يعرض 1 - 10 نتائج من 101 نتيجة بحث عن '"鯉魚"', وقت الاستعلام: 0.80s تنقيح النتائج
  1. 1
  2. 2
    دورية أكاديمية
  3. 3
    دورية أكاديمية
  4. 4
    دورية أكاديمية
  5. 5
  6. 6
    دورية أكاديمية
  7. 7
    دورية أكاديمية
  8. 8
    دورية أكاديمية

    المؤلفون: 魏良泰, Wei, Liang-Tai

    المساهمون: 黃火鍊, 臺灣大學:分子與細胞生物學研究所

    مصطلحات موضوعية: 鯉魚, intersex, carp, mediator complex

    وصف الملف: 1725534 bytes; application/pdf

    العلاقة: 伍、參考文獻 Baker, B. S. and Ridge, K. A. (1980). Sex and the single cell. I. On the action of major loci affecting sex determination in Drosophila melanogaster. Genetics 94, 383-423. Boggs, R. T., Gregor, P., Idriss, S., Belote, J. M. and McKeown, M. (1987). Regulation of sexual differentiation in D. melanogaster via alternative splicing of RNA from the transformer gene. Cell 50, 739-47. Brower, C. S., Sato, S., Tomomori-Sato, C., Kamura, T., Pause, A., Stearman, R., Klausner, R. D., Malik, S., Lane, W. S., Sorokina, I. et al. (2002). Mammalian mediator subunit mMED8 is an Elongin BC-interacting protein that can assemble with Cul2 and Rbx1 to reconstitute a ubiquitin ligase. Proc Natl Acad Sci U S A 99, 10353-8. Burtis, K. C. and Baker, B. S. (1989). Drosophila doublesex gene controls somatic sexual differentiation by producing alternatively spliced mRNAs encoding related sex-specific polypeptides. Cell 56, 997-1010. Burtis, K. C., Coschigano, K. T., Baker, B. S. and Wensink, P. C. (1991). The doublesex proteins of Drosophila melanogaster bind directly to a sex-specific yolk protein gene enhancer. Embo J 10, 2577-82. Chase, B. A. and Baker, B. S. (1995). A genetic analysis of intersex, a gene regulating sexual differentiation in Drosophila melanogaster females. Genetics 139, 1649-61. Cline, T. W. and Meyer, B. J. (1996). Vive la difference: males vs females in flies vs worms. Annu Rev Genet 30, 637-702. Conaway, J. W., Florens, L., Sato, S., Tomomori-Sato, C., Parmely, T. J., Yao, T., Swanson, S. K., Banks, C. A., Washburn, M. P. and Conaway, R. C. (2005). The mammalian Mediator complex. FEBS Letters 579, 904-908. Coschigano, K. T. and Wensink, P. C. (1993). Sex-specific transcriptional regulation by the male and female doublesex proteins of Drosophila. Genes Dev 7, 42-54. Dynan, W. S. and Tjian, R. (1983). The promoter-specific transcription factor Sp1 binds to upstream sequences in the SV40 early promoter. Cell 35, 79-87. Dynlacht, B. D., Hoey, T. and Tjian, R. (1991). Isolation of coactivators associated with the TATA-binding protein that mediate transcriptional activation Cell 66, 563-576. Erdman, S. E. and Burtis, K. C. (1993). The Drosophila doublesex proteins share a novel zinc finger related DNA binding domain. Embo J 12, 527-35. Erdman, S. E., Chen, H. J. and Burtis, K. C. (1996). Functional and genetic characterization of the oligomerization and DNA binding properties of the Drosophila doublesex proteins. Genetics 144, 1639-52. Garrett-Engele, C. M., Siegal, M. L., Manoli, D. S., Williams, B. C., Li, H. and Baker, B. S. (2002). intersex, a gene required for female sexual development in Drosophila, is expressed in both sexes and functions together with doublesex to regulate terminal differentiation. Development 129, 4661-75. Hays, T. S., Deuring, R., Robertson, B., Prout, M. and Fuller, M. T. (1989). Interacting proteins identified by genetic interactions: a missense mutation in alpha-tubulin fails to complement alleles of the testis-specific beta-tubulin gene of Drosophila melanogaster. Mol Cell Biol 9, 875-84. Kim, Y.-J., Bjorklund, S., Li, Y., Sayre, M. H. and Kornberg, R. D. (1994). A multiprotein mediator of transcriptional activation and its interaction with the C-terminal repeat domain of RNA polymerase II. Cell 77, 599-608. Lee, T. I. and Young, R. A. (2000). Transcription of eukaryotic protein-coding genes. Annual Review of Genetics 34, 77-137. Lemon., B. and Tjian., R. (2000). Orchestrated response: a symphony of transcription factors for gene control Genes Dev. 14, 2551-2569. Li, H. and Baker, B. S. (1998a). Her, a gene required for sexual differentiation in Drosophila, encodes a zinc finger protein with characteristics of ZFY-like proteins and is expressed independently of the sex determination hierarchy. Development 125, 225-35. Li, H. and Baker, B. S. (1998b). hermaphrodite and doublesex function both dependently and independently to control various aspects of sexual differentiation in Drosophila. Development 