Academic literature on the topic 'Plant morphogenesis'

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Journal articles on the topic "Plant morphogenesis"

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Prusinkiewicz, Przemyslaw, and Anne-Gaëlle Rolland-Lagan. "Modeling plant morphogenesis." Current Opinion in Plant Biology 9, no. 1 (2006): 83–88. http://dx.doi.org/10.1016/j.pbi.2005.11.015.

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Lloyd, Clive. "Plant Morphogenesis: Life on a different plane." Current Biology 5, no. 10 (1995): 1085–87. http://dx.doi.org/10.1016/s0960-9822(95)00216-8.

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Kakkar, R. K., P. K. Nagar, P. S. Ahuja, and V. K. Rai. "Polyamines and Plant Morphogenesis." Biologia plantarum 43, no. 1 (2000): 1–11. http://dx.doi.org/10.1023/a:1026582308902.

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Zhuravlev, Yu N., and A. M. Omelko. "Plant morphogenesis in vitro1." Russian Journal of Plant Physiology 55, no. 5 (2008): 579–96. http://dx.doi.org/10.1134/s1021443708050014.

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Erland, Lauren A. E., and Praveen K. Saxena. "Melatonin in plant morphogenesis." In Vitro Cellular & Developmental Biology - Plant 54, no. 1 (2018): 3–24. http://dx.doi.org/10.1007/s11627-017-9879-5.

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Jackson, David. "Plant morphogenesis: Designing leaves." Current Biology 6, no. 8 (1996): 917–19. http://dx.doi.org/10.1016/s0960-9822(02)00625-5.

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Almeida, Marcílio de, Érika Mendes Graner, Gilvano Ebling Brondani, et al. "Plant morphogenesis: theorical bases." Advances in Forestry Science 2, no. 1 (2015): 13–22. https://doi.org/10.34062/afs.v2i1.2363.

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Comprehension of plant morphogenesis is essential for understanding organogenesis and somatic embryogenesis processes, i.e., stages of tissue and organ development of a multicellular organism, which can lead to partial or total plant regeneration. Morphogenesis comprises the integration of growth and differentiation, mediated by cell division and specialization as a result of a complex spatial and temporal hormonal control, which occurs through regulation and expression of multiple gene systems, correlative action of meristems and their derivatives and environmental variations. However, in pla
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Israeli, Alon, Yogev Burko, Sharona Shleizer-Burko, et al. "Coordinating the morphogenesis-differentiation balance by tweaking the cytokinin-gibberellin equilibrium." PLOS Genetics 17, no. 4 (2021): e1009537. http://dx.doi.org/10.1371/journal.pgen.1009537.

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Morphogenesis and differentiation are important stages in organ development and shape determination. However, how they are balanced and tuned during development is not fully understood. In the compound leaved tomato, an extended morphogenesis phase allows for the initiation of leaflets, resulting in the compound form. Maintaining a prolonged morphogenetic phase in early stages of compound-leaf development in tomato is dependent on delayed activity of several factors that promote differentiation, including the CIN-TCP transcription factor (TF) LA, the MYB TF CLAU and the plant hormone Gibberell
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Kruglova, Natalia, Anna Zinatullina, and Natalia Yegorova. "Histological Approach to the Study of Morphogenesis in Callus Cultures In Vitro: A Review." International Journal of Plant Biology 14, no. 2 (2023): 533–45. http://dx.doi.org/10.3390/ijpb14020042.

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The use of in vitro callus cultures as experimental model systems allows us to get closer to understanding the patterns and features of morphogenesis in intact plants. In this regard, the problem of realizing the morphogenetic potential of callus cells due to their pluri- and totipotency properties is of great interest. To solve this problem, it is important to use the histological approach, which involves studying the structures of developing tissues, organs and organisms in their interactions and relationships. This review article analyzes data devoted to the study of the histological featur
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Shi, Zhixin, David Christian, and Hei Leung. "Interactions Between Spore Morphogenetic Mutations Affect Cell Types, Sporulation, and Pathogenesis in Magnaporthe grisea." Molecular Plant-Microbe Interactions® 11, no. 3 (1998): 199–207. http://dx.doi.org/10.1094/mpmi.1998.11.3.199.

