degli Studi di Milano, 2017. http://hdl.handle.net/2434/521865.
Pełny tekst źródłaSayou, Camille. "Structure, fonction et évolution de LEAFY, facteur de transcription clé du développement floral". Phd thesis, Université de Grenoble, 2013. http://tel.archives-ouvertes.fr/tel-00949325.
Pełny tekst źródłaLandberg, Katarina. "TERMINAL FLOWER2, the Arabidopsis HETEROCHROMATIN PROTEIN1 Homolog, and its Involvement in Plant Development". Doctoral thesis, Uppsala : Acta Universitatis Upsaliensis, 2007. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7502.
Pełny tekst źródłaNilsson, Lars. "Analysis of Two Transcriptional Regulators that Affect Meristem Function : Arabidopsis thaliana TERMINAL FLOWER2 and Picea abies APETELA2". Doctoral thesis, Uppsala : Acta Universitatis Upsaliensis, 2007. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-7437.
Pełny tekst źródłaMantegazza, O. "SEARCHING FOR NEW GENETIC PATHWAYS IN EARLY FLOWER DEVELOPMENT OF ARABIDOPSIS THALIANA". Doctoral thesis, Università degli Studi di Milano, 2014. http://hdl.handle.net/2434/244021.
Pełny tekst źródłaKsiążki na temat "Flower development biology"
Kababik, Dana. From seed to flower. Minneapolis MN: Lake Street Publishers, 2003.
Znajdź pełny tekst źródłaEarly Development of the Human Pelvic Diaphragm (Advances in Anatomy, Embryology and Cell Biology). Springer, 2007.
Znajdź pełny tekst źródła(Editor), Zbigniew Darzynkiewicz, Mario Roederer (Editor) i Hans J. Tanke (Editor), red. Cytometry: New Developments, Volume 75, Fourth Edition (Methods in Cell Biology). Wyd. 4. Academic Press, 2004.
Znajdź pełny tekst źródła(Editor), Zbigniew Darzynkiewicz, Mario Roederer (Editor) i Hans J. Tanke (Editor), red. Cytometry: New Developments, Volume 75, Fourth Edition (Methods in Cell Biology). Academic Press, 2004.
Znajdź pełny tekst źródłaDarzynkiewicz, Zbigniew, Mario Roederer i Hans J. Tanke. Cytometry: New Developments. Elsevier Science & Technology Books, 2005.
Znajdź pełny tekst źródłaSucci, Sauro. The Lattice Boltzmann Equation. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780199592357.001.0001.
Pełny tekst źródłaSklar, Larry A., red. Flow Cytometry for Biotechnology. Oxford University Press, 2005. http://dx.doi.org/10.1093/oso/9780195183146.001.0001.
Pełny tekst źródła(Editor), S. Chien, J. A. Dormandy (Editor), E. Ernst (Editor) i A. Matrai (Editor), red. Clinical Hemorheology: Applications in Cardiovascular and Hematological Disease, Diabetes, Surgery and Gynecology (Developments in Cardiovascular Medicine). Springer, 1987.
Znajdź pełny tekst źródłaMuñoz-Moreno, María de Lourdes, i Michael H. Crawford, red. Human Migration. Oxford University Press, 2021. http://dx.doi.org/10.1093/oso/9780190945961.001.0001.
Pełny tekst źródłaMcDougall, Jason J., i Joel A. Vilensky. The innervation of the joint and its role in osteoarthritis pain. Oxford University Press, 2016. http://dx.doi.org/10.1093/med/9780199668847.003.0007.
Pełny tekst źródłaCzęści książek na temat "Flower development biology"
Twyman, R. M. "Flower Development". W BIOS Instant Notes in Developmental Biology, 429–38. London: Taylor & Francis, 2023. http://dx.doi.org/10.1201/9781003416371-79.
Pełny tekst źródłaHirano, Hiro-Yuki, Wakana Tanaka i Taiyo Toriba. "Grass Flower Development". W Methods in Molecular Biology, 57–84. New York, NY: Springer New York, 2013. http://dx.doi.org/10.1007/978-1-4614-9408-9_3.
