Mammalian Genome

, Volume 1, Supplement 1, pp S79–S96 | Cite as

Mouse chromosome 5

  • Christine A. Kozak
  • Dennis A. Stephenson
Article

Keywords

Mouse Chromosome 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

References

  1. Bach, I., Galcheva-Gargova, Z., Mattei, M.-G., Simon-Chazottes, D., Guénet, J.-L., Cereghini, S., and Yaniv, M.: Cloning of human hepatic nuclear factor 1 (HNF1) and the chromosomal localization of its gene in man and mouse.Genomics 8: 155–164, 1990.Google Scholar
  2. Bailey, D.W.: Genetics of histocompatibility in mice. I. New loci and congenic lines.Immunogenetics 2: 249–256, 1975.Google Scholar
  3. Bailey, D. W. and Bunker, H.P.: Located histocompatibility genes.Mouse News Lett 47: 18, 1972.Google Scholar
  4. Baumann H. and Berger, F.G.: Genetics and evolution of the acute phase proteins in mice.Mol Gen Genet 201: 505–512, 1985.Google Scholar
  5. Beechey, C.V., Kirk, M., and Searle, A.G.: A reciprocal translocation induced in an oocyte and affecting fertility in male mice.Cytogenet Cell Genet 27: 129–146, 1980.Google Scholar
  6. Beechey, C.V., and Searle, A.G.: Thick-tail,Tht. Mouse News Lett 62: 48, 1980.Google Scholar
  7. Beechey, C.V., and Searle, A.G.: Position ofTht on Chr 5.Mouse News Lett 67: 19, 1982.Google Scholar
  8. Beechey, C.V. and Searle, A.G.: Linkage betweenTht and Rb1Wh.Mouse News Lett 72: 106, 1985.Google Scholar
  9. Beechey, C.V. and Searle, A.G.: Crossing over between theRw andW loci.Mouse News Lett 75: 27, 1986.Google Scholar
  10. Beechey, C.V. and Searle, A.G.: Further linkage tests with T44H.Mouse News Lett 80: 159–160, 1988.Google Scholar
  11. Beechey, C.V., Searle, A.G., Burtenshaw, M.D., and Evans, E.P.: T44H: A combined translocation and inversion with visible effect.Mouse News Lett 77: 126, 1987.Google Scholar
  12. Birkenmeier, E.H., Davisson, M.T., Beamer, W.G., Ganschow, R.E., Vogler, C.A., Gwynn, B., Lyford, K.A., Maltais, L.M., and Wawrzyniak, C.J.: Murine mucopolysaccharidosis type VII. Characterization of a mouse with β-glucuronidase deficiency.J Clin Invest 83: 1258–1266 1989.Google Scholar
  13. Blandova, Z.K. and Malashenko, A.M.: Spotted sterile male.Mouse News Lett 73: 23, 1985.Google Scholar
  14. Blatt, C., Mileham, K., Haas, M., Nesbitt, M.N., Harper, M.E., and Simon, M.I.: Chromosomal mapping of the mink cell focus-inducing and xenotropicenv gene family in the mouse.Proc Natl Acad Sci USA 80: 6298–6302, 1983.Google Scholar
  15. Bowes, C., Danciger, M., Kozak, C.A., and Farber, D.B.: Isolation of a candidate cDNA for the gene causing retinal degeneration in therd mouse.Proc Natl Acad Sci USA 86: 9722–9726, 1989.Google Scholar
  16. Bowes, C., Li, T., Danciger, M., Baxter, L.C., Applebury, M.L., and Farber, D.B.: Retinal degeneration in therd mouse is caused by the β-subunit of rod cGMP-phosphodiesterase.Nature 347: 677–680, 1990.Google Scholar
  17. Buéan, M., DeLoria, J., Price, J., Guénet, J.-L., and Solter, D.: The chromosomal localization and molecular analysis of the transgene insertion associated with limb deformity and genomic imprinting.Mouse News Lett 85: 81, 1989.Google Scholar
  18. Cacheiro, N.L.A. and Russell, L.B.: Evidence that linkage group IV as well as linkage group X of the mouse are in chromosome 10.Genet Res Camb 25: 193–195, 1975.Google Scholar
  19. Campbell, G.R., Zimmerman, K., Blank, R.D., Alt, F.W., and D'Eustachio, P.: Chromosomal location of N-myc and L-myc genes in the mouse.Oncogene Res 4: 47–54, 1989.Google Scholar
  20. Carter, T.C.: Position of “luxate” in the third linkage group of the house mouse.Nature 164: 1138, 1949.Google Scholar
  21. Carter, T.C.: The genetics of luxate mice. II. Linkage and independence.J Genet 50: 300–306, 1951.Google Scholar