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We have previously defined four single-gene mutations, con1, con2, con4, and con7, that control various stages of spore morphogenesis in the rice blast fungus. To delineate the developmental pathway of spore morphogenesis, we investigated the interactions among these morphogenetic genes by generating strains with double mutations via transformation-mediated gene disruption. Plasmids containing portions of the inactivated CON4 and CON7 genes were introduced into strains harboring single mutation to produce double mutants. Interaction between con1 and con4 resulted in reduced vegetative growth a
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Dissertations / Theses on the topic "Plant morphogenesis"

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COSBITT, NICOLE. "MORPHOGENESIS: BUILDING AS A NATIVE PLANT." University of Cincinnati / OhioLINK, 2007. http://rave.ohiolink.edu/etdc/view?acc_num=ucin1179327038.

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Cosbitt, Nicole. "Morphogenesis building as a native plant /." Cincinnati, Ohio : University of Cincinnati, 2007. http://www.ohiolink.edu/etd/view.cgi?acc%5Fnum=ucin1179327038.

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Thesis (Master of Architecture)--University of Cincinnati, 2007.<br>Title from PDF t.p. (viewed on July 17, 2007.) Keywords: morphogenesis, morphogenetic design, emergence, emergent design. Includes bibliographical references.
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Bilsborough, G. D. "Leaf margin morphogenesis in crucifer plants." Thesis, University of Oxford, 2011. http://ora.ox.ac.uk/objects/uuid:7304164b-d674-4cef-a899-947d8497bd13.

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A key question in developmental biology is how form is generated. The model species Arabidopsis thaliana produces simple leaves with marginal outgrowths termed serrations. Serration development in A. thaliana requires both the transcription factor CUP-SHAPED COTYLEDON2 (CUC2) and the auxin efflux facilitator PIN-FORMED1 (PIN1), which regulates polar auxin transport by forming convergence points (Hay et al., 2006; Nikovics et al., 2006; Scarpella et al., 2006). In Chapter 3, I investigate how CUC2, PIN1 and auxin interact to control serration development. I demonstrate that CUC2 promotes PIN1 c
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Envall, Samuel. "M-systems – A Conformal Approach to Plant Morphogenesis." Thesis, Uppsala University, Department of Mathematics, 2007. http://urn.kb.se/resolve?urn=urn:nbn:se:uu:diva-121048.

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Sparrow, Penelope Amelia Claire. "Plant morphogenesis and genetic transformation of horticultural brassicas." Thesis, Open University, 2002. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.252364.

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Horne, Kirsty L. "Characterisation of morphogenesis mutants in Arabidopsis." Thesis, Durham University, 1998. http://etheses.dur.ac.uk/4892/.

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In this thesis is described the identification and characterisation of two morphogenesis mutants of Arabidopsis thaliana. One, vertically challenged (vch1) exhibits much reduced cellular elongation. The second, altered suspensor fate (asf1) is embryonic- lethal. A thorough phenotypic analysis of both mutants is presented, as are the results of genetic analysis. Vch1 exhibits a severe reduction in cellular elongation throughout the plant, resulting in a dwarfed phenotype. Despite its stunted morphology, vch1 exhibits normal cellular patterning, demonstrating that cell morphogenesis can be uncou
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Oliveri, Hadrien. "On the role of mechanical feedback in plant morphogenesis." Thesis, Montpellier, 2019. http://www.theses.fr/2019MONTS021/document.

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L'acquisition de la forme - ou morphogenèse - chez les systèmes vivants, est largement contrôlée par les gènes. Néanmoins, le lien précis entre, d'une part, les processus chimiques locaux associés aux gènes, et, d'autre part, la géométrie des tissus, n'est pas complètement identifié. Ce lien est vraisemblablement très indirect et médié par des processus mécaniques. Ainsi, il est aujourd'hui admis que les processus chimiques intracellulaires régulent les propriétés mécaniques des cellules seulement localement, et que la forme émerge comme la résolution globale de contraintes mécaniques. Ce para
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許霖慶 and Lam-hing Hui. "Studies on explant regeneration and morphogenesis." Thesis, The University of Hong Kong (Pokfulam, Hong Kong), 1985. http://hub.hku.hk/bib/B3120692X.