125, 2641-51. Marin, I. and Baker, B. S. (1998). The evolutionary dynamics of sex determination. Science 281, 1990-4. Meisterernst, M., Roy, A. L., Lieu, H. M. and Roeder, R. G. (1991). Activation of class II gene transcription by regulatory factors is potentiated by a novel activity. Cell 66, 981-993 Myer, V. E. and Young, R. A. (1998). RNA polymerase II holoenzymes and subcomplexes. J Biol Chem 273, 27757-27760. Myers, L. C., Gustafsson, C. M., Bushnell, D. A., Lui, M., Erdjument-Bromage, H., Tempst, P. and Kornberg, R. D. (1998). The Med proteins of yeast and their function through the RNA polymerase II carboxy-terminal domain. Genes Dev. 12, 45-54. Myers, L. C. and Kornberg, R. D. (2000). Mediator of transcriptional regulation. Annual Review of Biochemistry 69, 729-749. Pinto, M. and Lobe, C. G. (1996). Products of the grg (Groucho-related gene) family can dimerize through the amino-terminal Q domain. J Biol Chem 271, 33026-31. Pultz, M. A. and Baker, B. S. (1995). The dual role of hermaphrodite in the Drosophila sex determination regulatory hierarchy. Development 121, 99-111. Pultz, M. A., Carson, G. S. and Baker, B. S. (1994). A genetic analysis of hermaphrodite, a pleiotropic sex determination gene in Drosophila melanogaster. Genetics 136, 195-207. Rachez, C. and Freedman, L. P. (2001). Mediator complexes and transcription. Curr Opin Cell Biol 13, 274-80. Ryner, L. C. and Baker, B. S. (1991). Regulation of doublesex pre-mRNA processing occurs by 3'-splice site activation. Genes Dev 5, 2071-85. Saluja, D., Vassallo, M. F. and Tanese, N. (1998). Distinct subdomains of human TAFII130 are required for interactions with glutamine-rich transcriptional activators. Mol Cell Biol 18, 5734-43. Sato, S., Tomomori-Sato, C., Banks, C. A., Parmely, T. J., Sorokina, I., Brower, C. S., Conaway, R. C. and Conaway, J. W. (2003). A mammalian homolog of Drosophila melanogaster transcriptional coactivator intersex is a subunit of the mammalian Mediator complex. J Biol Chem 278, 49671-4. Sato, S., Tomomori-Sato, C., Parmely, T. J., Florens, L., Zybailov, B., Swanson, S. K., Banks, C. A., Jin, J., Cai, Y., Washburn, M. P. et al. (2004). A set of consensus mammalian mediator subunits identified by multidimensional protein identification technology. Mol Cell 14, 685-91. Seipel, K., Georgiev, O. and Schaffner, W. (1992). Different activation domains stimulate transcription from remote ('enhancer') and proximal ('promoter') positions. Embo J 11, 4961-8. Siegal, M. L. and Baker, B. S. (2005). Functional conservation and divergence of intersex, a gene required for female differentiation in Drosophila melanogaster. Dev Genes Evol 215, 1-12. Stearns, T. and Botstein, D. (1988). Unlinked noncomplementation: isolation of new conditional-lethal mutations in each of the tubulin genes of Saccharomyces cerevisiae. Genetics 119, 249-60. Tanese, N. and Tjian, R. (1993). Coactivators and TAFs: a new class of eukaryotic transcription factors that connect activators to the basal machinery. Cold Spring Harb Symp Quant Biol 58, 179-85. Thompson, C. M., Koleske, A. J., Chao, D. M. and Young, R. A. (1993). A multisubunit complex associated with the RNA polymerase II CTD and TATA-binding protein in yeast. Cell 73, 1361-1375. Van Doren, M., Ellis, H. M. and Posakony, J. W. (1991). The Drosophila extramacrochaetae protein antagonizes sequence-specific DNA binding by daughterless/achaete-scute protein complexes. Develoment 113, 245-255. Verrijzer, C. P. and Tjian, R. (1996). TAFs mediate transcriptional activation and promoter selectivity. Trends in Biochemical Sciences 21, 338-342 Wang, Y., Li, Y., Zeng, W., Zhu, C., Xiao, J., Yuan, W., Wang, Y., Cai, Z., Zhou, J., Liu, M. et al. (2004). IXL, a new subunit of the mammalian Mediator complex, functions as a transcriptional suppressor. Biochem Biophys Res Commun 325, 1330-8. Waterbury, J. A., Jackson, L. L. and Schedl, P. (1999). Analysis of the doublesex female protein in Drosophila melanogaster: role on sexual differentiation and behavior and dependence on intersex. Genetics 152, 1653-67. Younger-Shepherd, S., Vaessin, H., Bier, E., Jan, L. Y. and Jan, Y. N. (1992). deadpan, an essential pan-neural gene encoding an HLH protein, acts as a denominator in Drosophila sex determination. Cell 70, 911-22.; zh-TW; http://ntur.lib.ntu.edu.tw/handle/246246/49913Test; http://ntur.lib.ntu.edu.tw/bitstream/246246/49913/1/ntu-95-R92b43012-1.pdfTest