Pełny tekst źródłaKrishnamurthy, K. V., i Bir Bahadur. "Genetics of Flower Development". W Plant Biology and Biotechnology, 385–407. New Delhi: Springer India, 2015. http://dx.doi.org/10.1007/978-81-322-2286-6_16.
Pełny tekst źródłaChahtane, Hicham, Xuelei Lai, Gabrielle Tichtinsky, Philippe Rieu, Moïra Arnoux-Courseaux, Coralie Cancé, Claudius Marondedze i François Parcy. "Flower Development in Arabidopsis". W Methods in Molecular Biology, 3–38. New York, NY: Springer US, 2023. http://dx.doi.org/10.1007/978-1-0716-3299-4_1.
Pełny tekst źródłaYamashita, H., i Y. Komeda. "Control of Flower Development". W Plant Developmental Biology - Biotechnological Perspectives, 195–208. Berlin, Heidelberg: Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-642-02301-9_10.
Pełny tekst źródłaMonniaux, Marie, i Michiel Vandenbussche. "Flower Development in the Solanaceae". W Methods in Molecular Biology, 39–58. New York, NY: Springer US, 2023. http://dx.doi.org/10.1007/978-1-0716-3299-4_2.
Pełny tekst źródłaCausier, Barry, i Brendan Davies. "Flower Development in the Asterid Lineage". W Methods in Molecular Biology, 35–55. New York, NY: Springer New York, 2013. http://dx.doi.org/10.1007/978-1-4614-9408-9_2.
Pełny tekst źródłaZúñiga-Mayo, Victor M., Yolanda Durán-Medina, Nayelli Marsch-Martínez i Stefan de Folter. "Hormones and Flower Development in Arabidopsis". W Methods in Molecular Biology, 111–27. New York, NY: Springer US, 2023. http://dx.doi.org/10.1007/978-1-0716-3299-4_5.
Pełny tekst źródłaWellmer, Frank, John L. Bowman, Brendan Davies, Cristina Ferrándiz, Jennifer C. Fletcher, Robert G. Franks, Emmanuelle Graciet i in. "Flower Development: Open Questions and Future Directions". W Methods in Molecular Biology, 103–24. New York, NY: Springer New York, 2013. http://dx.doi.org/10.1007/978-1-4614-9408-9_5.
Pełny tekst źródłaÁlvarez-Urdiola, Raquel, José Tomás Matus i José Luis Riechmann. "Multi-Omics Methods Applied to Flower Development". W Methods in Molecular Biology, 495–508. New York, NY: Springer US, 2023. http://dx.doi.org/10.1007/978-1-0716-3299-4_23.
Pełny tekst źródłaStreszczenia konferencji na temat "Flower development biology"
Zelinsky, Ellen. "A deeply conserved polygalacturonase functions in flower development in Arabidopsis thaliana". W ASPB PLANT BIOLOGY 2020. USA: ASPB, 2020. http://dx.doi.org/10.46678/pb.20.989681.
Pełny tekst źródłaMcQuinn, Ryan. "Flower development is regulated by a retrograde signaling cascade initiated in an Arabidopsis chloroplast biogenesis mutant." W ASPB PLANT BIOLOGY 2020. USA: ASPB, 2020. http://dx.doi.org/10.46678/pb.20.1332418.
Pełny tekst źródłaMarshall, Carine. "The Intersection of Age, Environment, and the Circadian Clock on the Sunflower Capitulum Leads to Rhythms of Floret Development". W ASPB PLANT BIOLOGY 2020. USA: ASPB, 2020. http://dx.doi.org/10.46678/pb.20.1053069.
Pełny tekst źródłaKrumpe, Peter E. "Evolutionary Biology of Airway Clearance". W ASME 1999 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 1999. http://dx.doi.org/10.1115/imece1999-0372.
Pełny tekst źródłaSpearing, Scott, Sang Young Son, Jeffrey Allen i Lisa A. Monaco. "A Platform for Cross-Disciplinary Microchannel Research". W ASME 2003 1st International Conference on Microchannels and Minichannels. ASMEDC, 2003. http://dx.doi.org/10.1115/icmm2003-1126.