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Hui, Lam-hing. "Studies on explant regeneration and morphogenesis /." [Hong Kong : University of Hong Kong], 1985. http://sunzi.lib.hku.hk/hkuto/record.jsp?B1231481X.

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Viner, Neil Graham. "Calcium and phytochrome-controlled leaf unrolling in barley." Thesis, University of Leicester, 1989. http://hdl.handle.net/2381/35362.

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The role of Calcium ions (Ca2+) in the phytochrome-controlled unrolling of 6-d-old etiolated barley leaf sections was evaluated through the manipulation of light treatments, Ca2+ levels and antagonists and agonists of Ca2+ metabolism. The Ca2+-chelator ethyleneglycol-bis-(Baminoethylether) - N, N, N', N', - tetraacetic acid (EGTA) inhibited the response. Ca2+ restored responsivity when supplied within 1h of light treatment. Subsequent escape from responsivity to Ca2+ involved uncoupling of measurable phytochrome from response level. A second Red- light treatment (R) given, with Ca2+, to EGTA-t
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Books on the topic "Plant morphogenesis"

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Žárský, Viktor, and Fatima Cvrčková, eds. Plant Cell Morphogenesis. Humana Press, 2014. http://dx.doi.org/10.1007/978-1-62703-643-6.

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Cvrčková, Fatima, and Viktor Žárský, eds. Plant Cell Morphogenesis. Springer New York, 2019. http://dx.doi.org/10.1007/978-1-4939-9469-4.

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Turing, Alan Mathison. Morphogenesis. North-Holland, 1992.

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Soh, Woong-Young, and Sant S. Bhojwani, eds. Morphogenesis in Plant Tissue Cultures. Springer Netherlands, 1999. http://dx.doi.org/10.1007/978-94-015-9253-6.

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A, Roubelakis-Angelakis Kalliopi, Tran Thanh Van Kiem, and NATO Advanced Study Institute on Plant Morphogenesis: Molecular Approaches (1992 : Crete, Greece), eds. Morphogenesis in plants: Molecular approaches. Plenum Press, 1993.

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Žárský, Viktor, and Fatima Cvrčková. Plant cell morphogenesis: Methods and protocols. Humana Press, 2014.

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G, Lang A., ed. Kletochnye i molekuli͡arnye aspekty morfogeneza rasteniĭ in vitro. Pushchinskiĭ nauch. t͡sentr RAN, 1994.

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Šebánek, Jiří. Experimental morphogenesis and integration of plants. Elsevier, 1991.

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Steeves, Taylor A. Patterns in plant development. 2nd ed. Cambridge University Press, 1989.

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Jean, Roger V. Phyllotaxis: A systemic study of plant pattern morphogenesis. Cambridge University Press, 1994.

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Book chapters on the topic "Plant morphogenesis"

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Mohr, Hans, and Peter Schopfer. "Intracellular Morphogenesis." In Plant Physiology. Springer Berlin Heidelberg, 1995. http://dx.doi.org/10.1007/978-3-642-97570-7_11.

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Endress, Rudolf. "Plant Regeneration: Morphogenesis." In Plant Cell Biotechnology. Springer Berlin Heidelberg, 1994. http://dx.doi.org/10.1007/978-3-662-02996-1_5.

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Taji, Acram, Prakash P. Kumar, and Prakash Lakshmanan. "Morphogenesis/Organogenesis." In In Vitro Plant Breeding. CRC Press, 2024. http://dx.doi.org/10.1201/9781003578529-2.

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Roberts, Jeremy A., and Richard Hooley. "Cellular Differentiation and Morphogenesis." In Plant Growth Regulators. Springer US, 1988. http://dx.doi.org/10.1007/978-1-4615-7592-4_5.