  9. 9
    دورية أكاديمية

    المؤلفون: 高啟明, Kao, Chi-Min

    المساهمون: 黃火鍊, 臺灣大學:分子與細胞生物學研究所

    وصف الملف: 3113423 bytes; application/pdf

    العلاقة: Aranishi, F., 1999. Lysis of pathogenic bacteria by epidermal cathepsin L and B in the Japanese eel. Fish Physiol. Biochem. 20, 37-41. Azaryan,A.V., Hook, V.Y., 1994. Unique cleavage specificity of 'prohormone thiol protease' related to proenkephalin processing. FEBS Lett. 341, 197-202. Azevedo, C. and Coimbra, A., 1980. Evolution of nucleoli in the course of oogenesis in a viviparous teleist (Xiphophorus helleri). Biol. Cell 38, 43-48. Babin, P.J., Bogerd, J., Kooiman, F.P., Van Marrewijk, W.J., Van der, Horst D.J., 1999. Apolipophorin II/I, apolipoprotein B, vitellogenin, and microsomal triglyceride transfer protein genes are derived from a common ancestor. J. Mol. Evol. 49, 150-160. Banon, P., Brandes, D., Frost, J.K., 1964. Lysosomal enzymes in the rat ovary and endometrium during the estrous cycle. Acta Cytol. 8, 416-425. Battaglia, D.E. and Shapiro, B.M., 1988. Hierarchies of protein cross-linking in the extracellular matrix: involvement of an egg surface transglutaminase in early stages of fertilization envelope assembly. J. Cell Biol. 107, 2447-2454. Beams, H.W. and Kessel, R.G., 1973. Oocyte structure and early vitellogenesis in the trout Salmo gairdneri. Am. J. Anat. 136, 105-122. Brooks, S., Tyler, C.R., Carnevali, O., Coward, K., Sumpter, J.P., 1997. Molecular characterisation of ovarian cathepsin D in the rainbow trout, Oncorhynchus mykiss. Gene 201, 45-54. Carnevali, O., Carletta, R., Cambi, A., Vita, A., Bromage, N., 1999. Yolk formation and degradation during oocyte maturation in seabream Sparus aurata: involvement of two lysosomal proteinases. Biol. Reprod. 60, 140-146. Chan, S.J., San, S.B., McCormick, M.B., Steiner, D.F., 1986. Nucleotide and predicted amino acid sequences of cloned human and mouse preprocathepsin B cDNAs. Proc. Natl. Acad. Sci. USA 33, 7721-7725. Chang, Y.S., Weng, J.W., Li, C.C., Huang, F.L., 1998. Identification of cystatin as a component of carp chorion. Mol. Reprod. Dev. 51, 430-435. Davidson, E.H., 1976. Gene activity in early development; 2nd ed. (Academic Press, New York). Donaldson, E.M. and Hunter, G.A., 1983. Induced final maturation, ovulation and spermiation in cultured fish; in Hoar, Randall, Donaldson, Fish physiology: Reproduction, part B, 4, 351-404 (Academic Press, New York). Esser, R.E., Angelo, R.O., Murphey, M.D., Watts, L.M., Thornburg, L.P., Palmer, J.T., Talhouk, J.W., Smith, R.E., 1994. Cysteine proteinase inhibitors decrease articular cartilage and bone destruction in chronic inflammatory arthritis. Arthritis Rheumatism 37, 236-247. Esser, R.E., Watts, L.M., Angelo, R.A., Thornburg, L.P., Prior, J.J., Palmer, J.T., 1993. The effects of fluoromethyl ketone inhibitors of cathepsin B on adjuvant induced arthritis. J. Rheumatol. 20, 1176-1183. Fabra, M., Cerda, J., 2004. Ovarian cysteine proteinases in the teleost Fundulus heteroclitus: molecular cloning and gene expression during vitellogenesis and oocyte maturation. Mol. Reprod. Dev. 67, 282-294. Falcone, F.H., Tetteh, K.K., Hunt, P., Blaxter, M.L., Loukas, A., Maizels, R.M., 2000. The new subfamily of cathepsin-Z-like protease genes includes Tc-cpz-1, a cysteine protease gene expressed in Toxocara canis adults and infective stage larvae. Exp. Parasitol. 94, 201-207. Fuchs, R., Gassen, H.G., 1989. Nucleotide sequence of human preprocathepsin H, a lysosomal cysteine proteinase. Nucleic Acids Res. 17, 9471. Gazith, J., Schulze, I.T., Gooding, R.H., Womack, F.C., Colowick, S.P., 1968. Multiple forms and subunits of yeast hexokinase. Annals N. Y. Acad. Sci. 151, 307-331. Gething, M.J., Davidson, B.E., 1976. Chorismate mutase/prephenate dehydratase from Escherichia coli K12. Evidence for identical subunits catalysing the two activities. Eur. J. Biochem. 71, 327-336. Goetz, F.W., 1983. Hormonal control of oocyte final maturation and ovulation in fishes; in Hoar, Randall, Donaldson, Fish physiology: Reproduction, part B, 4, 117-170 (Academic Press, New York). Guraya, S.S.,1982. Rescent progress in the structure, origin, composition, and function of cortical granules in animal egg. Int. Rev. Cytol. 