Pełny tekst źródłaWilson, Zachary D., i Sean S. Kohles. "Modeling Nanomechanical Strains in Healthy and Diseased Single-Cells Due to Applied Fluidic Stresses". W ASME 2010 First Global Congress on NanoEngineering for Medicine and Biology. ASMEDC, 2010. http://dx.doi.org/10.1115/nemb2010-13010.
Pełny tekst źródłaMorales, Mercedes C., i Jeffrey D. Zahn. "Development of a Diffusion Limited Microfluidic Module for DNA Purification via Phenol Extraction". W ASME 2008 International Mechanical Engineering Congress and Exposition. ASMEDC, 2008. http://dx.doi.org/10.1115/imece2008-68086.
Pełny tekst źródłaLee, Gwo-Bin. "Microfluidics and Their Biomedical Applications". W ASME 2007 5th International Conference on Nanochannels, Microchannels, and Minichannels. ASMEDC, 2007. http://dx.doi.org/10.1115/icnmm2007-30164.
Pełny tekst źródłaPaula, Dênia Reis de, Benedito de Sousa Almeida Filho, Carla Priscila Kamiya Carvalho Pessoa, Heloisa Maria De Luca Vespoli i Eduardo Carvalho Pessoa. "THE CORRELATION BETWEEN ULTRASSONOGRAFIC PREDICTORS, LOBAR ANATOMY AND TUMOR BIOLOGY". W Scientifc papers of XXIII Brazilian Breast Congress - 2021. Mastology, 2021. http://dx.doi.org/10.29289/259453942021v31s1016.
Pełny tekst źródłaPetrov, Nikita Aleksandrovich, Yuliya Sergeevna Sidorova, Alla Alekseevna Kochetkova i Vladimir Kimovich Mazo. "DEVELOPMENT AND IN VIVO EVALUATION OF COMPLEXES OF BIOLOGICALLY ACTIVE COMPOUNDS WITH BIOPOLYMER MATRICES". W NEW TECHNOLOGIES IN MEDICINE, BIOLOGY, PHARMACOLOGY AND ECOLOGY. Institute of information technology, 2021. http://dx.doi.org/10.47501/978-5-6044060-1-4.36.
Pełny tekst źródłaRaporty organizacyjne na temat "Flower development biology"
Anderson, Olin, i Gad Galili. Development of Assay Systems for Bioengineering Proteins that Affect Dough Quality and Wheat Utilization. United States Department of Agriculture, 1994. http://dx.doi.org/10.32747/1994.7568781.bard.
Pełny tekst źródłaSavosko, V., I. Komarova, Yu Lykholat, E. Yevtushenko i T. Lykholat. Predictive model of heavy metals inputs to soil at Kryvyi Rih District and its use in the training for specialists in the field of Biology. IOP Publishing, 2021. http://dx.doi.org/10.31812/123456789/4511.
Pełny tekst źródłaСавосько, Василь Миколайович, Ірина Олександрівна Комарова, Юрій Васильович Лихолат, Едуард Олексійович Євтушенко, i Тетяна Юріївна Лихолат. Predictive Model of Heavy Metals Inputs to Soil at Kryvyi Rih District and its Use in the Training for Specialists in the Field of Biology. IOP Publishing, 2021. http://dx.doi.org/10.31812/123456789/4266.
Pełny tekst źródłaHirschberg, Joseph, i Gloria A. Moore. Molecular Analysis of Carotenoid Biosynthesis in Plants: Characterizing the Genes Psy, Pds and CrtL-e. United States Department of Agriculture, sierpień 1993. http://dx.doi.org/10.32747/1993.7568744.bard.
Pełny tekst źródłaShaw, John, Arieh Rosner, Thomas Pirone, Benjamin Raccah i Yehezkiel Antignus. The Role of Specific Viral Genes and Gene Products in Potyviral Pathogenicity, Host Range and Aphid Transmission. United States Department of Agriculture, sierpień 1992. http://dx.doi.org/10.32747/1992.7561070.bard.
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