Libros sobre el tema "Transcriptional Regulation"

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1

L, McKnight Steven y Yamamoto Keith R, eds. Transcriptional regulation. Plainview, N.Y: Cold Spring Harbor Laboratory Press, 1992.

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2

Vancura, Ales, ed. Transcriptional Regulation. New York, NY: Springer New York, 2012. http://dx.doi.org/10.1007/978-1-61779-376-9.

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3

MUKHTAR, SHAHID, ed. Modeling Transcriptional Regulation. New York, NY: Springer US, 2021. http://dx.doi.org/10.1007/978-1-0716-1534-8.

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4

Transcriptional regulation: Methods and protocols. New York: Humana Press, 2012.

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5

Dassi, Erik, ed. Post-Transcriptional Gene Regulation. New York, NY: Springer US, 2022. http://dx.doi.org/10.1007/978-1-0716-1851-6.

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6

Wilusz, Jeffrey, ed. Post-Transcriptional Gene Regulation. Totowa, NJ: Humana Press, 2008. http://dx.doi.org/10.1007/978-1-59745-033-1.

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7

Dassi, Erik, ed. Post-Transcriptional Gene Regulation. New York, NY: Springer New York, 2016. http://dx.doi.org/10.1007/978-1-4939-3067-8.

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8

Jeffrey, Wilusz, ed. Post-transcriptional gene regulation. Totowa, N.J: Humana Press, 2008.

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9

Courey, Albert J. Mechanisms in transcriptional regulation. Malden, MA: Blackwell Pub., 2008.

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10

Wajapeyee, Narendra y Romi Gupta, eds. Eukaryotic Transcriptional and Post-Transcriptional Gene Expression Regulation. New York, NY: Springer New York, 2017. http://dx.doi.org/10.1007/978-1-4939-6518-2.

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11

Dudek, Serena M., ed. Transcriptional Regulation by Neuronal Activity. Boston, MA: Springer US, 2008. http://dx.doi.org/10.1007/978-0-387-73609-9.

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12

NATO/CEC, Advanced Research Workshop on "Post-Transcriptional Control of Gene Expression" (1990 Goslar Germany). Post-transcriptional control of gene expression. Berlin: Springer-Verlag, 1990.

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13

1958-, Resnekov Orna y Gabain Alexander von 1950-, eds. Post-transcriptional control of gene expression. Berlin: Springer-Verlag, 1996.

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14

Volk, Talila y Karen Artzt, eds. Post-Transcriptional Regulation by STAR Proteins. Boston, MA: Springer US, 2010. http://dx.doi.org/10.1007/978-1-4419-7005-3.

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15

Menon, PhD, K. M. J. y Aaron Goldstrohm, PhD, eds. Post-transcriptional Mechanisms in Endocrine Regulation. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-25124-0.

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16

Babu, M. Madan. Bacterial gene regulation and transcriptional networks. Norfolk, UK: Caister Academic Press, 2013.

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17

B, Harford Joe y Morris David R. 1939-, eds. mRNA metabolism & post-transcriptional gene regulation. New York: Wiley-Liss, 1997.

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18

Sen, Ganes C. Transcriptional regulation in the interferon system. Austin: Landes Bioscience, 1997.

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19

Hime, Gary y Helen Abud, eds. Transcriptional and Translational Regulation of Stem Cells. Dordrecht: Springer Netherlands, 2013. http://dx.doi.org/10.1007/978-94-007-6621-1.

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20

Clark, Andrew Richard. Transcriptional regulation of the human insulin gene. Birmingham: University ofBirmingham, 1992.

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21

1938-, Yaniv Moshe y Ghysdael J, eds. Oncogenes as transcriptional regulators. Basel: Birkhäuser Verlag, 1997.

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22

Lawrence, Privalsky Martin, ed. Transcriptional corepressors: Mediators of eukaryotic gene repression. Berlin: Springer, 2001.

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23

L, Peterson Craig y Smale Stephen T, eds. Transcriptional regulation in eukaryotes: Concepts, strategies, and techniques. 2a ed. Cold Spring Harbor, N.Y: Cold Spring Harbor Laboratory Press, 2009.

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24

T, Smale Stephen y NetLibrary Inc, eds. Transcriptional regulation in eukaryotes: Concepts, strategies, and techniques. Cold Spring Harbor, NY: Cold Spring Harbor Laboratory Press, 2000.

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25

Brubacher, Mary Grace. Transcriptional regulation of the human alpha-antichymotrypsin gene. Ottawa: National Library of Canada = Bibliothèque nationale du Canada, 1992.

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26

Wade, Joseph Thomas. Transcriptional regulation in the Escherichia Coli melibiose eperon. Birmingham: University of Birmingham, 2001.

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27

Kitaygorodsky, Alexander. Post-transcriptional gene expression regulation in developmental disorders. [New York, N.Y.?]: [publisher not identified], 2021.

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28

Eric, Verdin, ed. Histone deacetylases: Transcriptional regulation and other cellular functions. Totowa, N.J: Humana Press, 2006.