78, 257-360. Guraya, S.S., 1986. The cell and molecular biology of fish oogenesis. (Academic Press, New York). Hart, N.H. and Donovan, M., 1983. Fine structure of the chorion and site of sperm entry in the egg of Brachydanio rerio. J. Exp. Zool. 227, 277-296. Hashmi, S., Zhang, J., Oksov, Y., Lustigman, S., 2004. The Caenorhabditis elegans cathepsin Z-like cysteine protease, Ce-CPZ-1, has a multifunctional role during the worms' development. J. Biol. Chem. 279, 6035-6045. Inaoka, T., Bilbe, G., Ishibashi, O., Tezuka, K., Kumegawa, M., Kokubo, T., 1995. Molecular cloning of human cDNA for cathepsin K: novel cysteine proteinase predominantly expressed in bone. Biochem. Biophys. Res. Commun. 206, 89-96. Iwamatsu, T. and Ohta, T., 1976. Breakdown of the cortical alveoli of medaka eggs at the time of fertilization with a particular reference to the possible role of spherical bodies in the alveoli. Wilhelm Roux Arch. Dev. Biol. 180, 297-309. Kalsheker, N.A., Deam, S., Chambers, L., Sreedharan, S., Brocklehurst, K., Lomas, D.A., 1996. The house dust mite allergen Der p1 catalytically inactivates alpha 1-antitrypsin by specific reactive centre loop cleavage: a mechanism that promotes airway inflammation and asthma. Biochem. Biophys. Res. Commun. 221, 59-61. Kelley, G.O., Adkison, M.A., Leutenegger, C.M., Hedrick, R.P., 2003. Myxobolus cerebralis: identification of a cathepsin Z-like protease gene (MyxCP-1) expressed during parasite development in rainbow trout, Oncorhynchus mykiss. Exp. Parasitol. 105, 201-210. Khoo, K.H., 1979. The histochemistry and endocrine control of vitellogenesis in goldfish ovaries. Can. J. Zool. 57, 617-626. Kirschke, H. and Wiederanders, B., 1987. Lysosomal proteinases. Acta Histochem. 82, 2-4. Kudo, S., 1982. Ultrastructure and ultracytochemistry of fertilization envelope formation in the carp egg. Dev. Growth. Differ. 24, 327-329. Krishnamurth, C.G., Rajasekharasetty, M.R., Gopal, Dutt, N.H., 1972. Oocyte of Rusbora daniconius (Ham.); chemical composition and fate of yolk vesicles. Indian J. Exp. Biol. 10, 29-33. Laemmli, U., 1970. Cleavage of structural proteins during the assembly of the head of bacteriophage T4. Nature 227, 680-685. LaFleur, G.J. Jr., Raldua, D., Fabra., M., Carnevali, O., Denslow, N., Wallace, R.A., Cerda, J., 2005. Derivation of major yolk proteins from parental vitellogenins and alternative processing during oocyte maturation in Fundulus heteroclitus. Biol. Reprod. 73, 815-824. Linnevers, C., Smeekens, S.P., Bromme, D., 1997. Human cathepsin W, a putative cysteine protease predominantly expressed in CD8+ T-lymphocytes. FEBS Lett. 405, 253-259. Lustigman, S., Zhang, J., Liu, J., Oksov, Y., Hashmi, S., 2004. RNA interference targeting cathepsin L and Z-like cysteine proteases of Onchocerca volvulus confirmed their essential function during L3 molting. Mol. Biochem. Parasitol. 138, 165-170. Lynn, K.R., Brockbank, W.J., Clevette, N.A., 1980. Multiple forms of the asclepains. Cysteinyl proteases from milkweed. Biochim. Biophys. Acta 612, 119-125. Mason, R.W., Gal, S., Gottmsman, M. M., 1987. The identification of the major excreted protein (MEP) from a transformed mouse fibroblast cell line as a catalytically active precursor form of cathepsin L. Biochem. J. 248, 449-454. McQueney, M.S., Amegadzue, B.Y., Dalessio, K., Hanning, C.R., Jones, C.S., 1997. Autocatalytic activation of human cathepsin K. J. Biol. Chem. 272, 13955. Mommsen, T.P., 2004. Salmon spawning migration and muscle protein metabolism: the August Krogh principle at work. Comp. Biochem. Physiol., B 139, 383-400. Mommsen, T.P., French, C.J., Hochachka, P.W., 1980. Sites and pattern of protein and amino acid utilization during the spawning migration of salmon. Can. J. Zool. 58, 1785-1799. Monaco, P.J., 1980. Cytochemical and ultrastructural studies of oogenesis in a unisexual fish. J. Histochem. Cytochem. 28, 606. Nagler, D.K., Kruger, S., Kellner, A., Ziomek, E., Menard, R., Buhtz, P., Krams, M., Roessner, A., Kellner, U., 2004. Up-regulation of cathepsin X in prostate cancer and prostatic intraepithelial neoplasia. Prostate. 60, 109-119. Nagler, D.K., Menard, R., 1998. Human cathepsin X: a novel cysteine protease of the papain family with a very short proregion and unique insertions. FEBS Lett. 434, 135-139. Nakano, E., 1969. Fishes; in Metz, Monroy, Fertilization. 2, 295-324 (Academic Press, New York). Ng, T.B. and Idler, D.R., 1983. Yolk formation and differentiation in teleost; in Hoar, Randall, Donaldson, Fish physiology. 4: reproduction, part B, 373-404 (Academic Press, New York). Nishihara, T., Wyrick, R.E., Working, PK., Chen, Y.H., Hedrick, J.L, 1986. Isolation and characterization of a lectin from the cortical granules of Xenopus laevis eggs. Biochemistry. 25, 6013-6020. Nosek, J., 1984. Biogenesis of the cortical granules in fish oocyte. Histochem J. 16, 435-437. Opresko, L.K., Karpf, R., 1987. Specific proteolysis regulates fusion between endocytic compartments in Xenopus oocytes. Cell 51, 557-568. Paris, A., Strukelj, B., Pungercar, J., Renko, M., Dolenc, I., Turk, V., 1995. Molecular cloning and sequence analysis of human preprocathepsin C. FEBS Lett. 369, 326-330. Rastogi, R.K., 1968. Occurrence and significance of follicular atresia in the catfish Mystus tengara (Ham.). Acta Zool. 3, 307-319. Rautenberg, P., Schadler, R., Reinwald, E., Risse, H.J., 1982. Study on a proteolytic enzyme from Trypanosoma congolense. Purification and some biochemical properties. Mol. Cell Biochem. 47, 151-159. Retzek, H., Steyrer, E., Sanders, E.J., Nimpf, J., Schneider, W.J., 1992. Molecular cloning and functional characterization of chicken cathepsin D, a key enzyme for yolk formation. DNA Cell Biol. 11, 661-672. Riese, R.J., Wolf, P.R., Bromme, D., Natkin, L.R., Villadangos, J.A., Ploegh, H.L., Chapman, H.A., 1996. Essential role for cathepsin S in MHC class II-associated invariant chain processing and peptide loading. Immunity 4, 357-366. Riggio, M., Scudiero, R., Filosa, S., Parisi, E., 2002. Oestrogen-induced expression of a novel liver-specific aspartic proteinase in Danio rerio (zebrafish). Gene 295, 241-246. Rowan, A.D., Mason, P., Mach, L., Mort, J.S., 1992. Rat procathepsin B. Proteolytic processing to the mature form in vitro. J. Biol. Chem. 267, 15993-15999. Santamaria, I., Velasco, G., Cazorla, M., Fueyo, A., Campo, E., Lopez-Otin, C., 1998a. Cathepsin L2, a novel human cysteine proteinase produced by breast and colorectal carcinomas. Cancer Res. 58, 1624-1630. Santamaria, I., Velasco, G., Pendas, A.M., Fueyo, A., Lopez-Otin, C., 1998b. Cathepsin Z, a novel human cysteine proteinase with a short propeptide domain and a unique chromosomal location. J. Biol. Chem. 273, 16816-16823. Shahi, N.R.P., Mishra, A.P., Singh, B.R., 1979. Studies on the formation of compound yolk in the developing oocytes of an air-breathing fish, Channa punctatus. Cytologia, Tokyo 44, 397-408. Shi, G.P., Munger, J.S., Meara, J.P., Rich, D.H., Chapman, H.A., 1992. Molecular cloning and expression of human alveolar macrophage cathepsin S, an elastinolytic cysteine protease. J. Biol. Chem. 267, 7258-7262. Sivaraman, J., Nagler, D.K., Zhang, R., Menard, R., Cygler, M., 2000. Crystal structure of human procathepsin X: a cysteine protease with the proregion covalently linked to the active site cysteine. Sloane, B.F.and Honn, K.V., 1984. Cysteine proteinases and metastasis. Cancer Metastasis Rev. 3, 249-263. Suzuki, K., Nagahama, Y., Kawauchi, H.,1988. Steroidogenic activities of two distinct salmon gonadotropins. Gen. Comp. Endocrinol. 71, 452-458. Swanson, P., Suzuki, K., Kawauchi, H., Dickhoff, W.W., 1991. Isolation and characterization of two coho salmon gonadotropins, GTH I and GTH II. Biol. Reprod. 44, 29-38. Tahtinen, V., Weber, E., Gunther, D., Ylonen, A., Kalkkinen, N., Olsen, R., Jarvinen, M., Soderstrom, K.O., Rinne, A., Bjorklund, H., Bogwald, J., 2002. Immunolocalization of cysteine proteinases (cathepsins) and cysteine proteinase inhibitors (salarin and salmon kininogen) in Atlantic salmon, Salmo salar. Cell Tissue Res. 310, 213-222. Takahashi, S., 1981. Sexual maturity of the isoza, Chaenogobius isaza. 