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Galston, Arthur W., and Hector E. Flores. "Polyamines and Plant Morphogenesis." In Biochemistry and Physiology of Polyamines in Plants. CRC Press, 2024. http://dx.doi.org/10.1201/9781003574927-15.

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Routier-Kierzkowska, Anne-Lise, and Adam Runions. "Modeling Plant Morphogenesis: An Introduction." In Plant Biomechanics. Springer International Publishing, 2018. http://dx.doi.org/10.1007/978-3-319-79099-2_8.

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Piqueras, Abel, and Pierre C. Debergh. "Morphogenesis in Micropropagation." In Morphogenesis in Plant Tissue Cultures. Springer Netherlands, 1999. http://dx.doi.org/10.1007/978-94-015-9253-6_15.

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Thorpe, Trevor A. "Morphogenesis and Regeneration." In Plant Cell and Tissue Culture. Springer Netherlands, 1994. http://dx.doi.org/10.1007/978-94-017-2681-8_2.

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van Engelen, Fred A., and Sacco C. De Vries. "Secreted Proteins in Plant Cell Cultures." In Morphogenesis in Plants. Springer US, 1993. http://dx.doi.org/10.1007/978-1-4899-1265-7_10.

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Lee, S. H., and H. T. Cho. "Auxin and Root Hair Morphogenesis." In Plant Cell Monographs. Springer Berlin Heidelberg, 2009. http://dx.doi.org/10.1007/978-3-540-79405-9_16.

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Conference papers on the topic "Plant morphogenesis"

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Salmin, S. A. "Regulation of the early stages of morphogenesis of the root system." In IX Congress of society physiologists of plants of Russia "Plant physiology is the basis for creating plants of the future". Kazan University Press, 2019. http://dx.doi.org/10.26907/978-5-00130-204-9-2019-388.

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Surnina, E. N., A. A. Burenina, T. P. Astafurova, and S. B. Turanov. "The effect of LED lighting on the morphogenesis and metabolism of lettuce plants." In IX Congress of society physiologists of plants of Russia "Plant physiology is the basis for creating plants of the future. Kazan University Press, 2019. http://dx.doi.org/10.26907/978-5-00130-204-9-2019-417.

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Zahadat, Payam, and Ada Diaconescu. "Reactive or Stable: A Plant-inspired Approach for Organisation Morphogenesis." In The 2020 Conference on Artificial Life. MIT Press, 2020. http://dx.doi.org/10.1162/isal_a_00244.

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Sadigova, E. E., and T. H. Garagozov. "Selection of antibiotics suppressing bacterial and mycoplasma contamination of the original explants during in vitro microclonal propagation of grape." In 2nd International Scientific Conference "Plants and Microbes: the Future of Biotechnology". PLAMIC2020 Organizing committee, 2020. http://dx.doi.org/10.28983/plamic2020.211.

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The research was conducted for the selection of antibiotics and determination of their effects on obtaining donor plants in vivo, improvement of morphogenesis and creation of plant collections with qualitative characteristics for in vitro microclonal propagation.
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Skoreiko, Alla, Tetyana Andriychuk, Tamara Safronova, and Roman Bilyk. "Vitamines roles in cultivars - differentaitors for potato wart micropropogation." In Scientific International Symposium "Plant Protection – Achievements and Perspectives". Institute of Genetics, Physiology and Plant Protection, Republic of Moldova, 2023. http://dx.doi.org/10.53040/ppap2023.60.

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The researches results for vitamin complex impact on morphometric indicators on potato plants in culture in vitro proposed in the paper. The vitamin complex in concentration 2,0 and 2,5 ml/l add to Murashige- Skoog medium was the most effective for test tube plant morphogenesis cultivar Chervona ruta. There were determined the internodes increase; roots quantity, plants height, plants length respectfully:5,6 and 5,9 pcs, 7,0 and 7,3 pcs, 80,2 and 92,8 mm, 82,7 and 89,6 mm.
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"Alterations of differential gene expression during the morphogenesis induction in wheat tissue culture (transcriptome analysis)." In Plant Genetics, Genomics, Bioinformatics, and Biotechnology. Institute of Cytology and Genetics, Siberian Branch of the Russian Academy of Sciences, 2019. http://dx.doi.org/10.18699/plantgen2019-029.

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"The wheat leaf epidermal pattern as a model for studying the effect of stress conditions on morphogenesis." In Plant Genetics, Genomics, Bioinformatics, and Biotechnology. Institute of Cytology and Genetics, Siberian Branch of the Russian Academy of Sciences, 2019. http://dx.doi.org/10.18699/plantgen2019-218.

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Letort, Véronique, Patrick Heuret, Paul-Camilo Zalamea, Eric Nicolini, and Philippe de Reffye. "Analysis of Cecropia sciadophylla Morphogenesis Based on a Sink-Source Dynamic Model." In 2009 Third International Symposium on Plant Growth Modeling, Simulation, Visualization and Applications (PMA). IEEE, 2009. http://dx.doi.org/10.1109/pma.2009.62.

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Gauthier, Marion, Romain Barillot, Anne Schneider, et al. "Towards a model of wheat leaf morphogenesis at plant scale driven by organ-level metabolites." In 2018 6th International Symposium on Plant Growth Modeling, Simulation, Visualization and Applications (PMA). IEEE, 2018. http://dx.doi.org/10.1109/pma.2018.8611578.

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Barillot, Romain, Valerie Chevalier, Didier Combes, and Gaetan Louarn. "Variability of pea morphogenesis. An exploratory study based on six pea genotypes with contrasting architectures." In 2012 IEEE 4th International Symposium on Plant Growth Modeling, Simulation, Visualization and Applications (PMA). IEEE, 2012. http://dx.doi.org/10.1109/pma.2012.6524811.

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Reports on the topic "Plant morphogenesis"

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Chamovitz, Daniel, and Xing-Wang Deng. Morphogenesis and Light Signal Transduction in Plants: The p27 Subunit of the COP9-Complex. United States Department of Agriculture, 1997. http://dx.doi.org/10.32747/1997.7580666.bard.

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Plants monitor environmental signals and modulate their growth and development in a manner optimal for the prevailing light conditions. The mechanisms by which plants transduce light signals and integrate them with other environmental and developmental signals to regulate plant pattern development are beginning to be unraveled. A large body of knowledge has accumulated regarding the roles of specific photoreceptors in perceiving light signals, and about the downstream developmental responses responding to light (Batschauer, 1999; Chamovitz and Deng, 1996; Deng and Quail, 1999). Still, little i
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Bednarek, Sebastian, Y. Role of AtCDC48 & the AtCDC48 Regulatory Protein Family, PUX, in Plant Cell Morphogenesis. Office of Scientific and Technical Information (OSTI), 2009. http://dx.doi.org/10.2172/977066.

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Dickman, Martin B., and Oded Yarden. Phosphorylative Transduction of Developmental and Pathogenicity-Related Cues in Sclerotinia Sclerotiorum. United States Department of Agriculture, 2004. http://dx.doi.org/10.32747/2004.7586472.bard.

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Sclerotinia sclerotiorum (Lib.) de Bary is among the world's most successful and omnivorous fungal plant pathogens. Included in the more than 400 species of plants reported as hosts to this fungus are canola, alfalfa, soybean, sunflower, dry bean, and potato. The general inability to develop resistant germplasm with these economically important crops to this pathogen has focused attention on the need for a more detailed examination of the pathogenic determinants involved in disease development. This proposal involved experiments that examined the involvement of protein phosphorylation during m
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Dickman, Martin B., and Oded Yarden. Pathogenicity and Sclerotial Development of Sclerotinia sclerotiorum: Involvement of Oxalic Acid and Chitin Synthesis. United States Department of Agriculture, 1995. http://dx.doi.org/10.32747/1995.7571357.bard.

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Sclerotinia sclerotiorum (Lib.) de Bary is among the world's most successful and omnivorous fungal plant pathogens. Included in the nearly 400 species of plants reported as hosts to this fungus are canola, alfalfa, soybean, sunflower, dry bean and potato. The general inability to develop resistant germplasm with these economically important crops to this pathogen has focused attention on the need for a more detailed examination of the pathogenic determinants involved in disease development. A mechanistic understanding of the successful strategy(ies) used by S. sclerotiorum in colonizing host p
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Sadot, Einat, Christopher Staiger, and Zvi Kam Weizmann. functional genomic screen for new plant cytoskeletal proteins and the determination of their role in actin mediated functions and guard cells regulation. United States Department of Agriculture, 2003. http://dx.doi.org/10.32747/2003.7587725.bard.

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The original objectives of the approved proposal were: 1. To construct a YFP fused Arabidopsis cDNA library in a mammalian expression vector. 2. To infect the library into a host fibroblast cell line and to screen for new cytoskeletal associated proteins using an automated microscope. 3. Isolate the new genes. 4. Characterize their role in plants. The project was approved as a feasibility study to allow proof of concept that would entail building the YFP library and picking up a couple of positive clones using the fluorescent screen. We report here on the construction of the YFP library, the d
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Dickman, Martin B., and Oded Yarden. Regulation of Early Events in Hyphal Elongation, Branching and Differentiation of Filamentous Fungi. United States Department of Agriculture, 2000. http://dx.doi.org/10.32747/2000.7580674.bard.

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In filamentous fungi, hyphal elongation, branching and morphogenesis are in many cases the key to successful saprophytic and pathogenic fungal proliferation. The understanding of the fungal morphogenetic response to environmental cues is in its infancy. Studies concerning the regulation of fungal growth and development (some of which have been obtained by the participating collaborators in this project) point to the fact that ser/thr protein kinases and phosphatases are (i) involved in the regulation of such processes and (ii) share common structural and functional features between saprophytes
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Eshed-Williams, Leor, and Daniel Zilberman. Genetic and cellular networks regulating cell fate at the shoot apical meristem. United States Department of Agriculture, 2014. http://dx.doi.org/10.32747/2014.7699862.bard.

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The shoot apical meristem establishes plant architecture by continuously producing new lateral organs such as leaves, axillary meristems and flowers throughout the plant life cycle. This unique capacity is achieved by a group of self-renewing pluripotent stem cells that give rise to founder cells, which can differentiate into multiple cell and tissue types in response to environmental and developmental cues. Cell fate specification at the shoot apical meristem is programmed primarily by transcription factors acting in a complex gene regulatory network. In this project we proposed to provide si
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Dickman, Martin B., and Oded Yarden. Modulation of the Redox Climate and Phosphatase Signaling in a Necrotroph: an Axis for Inter- and Intra-cellular Communication that Regulates Development and Pathogenicity. United States Department of Agriculture, 2011. http://dx.doi.org/10.32747/2011.7697112.bard.

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The long-term goals of our research are to understand the regulation of sclerotial development and pathogenicity in S. sclerotiorum. The focus in this project is on the elucidation of the signaling events and environmental cues that contribute to broad pathogenic success of S. sclerotiorum. In this proposal, we have taken advantage of the recent conceptual (ROS/PPs signaling) and technical (genome sequence availability and gene inactivation possibilities) developments to address the following questions, as appear in our research goals stated below, specifically concerning the involvement of RE
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Ori, Naomi, and Mark Estelle. Role of GOBLET and Auxin in Controlling Organ Development and Patterning. United States Department of Agriculture, 2012. http://dx.doi.org/10.32747/2012.7697122.bard.

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The size and shape of plant leaves are extremely diverse within and among species, and are also sensitive to growth conditions. Compound leaves, such as those of tomato, maintain morphogenetic activity during early stages of their development, enabling them to elaborate lateral appendages such as leaflets. The aim of the research project was to understand the interaction between the plant hormone auxin, the putative auxin response inhibitor ENTIRE (E, SlIAA9) and the NAM/CUC transcription factor GOBLET (GOB) in compound-leaf development in tomato (Solanum lycopersicum). The specific aims of th
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