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29

Leung, Derek K. M. Transcriptional regulation of E-cadherin in Drosophila melanogaster. Ottawa: National Library of Canada, 2001.

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30

Witold, Filipowicz y Hohn Thomas 1938-, eds. Post-transcriptional control of gene expression in plants. Dordrecht: Kluwer Academic Publishers, 1996.

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31

Transcriptional Regulation. Cold Spring Harbor Laboratory Pr, 1993.

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32

Ghedira, Kais, ed. Transcriptional and Post-transcriptional Regulation. InTech, 2018. http://dx.doi.org/10.5772/intechopen.72023.

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33

Vancura, Ales. Transcriptional Regulation: Methods and Protocols. Humana Press, 2016.

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34

Transcriptional and Post-Transcriptional Regulation [Working Title]. IntechOpen, 2019. http://dx.doi.org/10.5772/intechopen.73764.

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35

Dassi, Erik. Post-Transcriptional Gene Regulation. Springer, 2022.

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36

Dassi, Erik. Post-Transcriptional Gene Regulation. Springer New York, 2015.

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37

Post-Transcriptional Gene Regulation. Humana Press, 2007.

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38

Mechanisms in Transcriptional Regulation. Wiley-Blackwell, 2008.

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39

Courey, Albert J. Mechanisms in Transcriptional Regulation. Wiley & Sons, Incorporated, John, 2009.

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40

Dassi, Erik. Post-Transcriptional Gene Regulation. Springer New York, 2016.

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41

Dassi, Erik. Post-Transcriptional Gene Regulation. Springer, 2021.

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42

Wilusz, Jeffrey. Post-Transcriptional Gene Regulation. Humana Press, 2010.

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43

Albensi, Benedict C. y Jelena Djordjevic, eds. The Transcriptional Regulation of Memory. Frontiers Media SA, 2016. http://dx.doi.org/10.3389/978-2-88919-865-8.

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44

Luis de la Torre Ubieta. Transcriptional regulation of neuronal polarity. 2010.

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45

Yang, Jin, Pei Han, Wei Li y Ching-Pin Chang. Epigenetics and post-transcriptional regulation of cardiovascular development. Editado por José Maria Pérez-Pomares, Robert G. Kelly, Maurice van den Hoff, José Luis de la Pompa, David Sedmera, Cristina Basso y Deborah Henderson. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780198757269.003.0032.

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Cardiac organogenesis requires the control of gene expression at distinct developmental windows in order to organize morphogenetic steps in the correct sequence for heart development. This is facilitated by concerted regulation at three levels: chromatin, transcription, and post-transcriptional modifications. Epigenetic regulation at the chromatin level changes the chromatin scaffold of DNA to regulate accessibility of the DNA sequence to transcription factors for genetic activation or repression. At the genome, long non-coding RNAs work with epigenetic factors to alter the chromatin scaffold or form DNA-RNA complexes at specific genomic loci to control the transcription of genetic information. After RNA transcription, the expression of genetic information can be further modified by microRNAs. Each layer of gene regulation requires the participation of many factors, with their combinatorial interactions providing variations of genetic expression at distinct pathophysiological phases of the heart. The major functions of chromatin remodellers and non-coding RNAs are discussed.
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46

Post-transcriptional control of gene expression. Berlin: Springer, 1996.

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47

Gabain, Alexander von y Orna Resnekov. Post-Transcriptional Control of Gene Expression. Springer London, Limited, 2013.

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48

Gabain, Alexander von y Orna Resnekov. Post-Transcriptional Control of Gene Expression. Springer London, Limited, 2011.

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49

Fulcoli, F. Gabriella y Antonio Baldini. Transcriptional regulation of early cardiovascular development. Editado por José Maria Pérez-Pomares, Robert G. Kelly, Maurice van den Hoff, José Luis de la Pompa, David Sedmera, Cristina Basso y Deborah Henderson. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780198757269.003.0006.

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The two major cardiac cell lineages of the vertebrate heart, the first and second cardiac fields (FHF and SHF), have different developmental ontogeny and thus different transcription programs. Most remarkably, the fate of cardiac progenitors (CPs) of the FHF is restricted to cardiomyocyte differentiation. In contrast, SHF CPs, which are specified independently, are maintained in a multipotent state for a relatively longer developmental time and can differentiate into multiple cell types. The identity of the transcription factors and regulatory elements involved in progenitor cell programming and fate are only now beginning to emerge. Apparent inconsistencies between studies based on tissue culture and in vivo embryonic studies confirm that the ontogeny of cardiac progenitors is strongly driven or affected by regionalization, and thus by the signals that they receive in different regions. This chapter summarizes current knowledge about transcription factors and mechanisms driving CP ontogeny, with special focus on SHF development.
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50

Jiang, Chunjie, Shengli Li, Shibiao Wan, Peng Hu y Yongsheng Kevin Li, eds. Transcriptional Regulation in Metabolism and Immunology. Frontiers Media SA, 2022. http://dx.doi.org/10.3389/978-2-88974-573-9.

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