2. Gross morphology and histology of the ovary. Zool. Mag., Tokyo 90, 54-61. Tezuka, K., Tezuka, Y., Maejima, A., Sato, T., Nemoto, K., Kamioka, H., Hakeda, Y., Kumegawa, M., 1994. Molecular cloning of a possible cysteine proteinase predominantly expressed in osteoclasts. J. Biol. Chem. 269, 1106-1109. Therrien, C., Lachance, P., Sulea, T., Menard. R.,2001. Cathepsins X and B can be differentiated through their respective mono- and dipeptidyl carboxypeptidase activities. Biochemistry 40, 2702-2711. Tisljar, K., Deussing, J., Peters, C., 1999. Cathepsin J, a novel murine cysteine protease of the papain family with a placenta-restricted expression. FEBS Lett. 459, 299-304. Troen, B.R., Gal, S., Gottesman, M.M., 1987. Sequence and expression of the cDNA for MEP (major excreted protein), a transformation-regulated secreted cathepsin. Biochem. J. 246, 731-735. Turk, A., Turk. D., Turk, V., 2000. Lysosomal cysteine proteases: more than scavengers. Biochim. Biophys. Acta. 7; 1477 (1-2) : 98-111. Tyler, C., 1993. Electrophoretic patterns of yolk proteins throughout ovarian development and their relationship to vitellogenin in the rainbow trout, Oncorhynchus mykiss. Comp.Biochem. Physiol. 116B, 321-329. Tyler, C.R.,Sumpter, J.P., Campbell, P.M., 1991. Uptake of vitellogenin into oocytes during early vitellogenic development in the rainbow trout, Oncorhynchus mykiss. J. Fish Biol. 38, 681-689. Uinuk-ool, T.S., Takezaki, N., Kuroda, N., Figueroa, F., Sato, A., Samonte, E., Mayer. W.E., Klein, et J., 2003. Phylogeny of antigen-processing enzymes: cathepsins of a cephalochordate, an agnathan and a bony fish. Scand. J. Immunol. 58, 436-448. Velasco, G., Ferrando, A.A., Puente, X.S., Sanchez, L.M., Lopez-Otin, C., 1994. Human cathepsin O. Molecular cloning from a breast carcinoma, production of the active enzyme in Escherichia coli, and expression analysis in human tissues. J. Biol. Chem. 269, 27136-27142. Vernet, T., Tessier, D.C., Richardson, C., Laliberte, F., Khouri, H.E., Bell, A.W., Storer, A.C., Thomas, D.Y., 1990. Secretion of functional papain precursor from insect cells. Requirement for N-glycosylation of the pro-region. J. Biol. Chem. 265, 16661-16666. Villadangos, J.A., Riese, R.J., Peters, C., Chapman, H.A., Ploegh, H.L., 1997. Degradation of mouse invariant chain: roles of cathepsins S and D and the influence of major histocompatibility complex polymorphism. J. Exp. Med. 186, 549-560. von der Decken, A., 1992. Physiological changes of skeletal muscle by maturation-spawning of non-migrating female Atlantic salmon, Salmo salar. Comp. Biochem. Physiol., B 101, 299-301. Wahli, W., 1988. Evolution and expression of vitellogenin genes. Trends Genet. 4, 227-232. Wall, D.A. and Patel, S. 1987. The intracellular fate of vitellogenin in Xenopus oocytes is determined by its extracellular concentration during endocytosis. J. Biol. Chem. 262, 14779-14789. Wallace, R.A. and Selman, K., 1985. Major protein changes during vitellogenesis and maturation of Fundulus oocyte. Dev. Biol. 110, 492-498. Wang, B., Shi, G.P., Yao, P.M., Li, Z., Chapman, H.A., Bromme, D., 1998. Human cathepsin F. Molecular cloning, functional expression, tissue localization, and enzymatic characterization. J. Biol. Chem. 273, 32000-32008. Wang, S.C.and Huang, F.L., 2002. Carp ovarian cystatin binds and agglutinates spermatozoa via electrostatic interaction. Biol. Reprod. 66, 1318-1327. Wiederanders, B., Bromme, D., Kirschke, H., von Figura, K., Schmidt, B., Peter, C., 1992. Phylogenetic conservation of cysteine proteinases. Clonging and expression of a cDNA coding for human cathepsin S. J. Biol. Chem. 267, 13708-13713. Yamashita, M.and Konagaya, S., 1991. Increase in catheptic activity and appearance of phagocytes in the white muscle of chum salmon during spawning migration. Biomed. Biochem. Acta 50, 565-567. Yoshizaki, N., Moriyama, A., Yoneyawa, S., 1998. Purification and properties of embryonic cysteine proteinase which participates in yolk-lysis of Xenopus laevis. Comp. Biochem. Physiol., B 119, 571-576.; zh-TW; http://ntur.lib.ntu.edu.tw/handle/246246/49906Test; http://ntur.lib.ntu.edu.tw/bitstream/246246/49906/1/ntu-95-D85225006-1.pdfTest

  10. 10
    دورية أكاديمية

    المؤلفون: 李依純, Lee, Yi-Tsun

    المساهمون: 黃火鍊, 臺灣大學:分子與細胞生物學研究所

    مصطلحات موضوعية: 鯉魚, 精子, Septin7, Msap

    وصف الملف: 2337189 bytes; application/pdf

    العلاقة: Adam J. C., Pringle J. R. and Peifer M. (2000) Evidence for functional differentiation among Drosophila septins in cytokinesis and cellularization. Mol Biol Cell 11, 3123-3135. Beites C.L., Xie H., Bowser R. and Trimble W. S. (1999) The septin CDCrel-1 binds syntaxin and inhibits exocytosis. Nat Neurosci. 2, 434-439. Blaser S., Jersch K., Hainmann I., et al. (2003). Isolation of new splice isoforms, characterization and expression analysis of the human septin SEPT8 (KIAA0202). Gene 312, 313-320. Bourne, H. R., Sanders, D. A., and McCormick, F. (1991). The GTPase superfamily: conserved structure and molecular mechanism. Nature 349, 117-127. Burrows J. F., Chanduloy S., McIlhatton M. A., et al. (2003). Altered expression of the septin gene, SEPT9, in ovarian neoplasia. J. Pathol. 201, 581-588. Casamayor A., and Snyder, M. (2003). Molecular dissection of a yeast septin: distinct domains are required for septin interaction, localization, and function. Mol. Cell Biol. 23, 2762-2777. Castillon G. A., Adames N. R., Rosello C. H., et al. (2003) Septins have a dual role in controlling mitotic exit in budding yeast. Curr Biol. 13, 654-658 Chant J., Mischke M., Mitchell E., Herskowitz I. and Pringle J. R. (1995) Role of Bud3p in producing the axial budding pattern of yeast. J Cell Biol. 129, 767-778. Chant J. (1996) Septin scaffolds and cleavage planes in Saccharomyces. Cell 84, 187-190. Dobbelaere J., Gentry M. S., Hallberg R.L. and Barral Y. (2003) Phosphorylation-dependent regulation of septin dynamics during the cell cycle. Dev Cell. 4, 345-357. Faty M., Fink M. and Barral Y. (2002) Septins: a ring to part mother and daughter. Curr Genet. 41, 123-131. Field C. M., al-Awar O., Rosenblatt J., Wong M. L., Alberts B., Mitchison T. J. (1996). A purified Drosophila septin complex forms filaments and exhibits GTPase activity. J Cell Biol. 133, 605-616. Field C. M. and Alberts B. M. (1995) Anillin, a contractile ring protein that cycles from the nucleus to the cell cortex. J Cell Biol. 131, 165-178. Field C. M., Kellogg D. (1999). Sepitns: cytoskeletal polymers or signaling GTPases? Trends Cell Biol. 9, 387-394. Finger F. P. (2002) One ring to bind them. Septins and actin assembly. Dev Cell 3, 761-763. Finger F. P., Kopish K. R. and White J. G. (2003) A role for septins in cellular and axonal migration in C. elegans. Dev. Biol. 261, 220-234. Frazier J. A., Wong M. L., Longtine M. S., et al. (1998). Polymerization of purified yeast septins : evidence that organized filament arrays may not be required for septin function. J Cell Biol. 143, 737-749. Gladfelter A. S., Pringle J. R., and Lew D. J. (2001). The septin cortex at the yeast mother-bud neck. Curr. Opin. Microbiol. 4, 681-689. Hanrahan J. and Snyder M. (2003). Cytoskeletal activation of a checkpoint kinase. Mol. Cell 12, 663-673. Hartwell L. H. (1971). Genetic control of the cell division cycle in yeast. IV. Genes controlling bud emergence and cytokinesis. Exp. Cell Res. 69, 265-276. Hime G. R., Brill J. A. and Fuller M. T. (1996) Assembly of ring canals in the male germ line from structural components of the contractile ring. J Cell Sci. 109, 2779-2788. Hsu S. C., Hazuka C. D., Roth R., Foletti D. L., Heuser J. and Scheller R. H. (1998). Subunit composition, protein interactions, and structures of the mammalian brain sec6/8 complex and septin filaments. Neuron 20, 1111-1122. Irazoqui J. E. and Lew D. J. (2004) Polarity establishment in yeast. J Cell Sci. 117, 2169-2171. Joberty G., Perlungher R. R., Sheffield P. J., et al. (2001). Borg proteins control septin organization and are negatively regulated by Cdc42. Nature Cell Biol. 3, 861-866. Ju T. K. and Huang F. L. (2004). MSAP, the meichroacidin homolog of carp (Cyprinus carpio), differs from the rodent counterpart in germline expression and involves flagellar differentiation. Biol Reprod. 71, 1419-1429. Kartmann B., Roth D. (2001). Novel roles for mammalian septins: form vesicle trafficking to oncogenesis. J Cell Sci. 114, 839-844. Kinoshita, A., Noda M. and Kinoshita, M. (2000). Differential localization of septins in the mouse brain. J Comp Neurol. 428, 223-239. Kinoshita, M., Field C. M., Coughlin M. L., Straight A. F. and Mitchison T. J. (2002). Self- and actin-templated assembly of mammalian septins. Dev Cell 3, 791-802. Kinoshita, M., Kumar S., Mizoguchi A., et al. (1997). Nedd5, a mammalian septin, is a novel cytoskeletal component interacting with actin-based structures. Genes Dev. 11, 1535-1547. Kinoshita, M., Noda M. (2001). Roles of septins in the mammalian cytokinesis machinery. Cell Struct Funct. 26, 667-670. Kinoshita, M. (2003). The septins. Genome Biol. 4, 236.1-236.9. Kinoshita, M. (2003). Assembly of mammalian septins. J Biochem(Tokyo)134, 491-496 Kinoshita, N., Kimura K., Matsumoto N., Watanabe M., Fukaya M. and Ide C. (2004). Mammalian septin Sept2 modulates the activity of GLAST, a glutamate transporter in astrocytes. Genes Cells 9, 1-14. Kissel H., Georgescu M. M., Larisch S., Manova K., Hunnicutt G. R. and Steller H.(2005). The Sept4 septin locus is required for sperm terminal differentiation in mice. Dev Cell. 8, 353-364. Koshelev Y. A., Kiselev S. L. and Georgiev G. P. (2003). Interaction of the S100A4 (Mts1) protein with septins Sept2, Sept6, and Sept7 in vitro. Dokl Biochem Biophys. 391, 195-197. Larisch S., Yi Y., Lotan R., et al. (2000). A novel mitochondrial spetin-like protein, ARTS, mediates apoptosis dependent on its P-loop motif. Nature Cell Biol. 2, 915-921. Longtine M. S., Demarini D. J., Valencik M. L., Al-Awar O. S., Fares H., De Virgilio C. and Pringle J. R. (1996). The septins, roles in cytokinesis and other processes. Curr Opin Cell Biol. 8, 106-119. Longtine M. S., and Bi E. (2003). Regulation of septin organization and function in yeast. Trends Cell Biol. 13, 403-409. Macara I. G., Baldarelli R., Field C. M., et al. (2002). Mammalian septins nomenclature. Mol. Biol. Cell 13, 4111-4113. McIlhatton M. A., Burrows J. F., Donaghy P. G., Chanduloy S., Johnston P. G. amd Russell S. (2001). E. Genomic organization, complex splicing pattern and expression of a human septin gene on chromosome 17q25.3. Oncogene 20, 5930-5939. Mendoza M., Hyman A.A., Glotzer M. (2002). GTP binding induces filament assembly of a recombinant septin. Curr Biol. 12, 1858-1863. Mitchison T. J. and Field C. M. (2002). Cytoskeleton: what dose GTP do for septins? Curr Biol. 12, R788-R790. Moffat J. and Andrews B. (2003). Ac’septin’ a signal: kinase regulation by septins. Dev Cell 5, 528-530. Nguyen T. Q., Sawa H., Okano H., and White J. G. (2000) The C.elegans septin genes, unc-59 and unc-61, are required for normal postembryonic cytokinesis and morphogenesis but have no essential function in embryogenesis. J. Cell Sci. 113, 3825-3837. Sanders S. L. and Herskowitz I. (1996) The BUD4 protein of yeast, required for axial budding, is localized to the mother/BUD neck in a cell cycle-dependent manner. J Cell Biol. 134, 413-427. Sassone-Corsi, P. (2002) Unique chromatin remodeling and transcriptional regulation in spermatogenesis. Science 296, 2176-2178. Sheffield, P. J., Oliver, C.J., Kremer, B.E., Sheng, S., Shao, Z., and Macara, I.G. (2003). Borg/Septin interactions and the assembly of mammalian septin heterodimers, trimers and filaments. J. Biol. Chem. 278, 3483-3488. Versele, M., Gullbrand, B., Shulewitz, M. J., Cid, V. J., Bahmanyar, S., Chen, R. E., Barth, P., Alber, T., and Thorner, J. (2004). Protein-protein interactions governing septin heteropentamer assembly and septin filament organization in Saccharomyces ceresiae. Mol. Biol. Cell. 15, 4568-4583. Xie H., Surka M., Howard J. and Trimble W.S. (1999) Characterization of the mammalian septin H5: distinct patterns of cytoskeletal and membrane association from other septin proteins. Cell Motil Cytoskeleton 43, 52-62. Zhang, J., Kong, C., Xie, H., McPherson, P.S., Grinstein, S. and Trimble, W. S. (1999). Phosphatidylinositol polyphosphate binding to the mammalian septin H5 is modulated by GTP. Curr. Biol. 9, 1458-1467.; zh-TW; http://ntur.lib.ntu.edu.tw/handle/246246/49942Test; http://ntur.lib.ntu.edu.tw/bitstream/246246/49942/1/ntu-94-R92b43021-1.pdfTest