  22. Carter, T.C., Lyon, M.F., and Phillips, R.J.S.: Gene-tagged chromosome translocations in eleven stocks of mice.J Genet 53: 154–166, 1955.Google Scholar
  23. Cattanach, B.M. and Moseley, H.J.: Crossover suppression in heterozygotes for tobacco mouse metacentric chromosomes.Mouse News Lett 50: 41–42, 1974.Google Scholar
  24. Chabot, B., Stephenson, D.A., Chapman, V.M., Besmer, P., and Bernstein, A.: The proto-oncogene c-kit encoding a transmembrane tyrosine kinase receptor maps to the mouseW locus.Nature 335: 88–89, 1988.Google Scholar
  25. Chapman, V.M., Noell, W.K., and Adler, D.:Alb-1, Mouse News Lett 53: 61, 1975.Google Scholar
  26. Cheng, S.V., Martin, G.R., Nadeau, J.H., Haines, J.L., Bućan, M., Kozak, C.A., MacDonald, M.E., Lockyer, J.L., Ledley, F.D., Woo, S.L.C., Lehrach, H., Gilliam, T.C., and Gusella, J.F.: Synteny on mouse chromosome 5 of homologs for human DNA loci linked to the Huntington disease gene.Genomics 4: 419–426, 1989.Google Scholar
  27. Czosnek, H., Nudel, U., Mayer, Y., Barker, P.E., Pravtcheva, D.D., Ruddle, F.H., and Yaffe, D.: The genes coding for cardiac muscle actin, the skeletal muscle actin, and the cytoplasmic β-actin are located on three different mouse chromosomes.EMBO J 2: 1977–1979, 1983.Google Scholar
  28. Danciger, M., Bowes, C., Kozak, C.A., LaVail, M.M., and Farber, D.B.: Fine mapping of a putativerd cDNA and it co-segregation withrd expression.Invest Ophthalmol Vis Sci 31: 1427–1432, 1990a.Google Scholar
  29. Danciger, M., Farber, D.B., Peyser, M., and Kozak, C.A.: The gene for the β-subunit of retinal transducin (Gnb-1) maps to distal mouse chromosome 4, and related sequences map to mouse chromosomes 5 and 8.Genomics 6: 428–435, 1990b.Google Scholar
  30. Davisson, M.T., Lalley, P.A., Peters, J., Doolittle, D.P., Hillyard, A.L., and Searle, A.G.: Report of the comparative subcommittee for human and mouse homologies.Cytogenet Cell Genet 55: 434–456, 1990.Google Scholar
  31. Davisson, M.T. and Roderick, T.H.: Linkage map.In M.F. Lyon and A.G. Searle (eds.);Genetic Variants and Strains of the Laboratory Mouse, pp. 416–427, Oxford University Press, New York, 1989.Google Scholar
  32. Davisson, M.T., Roderick, T.H., and Doolittle, D.P.: Recombination percentages and chromosomal assignments.In M.F. Lyon and A.G. SearleGenetic Variants and Strains of the Laboratory Mouse, pp. 432–505, Oxford University Press, New York, 1989.Google Scholar
  33. D'Eustachio, P., Ingram, R.S., Tilghman, S.M., and Ruddle, F.H.: Murine α-fetoprotein and albumin: Two evolutionarily linked proteins encoded on the same mouse chromosome.Som Cell Genet 7: 289–294, 1981.Google Scholar
  34. Dickie, M.M.: Buff linkage.Mouse News Lett 32: 46, 1965a.Google Scholar
  35. Dickie, M.M.: Belly-spot allele ofW v.Mouse News Lett 32: 46, 1965b.Google Scholar
  36. Dickie, M.M.: Angora in LG XVII.Mouse News Lett 34: 30, 1966.Google Scholar
  37. Dickie, M.M., and Woolley, G.W.: Linkage studies with the pirouette gene in the mouse.J Hered 37: 335–337, 1949.Google Scholar
  38. Dickinson, M.E., Kobrin, M.S., Silan, C.M., Kingsley, D.M., Justice, M.J., Miller, D.A., Ceci, J.D., Lock, L.F., Lee, A., Buchberg, A.M., Siracusa, L.D., Lyons, K.M., Derynck, R., Hogan, B.L.M., Copeland, N.G., and Jenkins, N.A.: Chromosomal localization of seven members of the murine TFG-β superfamily suggests close linkage to several morphogenetic mutant loci.Genomics 6: 505–520, 1990.Google Scholar
  39. Dizik, M. and Elliott, R.W.: A gene apparently determining the extent of sialylation of lysosomal α-mannosidase in mouse liver.Biochem Genet 15: 31–46, 1977.Google Scholar
  40. Dofuku, R., Tettenborn, U., and Ohno, S.: Further characterization of os mutation of mouse β-glucuruonidase locus.Nature New Biol 234: 259–261, 1971.Google Scholar
  41. Doolittle, D.P., Davisson, M.T., Roderick, T.H., and Hillyard, A.L.: The locus map of the mouse.Mouse Genome 87: 14–27, 1990.Google Scholar
  42. Eicher, E.M. and Lee, B.K.: The NXSM recombinant inbred strains of mice: Genetic profile for 58 loci including theMtv proviral loci.Genetics 125: 431–446, 1990.Google Scholar
  43. Falconer, D.S.: Location of “reeler” in linkage group III in the mouse.Heredity 6: 255–257, 1952.Google Scholar
  44. Fet, V., Dickinson, M.E., and Hogan, B.L.M.: Localization of the mouse gene for secreted phosphoprotein 1 (Spp-1) (2ar, osteopontin, bone sialoprotein 1, 44-kDa bone phosphoprotein, tumor-secreted phosphoprotein) to chromsome 5, closely linked toRic (Rickettsia resistance).Genomics, 5: 375–377, 1989.Google Scholar
  45. Fisher, R.A.: A system of scoring linkage data with special reference to the pied factors in mice.Am Nat 80: 568–578, 1946.Google Scholar
  46. Frankel, W.N.: Backcross data for endogenousMpmv, Pmv, andXmv proviruses.Mouse News Lett 89: 266–270, 1991.Google Scholar
  47. Frankel, W.N., Stoye, J.P., Taylor, B.A., and Coffin, J.M.: Genetic analysis of endogenous xenotropic murine leukemia viruses: Association with two common mouse mutations and the viral restriction locusFv-1.J Virol 63: 1763–1774, 1989a.Google Scholar
  48. Frankel, W.N., Stoye, J.P., Taylor, B.A., and Coffin, J.M.: Genetic identification of endogenous polytropic proviruses by using recombinant inbred mice.J Virol 63: 3810–3821, 1989b.Google Scholar
  49. Frankel, W.N., Stoye, J.P., Taylor, B.A., and Coffin, J.M.: A linkage map of endogenous murine leukemia proviruses.Genetics 124: 221–236, 1990.Google Scholar
  50. Gates, W.H., and Pullig, T.: The linkage of dominant white spotting with hairless in the house mouse,Mus Musculus.Genetics 30: 4, 1945.Google Scholar
  51. Gazdar, A.E., Oie, H., Lalley, P., Moss, W.W., Minna, J.D., and Francke, U.: Identification of mouse chromosomes required for murine leukemia virus reproduction.Cell 11: 949–956, 1977.Google Scholar
  52. Geissler, E.N., Cheng, S.V., Gusella, J.F., and Housman, D.E.: Genetic analysis of the dominant white-spotting (W) region on mouse chromosome 5: Identification of cloned DNA markers nearW.Proc Natl Acad Sci USA 85: 9635–9639, 1988a.Google Scholar
  53. Geissler, E.N., McFarland, E.C., and Russell, E.S.: Analysis of pleiotropism at the dominant white-spotting (W) locus of the house mouse: A description of ten newW alleles.Genetics 97: 337–361, 1981.Google Scholar
  54. Geissler, E.N., Ryan, M.A., and Housman, D.E.: The dominant-white spotting (W) locus of the mouse encodes the c-kit proto-oncogene.Cell 55: 185–192, 1988b.Google Scholar
  55. Gerstein, R.M., Frankel, W.N., Hsieh, C.-L., Durdik, J.M., Rath, S., Coffin, J.M., Nisonoff, A., and Selsing, E.: Isotype switching of an immunoglobulin heavy chain transgene occurs by DNA recombination between different chromosomes.Cell 63: 537–548, 1990.Google Scholar
  56. Goffinet, A.M., and Dernoncourt C.: Location of the reeler gene relative to flanking loci on mouse chromosome 5.Mammalian Genome 1: 100–103, 1991.Google Scholar
  57. Gonzalez, F.J., Liu, S.-Y., Kozak, C.A., and Nebert, D.W.: DecreasedHnf-1 gene expression in mice homozygous for a 1.2-centimorgan deletion on chromosome 7.DNA Cell Biol 9: 771–776, 1990.Google Scholar
  58. Green, E.L.:Genetics and Probability in Animal Breeding Experiments. Oxford University Press, New York, 1981.Google Scholar
  59. Green, M.C.: Catalog of mutant genes and polymorphic loci.In M.F. Lyon and A.G. SearleGenetic Variants and Strains of the Laboratory Mouse, pp. 12–403, Oxford University Press, New York, 1989.Google Scholar
  60. Green, M.C. and Fox S.C.: Three point cross,le, W, Hm.Mouse News Lett 32: 46, 1965.Google Scholar
  61. Green M.C. and Fox, S.C.: Locus order in LG XVII.Mouse News Lett 39: 28, 1968.Google Scholar
  62. Green, M.C. and Woodworth, E.F.: Marcel linkage,Mouse News Lett 37: 34, 1967.Google Scholar
  63. Groves, M.G., Rosenstreich, D.L., Taylor, B.A., and Osterman, J.V.: Host defenses in experimental scrub typhus: Mapping the gene that controls natural resistance in mice.J Immunol 125: 1395–1399, 1980.Google Scholar
  64. Grüneberg, H. and Truslove, G.M.: Two closely linked genes in the mouse.Genet Res 1: 69–90, 1960.Google Scholar
  65. Guénet, J.-L., Marchal, G., Milon, G., Tambourin, P., and Wendling, F.: Fertile dominant spotting in the house mouse.J Hered 70: 9–12, 1979.Google Scholar
  66. Gupta, P., Rosen, J.M., D'Eustachio, P., and Ruddle, F.H.: Localization of the casein gene family to a single mouse chromosome.J Cell Biol 93: 199–204, 1982.Google Scholar
  67. Harper, M.E., Blatt, C., Marks, S., Nesbitt, M.N., and Simon, M.I.: Gene mapping in the mouse by analysis of RFLP segregation in recombinant inbred strains.Cytogenet Cell Genet 37: 488, 1984.Google Scholar
  68. Hartley, J.W., Yetter, R.A., and Morse III, H.C.: A mouse gene on chromosome 5 that restricts infectivity of MCF-type recombinant murine leukemia viruses.J Exp Med 158: 16–24, 1983.Google Scholar
  69. Hayakawa, J. and Nikaido, H.: Two types of liver-specific F antigen are encoded by a locus located on chromosome 5 in mice.Immunogenetics 26: 366–369, 1987.Google Scholar
  70. Hilgers, J. and Arends, J.: A series of recombinant inbred strains between the BALB/cHeA and STS/A mouse strains.Curr Top Microbiol Immunol 122: 31–37, 1985.Google Scholar
  71. Hilkens, J., Colombatti, A., Strand, M., Nichols, E., Ruddle, F.H., and Hilgers, J.: Identification of a mouse gene required for binding of Rauscher MuLV envelope gp70.Som Cell Genet 5: 39–49, 1979.Google Scholar
  72. Hill, R.E., Jones, P.F., Rees, A.R., Sime, C.M., Justice, M.J., Copeland, N.G., Jenkins, N.A., Graham, E., and Davidson D.R.: A new family of mouse homeo box-containing genes: Molecular structure, chromosomal location and developmental expression ofHox-7.1.Genes Develop 3: 26–37, 1989.Google Scholar
  73. Hochgeschwender, U., Sutcliffe, J.G., and Brennan, M.B.: Construction and screening of a genomic library specific for mouse chromosome 16.Proc Natl Acad Sci USA 86: 8482–8486, 1989.Google Scholar
  74. Hoggan, M.D., O'Neill, R.R., and Kozak, C.A.: Nonecotropic murine leukemia viruses in BALB/c and NFS/N mice: Characterization of the BALB/CBxv-1 provirus and the single NFS endogenous xenotrope.J Virol 60: 980–986, 1986.Google Scholar
  75. Holmes, R.S., and van Nie, R.:Bcd-1 is on Chromosome 5.Mouse News Lett 70: 65, 1984.Google Scholar
  76. Hutton, J.J., and Roderick, T.H.: Linkage analyses using biochemical variants in mice. III. Linkage relationships of eleven biochemical markers.Biochem Genet 4: 339–350, 1970.Google Scholar
  77. Ihle, J.N., Joseph, D.R., and Domotor Jr., J.J.: Genetic linkage of C3H/HeJ and BALB/c endogenous ecotropic C-type viruses to phosphoglucomutase-1 on chromosome 5.Science 204: 71–73, 1979.Google Scholar
  78. Ingram, R.S., Scott, R.W., and Tilghman, S. M.: α-Fetoprotein and albumin genes are in tandem in the mouse genome.Proc Natl Acad Sci USA 78: 4694–4698, 1981.Google Scholar
  79. Jeffreys, A.J., Wilson, V., Kelly, R., Taylor, B.A., and Bulfield, G.: Mouse DNA “fingerprints:” analysis of chromosome localization and germ-line stability of hypervariable loci in recombinant inbred strains.Nucl Acids Res 15: 2823–2836, 1987.Google Scholar
  80. Jenkins, N.A., Copeland, N.G., Taylor, B.A., Bedigian, H.G., and Lee, B.K.: Ecotropic murine leukemia virus DNA content of normal and lymphomatous tissues of BxH-2 recombinant inbred mice.J Virol 42: 379–388, 1982.Google Scholar
  81. Joyner, A.L., and Martin, G.R.:En-1 andEn-2, two mouse genes with sequence homology to theDrosophila engrailed gene: Expression during embryogenesis.Genes Develop 1: 29–38, 1987.Google Scholar
  82. Julier, C., De Gouyon, B., Georges, M., Guénet, J.-L., Nakamura, Y., Avner, P., and Lathrop, G.M.: Minisatellite linkage maps in the mouse by cross-hybridization with human probes containing tandem repeats.Proc Natl Acad Sci USA 87: 4585–4589, 1990.Google Scholar
  83. Kioussis, D., Eiferman, F., van de Rijn, P., Gorin, M.B., Ingram, R.S., and Tilghman, S.M.: The evolution of α-fetoprotein and albumin. II. The structures of the α-fetoprotein and albumin genes in the mouse.J Cell Biol 256: 1960–1967, 1981.Google Scholar
  84. Kozak, C.A., Albritton, L.M., and Cunningham, J.: Genetic mapping of a cloned sequence responsible for susceptibility to ecotropic murine leukemia viruses.J Virol 64: 3119–3121, 1990.Google Scholar
  85. Kozak, C.A. and Rowe, W.P.: Genetic mapping of the ecotropic murine leukemia virus-inducing locus of the BALB/c mouse to chromosome 5.Science 204: 69–71, 1979.Google Scholar
  86. Kozak, C.A., and Rowe, W.P.: Genetic mapping of ecotropic murine leukemia virus-inducing loci in six inbred strains.J Exp Med 155: 524–534, 1982.Google Scholar
  87. Krasnewich, D., Kozak, C.A., Nebert, D.W., and Mackenzie, P.I.: Localization of UDP glucuronosyltransferase gene(s) on mouse Chromosome 5.Som Cell Mol Genet 13: 179–182, 1987.Google Scholar
  88. Kuo, C.J., Conley, P.B., Hsieh, C.-L., Francke, U., and Crabtree, G.R.: Molecular cloning, functional expression and chromosomal localization of murine hepatocyte nuclear factor-1.Proc Natl Acad Sci USA 87: 9838–9842, 1990.Google Scholar
  89. Lacombe, C., Tambourin, P., Mattei, M.G., Simon, D., and Guénet, J. L.: The murine erythropoietin gene is localized on chromosome 5.Blood 72: 1440–1442, 1988.Google Scholar
  90. Lalley, P.A. and Diaz, J.A.: Comparative gene mapping in the mouse involving genes assigned to human chromosomes 7 and 20.Cytogenet Cell Genet 37: 514–515, 1984.Google Scholar
  91. Lalley, P.A., Francke, U., and Minna, J.D.: Comparative gene mapping: The linkage relationships of the homologous genes for phosphoglucomutase and peptidase S are conserved in man and mouse.Cytogenet Cell Genet 22: 573–576, 1978.Google Scholar
  92. Lalley, P.A., Naylor, S.L., and Shows, T.B.: Gene assignment of argininoscuccinate lyase to mouse chromosome 5.Cytogenet Cell Genet 25: 178, 1979.Google Scholar
  93. Lalley, P.A., and Shows, T.B.: Lysosomal and microsomal glucoronidase: Genetic variant alters electrophoretic mobility of both hydrolases.Science 185: 442–444, 1974.Google Scholar
  94. Lane, P.W.: Linkage information.Mouse News Lett 32: 47, 1965.Google Scholar
  95. Lane, P.W.: Linkage groups III and XVII in the mouse and the position of the light-ear locus.J Hered 58: 21–24, 1967.Google Scholar
  96. Lane, P.W.: Tilted (tlt).Mouse News Lett 77: 129, 1987.Google Scholar
  97. Lane, P.W. and Green, E.L.: Pale ear and light ear in the house mouse mimic mutations in linkage groups XII and XVII.J Hered 58: 17–20, 1967.Google Scholar
  98. LaVail, M.M. and Sidman, R.L.: C57BL/6J mice with inherited retinal degeneration.Arch Ophthalmol 91: 394–400, 1974.Google Scholar
  99. Little, C.C. and Cloudman, A.M.: The occurrence of a dominant spotting mutation in the house mouse.Proc Natl Acad Sci USA 23: 535–537, 1937.Google Scholar
  100. Love, J.M., Knight, A.M., McAleer, M.A., and Todd, J.A.: Towards construction of a high resolution map of the mouse genome using PCR-analyzed microsatellites.Nucl Acids Res 18: 4123–4130, 1990.Google Scholar
  101. Lunsford, R.D., Jenkins, N.A., Kozak, C.A., Liang, L.-F., Silan, C.M., Copeland, N.G., and Dean, J.: Genomic mapping of murineZp-2 andZp-3, two oocyte-specific loci encoding zona pellucida proteins.Genomics 6: 184–187, 1990.Google Scholar
  102. Lusis, A.J., Chapman, V.M., Wangenstein, R.W., and Paigen, K.:Trans-acting temporal locus within the β-glucuronidase gene complex.Proc Natl Acad Sci USA 80: 4398–4402, 1983.Google Scholar
  103. Lyon, M.F. and Glenister, P.H.: A new allele sach (W sh) at theW-locus and a spontaneous recessive lethal in mice.Genet Res 39: 315–322, 1982.Google Scholar
  104. Lyon, M.F., Glenister, P.H., Loutit, J.F., Evans, E.P., and Peters, J.: A presumed deletion covering theW andPh loci of the mouse.Genet Res Camb 44: 161–168, 1984.Google Scholar
  105. Lyon, M.F. and Kirby, M.C.: Mouse chromosome atlas.Mouse Genome 87: 28–50, 1990.Google Scholar
  106. MacDonald, M.E., Anderson, M.A., Milstein, S., Lockyer, J.L., Hobbs, W.J., Faryniarz, A.G., Kaufman, S., Ledley, F.D., Woo, S.L.C., and Gusella, J.F.: Physical and genetic localization of quinonoid dihydropteridine reductase gene on short arm of chromosome 4.Som Cell Mol Genet 13: 569–574, 1987b.Google Scholar
  107. Martin, G.R., Richman, M., Reinsch, S., Nadeau, J.H., and Joyner, A.: Mapping of the two mouse engrailed-like genes: Close linkage ofEn-1 to dominant hemimelia (Dh) on chromosome 1 and ofEn-2 to hemimelic extra-toes (Hx) on chromosome 5.Genomics 6: 302–308, 1990.Google Scholar
  108. Martinsson, T. and Levan, G.: Localization of the multidrug resistance-associated 170 kDa P-glycoprotein gene to mouse chromosome 5 and to homogeneously staining regions in multidrug-resistant mouse cells by in situ hybridization.Cytogenet Cell Genet 45: 99–101, 1987.Google Scholar
  109. Matossian-Rogers, A., DeGiorgi, L., and Povey, S.: Alloimmune interactions of a lymphoproliferative disease-inducer geneArp and linkage toPep-7.Immunogenetics 18: 639–648, 1983.Google Scholar
  110. McCubrey, J. and Risser, R.: Allelism and linkage studies of murine leukemia virus activation in low leukemic strains of mice.J Exp Med 155: 1233–1238, 1982.Google Scholar
  111. McCubrey, J., horowitz, J.M., and Risser, R.: Structure and expression of endogenous ecotropic murine leukemia viruses in RF/J mice.J Exp Med 156: 1461–1474, 1982.Google Scholar
  112. Meruelo, D., Rossomando, A., Offer, M., Buxbaum, J., and Pellicer, A.: Association of endogenous viral loci with genes encoding murine histocompatibility and lymphocyte differentiation antigens.Proc Natl Acad Sci USA 80: 5032–5036, 1983.Google Scholar
  113. Miller, D.A. and Miller, O.J.: Chromosome mapping in the mouse: Fluorescence banding techniques permit assignment of most genetic linkage groups.Science 178: 949–955, 1972.Google Scholar
  114. Mock, B.A., Nordan, R.P., Justice, M.J., Kozak, C., Jenkins, N.A., Copeland, N.G., Clark, S.C., Wong, G.G., and Rudikoff, S.: The murineIl-6 gene maps to the proximal region of chromosome 5.J Immunol 142: 1372–1376, 1989.Google Scholar
  115. Nash, H.R.: Glucose-6-phosphate dehydrogenase.Mouse News Lett 71: 33, 1984.Google Scholar
  116. Nesbitt, M. and Francke, U.: Analysis of theT(3;?)6Ca andT(14;17)264Ca translocations in the mouse by quinicrine mustard staining.Genetics 69: 517–522, 1971.Google Scholar
  117. Nichols, E.A., Ruddle, F.H., and Petras, M.L.: Linkage of the locus for serum albumin in the house mouse,Mus musculus.Biochem Genet 13: 551–555, 1975.Google Scholar
  118. Nocka, K., Majumber, S., Chabot, B., Ray, P., Cervone, M., Bernstein, A., and Besmer, P.: Expression of c-kit gene products in known cellular targets ofW mutations in normal andW mutant mice—evidence for an impaired c-kit kinase in mutant mice.Genes Develop 3: 816–826, 1989.Google Scholar
  119. Nocka, K., Tan, J.C., Chiu, E., Chu, T.Y., Ray, P., Traktman, P., and Besmer, P.: Molecular bases of dominant negative and loss of function mutations at the murine c-kit/white spotting locus:W 37 W v W 41 andW.EMBO J 9: 1805–1990, 1990.Google Scholar
  120. Paigen, K. and Noell, W.K.: Two linked genes showing a similar timing of expression in mice.Nature 190: 148–150, 1961.Google Scholar
  121. Palmer, R., Gallagher, P.M., Boyko, W.L., and Ganschow, R.E.: Genetic control of levels of murine kidney glucuronidase mRNA in response to androgen.Proc Natl Acad Sci USA 80: 7596–7600, 1983.Google Scholar
  122. Patarca, R., Freeman, G.J., Singh, R.P., Wei, F.-Y., Durfee, T., Blattner, F., Regnier, D.C. Kozak, C.A., Mock, B.A., Morse III, H.C., Jerrells, T.R., and Cantor, H.: Structural and functional studies of the early T lymphocyte activation 1 (Eta-1) gene. Definition of a novel T cell-dependent response associated with genetic resistance to bacterial infection.J Exp Med 170: 145–161, 1989.Google Scholar
  123. Peleg, L., and Nesbitt, M.N.: Genetic control of thymus size in inbred mice.J Hered 75: 126–130, 1984.Google Scholar
  124. Peters, J., Povey, S., Jeremiah, S., and De Giorgi, L.: Linkage relationships of peptidase-7,Pep-7, in the mouse.Biochem Genet 21: 801–807, 1983.Google Scholar
  125. Phillips, R.J.S.: Blebbed.Mouse News Lett 42: 26, 1970.Google Scholar
  126. Racine, R.R. and Langley, C.H.: Genetic analysis of protein variations inMus musculus using two-dimensional electrophoresis.Biochem Genet 18: 185–196, 1980.Google Scholar
  127. Raymond, M., Rose, E., Housman, D.E., and Gros, P.: Physical mapping, amplification and overexpression of the mousemdr gene family in multidrug-resistant cells.Mol Cell Biol 10: 1642–1651, 1990.Google Scholar
  128. Reith, A.D., Rottapel, R., Giddens, E., Brady, C., Forrester, L., and Bernstein, A.:W mutant mice with mild or severe developmental defects contain distinct point mutations in the kinase domain of the c-kit receptor.Genes Develop 4: 390–400, 1990.Google Scholar
  129. Robert, B., Sassoon, D., Jacq, B., Gehring, W., and Buckingham, M.:Hox-7, a mouse homeobox gene with a novel pattern of expression during embryogenesis.EMBO J 8: 91–100, 1989.Google Scholar
  130. Roderick, T.H. and Hawes, N.L.: Two radiation-induced chromosomal in versions in mice (mus musculus).Proc Natl Acad Sci USA 67: 911–987, 1970.Google Scholar
  131. Rosnet, O., Matteï, M.G., Marchetto, S., and Birnbaum, D.: Isolation and chromosomal localization of a novel FMS-like tyrosine kinase gene.Genomics 9: 380–385, 1991.Google Scholar
  132. Rossomando, A. and Meruelo, D.: Viral sequences are associated with many histocompatibility genes.Immunogenetics 23: 233–245, 1986.Google Scholar
  133. Ruddle, N.H., Conta, B.S., Leinwand, L., Kozak, C., Ruddle, F., Besmer, P., and Baltimore, D.: Assignment of the receptor for ecotropic murine leukemia virus to mouse chromosome 5.J Exp Med 148: 451–465, 1978.Google Scholar
  134. Sakaguchi, A.Y., Lalley, P.A., Choudhury, G.G. Martinez, L., Han, E.S., Killary, A.M., Naylor, S.L., and Wang, L.-M.: Mouse melanoma growth stimulatory activity gene (Mgsa) is polymorphic and syntenic with theW, patch, rumpwhite, and recessive spotting loci on chromosome 5.Genomics 5: 629–632, 1989.Google Scholar
  135. Schlagel, C.J., and Ahmed, A.: Evidence for genetic control of microwave-induced augmentation of complement receptor-bearing B lymphoctes.J Immunol 129: 1530–1533, 1982.Google Scholar
  136. Searle, A.G.: Chromosomal variants: Numerical variants and structural rearrangements.In M.F. Lyon and A.G. Searle.Genetic Variants and Strains of the Laboratory Mouse, pp. 582–616, Oxford University Press, New York, 1989.Google Scholar
  137. Searle, A.G. and Truslove, G.M.: A gene triplet in the mouse.Genet Res 15: 227–235, 1970.Google Scholar
  138. Seeley, T.-L. and Holmes, R.S.: Genetics and ontogeny of butyryl CoA dehydrogenase in the mouse and linkage ofBcd-1 withDao-1.Biochem Genet 19: 333–345, 1981.Google Scholar
  139. Seldin, M.F., Martinez, L., Howard, T.A., Naylor, S.L., and Sakaguchi, A.Y.: Localization of mouse melanoma growth stimulatory activity gene (Mgsa) betweenAfp andGus on chromosome 5 using interspecific backcross mice.Cytogenet Cell Genet 54: 68–70, 1990.Google Scholar
  140. Sidman, R.L. and Green, M.C.: Retinal degeneration in the mouse: Location of therd locus in linkage group XVII.J Hered 56: 23–29, 1965.Google Scholar
  141. Silver, J. and Buckler, C.E.: Statistical considerations for linkage analysis using recombinant inbred strains and backrosses.Proc Natl Acad Sci USA 83: 1423–1427, 1986.Google Scholar
  142. Simmons, D.L. and Kasper, C.B.: Genetic polymorphisms for a phenobarbital-inducible cytochrome P-450 map to theCoh locus in mice.J Biol Chem 258: 9585–9588, 1983.Google Scholar
  143. Siracusa, L.D., Jenkins, N.A., and Copeland, N.A.: Identification and applications of repetitive probes for gene mapping in the mouse.Genetics 127: 169–179, 1991.Google Scholar
  144. Snell, G.D.: Inheritance in the house mouse, the linkage relations of short ear, hairless, and naked.Genetics 16: 42–74, 1931.Google Scholar
  145. Southard, J.L.: Soft coat and hemimelic extra toes.Mouse News Lett 45: 29, 1971.Google Scholar
  146. Southard, J.L. and Green, M.C.: Recessive spotting in LG XVII.Mouse News Lett 45: 29, 1971.Google Scholar
  147. Stephenson, D.A., Mercola, M., Anderson, E., Wang, C., Stiles, C.D., Bowen-Pope, D.F., and Chapman, V.M.: Platelet-derived growth factor receptor α-subunit gene (Pdgfra) is deleted in the mouse patch (Ph) mutation.Proc Natl Acad Sci USA 88: 6–10, 1991.Google Scholar
  148. Swank, R.T. and Bailey, D.W.: Recombinant inbred lines, value in the genetic analysis of biochemical variants.Science 181: 1249–1252, 1973.Google Scholar
  149. Swank, R.T., Paigen, K., and Ganschow, R.E.: Genetic control of glucoronidase induction in mice.J Mol Biol 81: 225–243, 1973.Google Scholar
  150. Sweet, H.O.:Hm andHx are not alleles.Mouse News Lett 66: 66, 1982.Google Scholar
  151. Sweet, O., Cook, S. and Davisson, M.T.: NewW alleleW 73J.Mouse News Lett 86: 239, 1990.Google Scholar
  152. Tan, J.C., Nocka, K., Ray, P., Traktman, P., and Besmer, P.: The dominantW 42 spotting phenotype results from a missense mutation in the c-kit receptor kinase.Science 247: 209–247, 1990.Google Scholar
  153. Taylor, B.A. and Rowe, L.: A mouse linkage testing stock possessing multiple copies of the endogenous ecotropic murine leukemia virus genome.Genomics 5: 221–232, 1989.Google Scholar
  154. Taylor, B.A., Rowe, L., and Gibbons, K.: 7s RNA sequences mapped.Mouse News Lett 70: 84, 1984.Google Scholar
  155. Van Snick, J., Cayphas, S., Szikora, J.-P., Renauld, J.-C., Roost, E.V., Boon, T., and Simpson, R.J.: cDNA cloning of murine interleukin-HP1: Homology with human interleukin 6.Eur J Immunol 18: 193, 1988.Google Scholar
  156. Vekemans, M., Taylor, B.A., and Fraser, F.C.: The susceptibility to cortisone-induced cleft palate of recombinant inbred strains of mice: Lack of association with theH-2 haplotype.Genet Res 38: 327–331, 1981.Google Scholar
  157. Wallace, M.E.: A second mutant from the Peru-Wallace stock.Mouse News Lett 80: 153, 1988.Google Scholar
  158. Wallace, M.E. and Ferguson, C.: Linkage for the Peru mutant greycoat.Mouse News Lett 71: 18, 1984.Google Scholar
  159. Wejman, J.C., Taylor, B.A., Jenkins, N.A., and Copeland, N.G.: Endogenous xenotropic murine leukemia virus-related sequences map to chromosomal regions encoding mouse lymphocyte antigens.J Virol 50: 237–247, 1985.Google Scholar
  160. Winchester, G., Mitchison, N.A., and Taylor, B.A.: The structural gene for F liver protein (Flp) maps to chromosome 5 of the mouse.Immunogenetics 26: 356–358, 1987.Google Scholar
  161. Womack, J.E., Hawes, N.L., Soares, E.R., and Roderick, T.H.: Mitochondrial malate dehydrogenase (Mor-1) in the mouse: Linkage to chromosome 5 markers.Biochem Genet 13: 519–525, 1975.Google Scholar
  162. