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Original Articles

Molecular Cloning and Characterization of Cotton cDNAs Expressed in Developing Fiber Cells

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Pages 2789-2793 | Received 19 Jun 2001, Accepted 22 Aug 2001, Published online: 22 May 2014

  • 1) Basra, A.S. and Malik, C.P., Development of the cotton fiber. Int. Rev. Cytol., 89, 65-113 (1984).
  • 2) John, M.E. and Crow, L.J., Gene expression in cotton (Gossypium hirsutum L.) fiber: Cloning of the mRNAs. Proc. Natl. Acad. Sci. USA, 89, 5769-5773 (1992).
  • 3) Kawai, M., Aotsuka, S., and Uchimiya, H., Isolation of a cotton CAP gene: homologue of adenylyl cyclase-associated protein highly expressed during fiber elongation. Plant Cell Physiol., 39, 1380-1383 (1998).
  • 4) Pear, J.R., Kawagoe, Y., Schreckengost, W.E., Delmer, D.P., and Stalker, D.M., Higher plants contain homologs of the bacterial CelA genes encoding the catalytic subunit of cellulose synthase. Proc. Natl. Acad. Sci. USA, 93, 12637-12642 (1996).
  • 5) Ma, D.P., Tan, H., Si, Y., Greech, R.G., and Jenkins, J.N., Differential expression of a lipid transfer protein gene in cotton fiber. Biochim. Biophys. Acta, 1257, 81-84 (1995).
  • 6) Ma, D.P., Liu, H.C., Tan, H., Greech, R.G., Jenkins, J.N., and Chang, Y.F., Cloning and characterization of a cotton lipid transfer protein gene specifically expressed in fiber cells. Biochim. Biophys. Acta, 1344, 111-114 (1997).
  • 7) Orford, S.J. and Timmis, J.N., Expression of a lipid transfer protein gene family during cotton fiber development. Biochim. Biophys. Acta, 1483, 275-284 (2000).
  • 8) Song, P. and Allen, D., Identification of a cotton fiber-specific acyl carrier protein cDNA by differential display. Biochim. Biophys. Acta, 1351, 305-312 (1997).
  • 9) Shin, H. and Brown, Jr. R.M., GTPase activity and biochemical characterization of a recombinant cotton fiber annexin. Plant Physiol., 119, 925-934 (1999).
  • 10) Whittaker, D.J. and Triplett, B.A., Gene-specific changes in α-tubulin transcript accumulation in developing cotton fibers. Plant Physiol., 121, 181-188 (1999).
  • 11) Rinehart, J.A., Petersen, M.W., and John, M.E., Tissue-specific and developmental regulation of the cotton gene FbL2A. Plant Physiol., 112, 1331-1341 (1996).
  • 12) Orford, S.J., Carney, T.J., Olesnicky, N.S., and Timmis, J.N., Characterization of a cotton gene expressed late in fiber cell elongation. Theor. Appl. Genet., 98, 757-764 (1999).
  • 13) Liu, J.Y., Zhao, G.R., and Li, J., Molecular engineering on quality improvement of cotton fiber. Acta Botanica Sinica, 42, 991-995 (2000).
  • 14) Wan, C.Y. and Wilkins, T.A., A modified hot borate significantly enhances the yield of high quality RNA from cotton (Gossypium hirstum L.). Anal. Biochem., 223, 7-12 (1994).
  • 15) Liu, J.Y., Hara, C., Umeda, M., Zhao, Y., Okita, T., and Uchimiya, H., Analysis of randomly isolated cDNAs from developing endosperm of rice (Oryza sativa L.): evaluation of expressed sequence tags, and expression levels of mRNAs. Plant Mol. Biol., 29, 685-689 (1995).
  • 16) Potikha, T.S. and Delmer, D.P., cDNA clones for annexin AnnGh1 (accession no. U73746) and AnnGh2 (accession no. U73747) from Gossypium hirsutum (cotton)1 (PGR97-003). Plant Physiol., 113, 305 (1997).
  • 17) Dhindsa, R.S., Beasley, C.A., and Ting, T.P., Osmoregulation in cotton fiber: accumulation of potassium and malate during growth. Plant Physiol., 56, 394-398 (1975).
  • 18) Quintero, F.J., Garciadeblas, B., and Rodriguez-Navarro, A., The SAL1 gene of Arabidopsis, encoding an enzyme with 3'(2'),5'-bisphosphste nucleotidase and inositol polyphosphate 1-phosphatase activities, increases salt tolerance in yeast. Plant Cell, 8, 529-537 (1996).
  • 19) Jaquet, J.-P., Buchala, A.J., and Meier, H., Changes in the non-structural carbohydrate content of cotton (Gossypium spp.) fibers at different stages of development. Planta, 156, 481-486 (1982).
  • 20) Vaughn, K.C. and Turley, R.B., The primary walls of cotton fibers contain an ensheathing pectin layer. Protoplasma, 209, 226-237 (1999).
  • 21) Staehelin, L.A. and Moore, I., The plant Golgi apparatus: structure, functional organization and trafficking mechanisms. Annu. Rev. Plant Physiol. Plant Mol. Biol., 46, 261-288 (1995).
  • 22) Carrol, A.D., Moyen, C., Kesteren, P.V., Tooke, F., Battey, N.H., and Brownlee, C., Ca2+, annexins, and GTP modulate exocytosis from maize root cap protoplasts. Plant Cell, 10, 1267-1276 (1998).
  • 23) Seagull, R.W., A quantative electron microscopic study of changes in microtubule arrays and wall microfibril orientation during in vitro cotton fiber development. J. Cell Sci., 101, 561-571 (1992).
  • 24) Dhugga, K.S., Tiwari, S.C., and Ray, P.M., A reversibly glycosylated polypeptide (RGP1) possibly involved in plant cell wall synthesis: Purification, gene cloning, and trans-Golgi localization. Proc. Natl. Acad. Sci. USA, 94, 7679-7684 (1997).

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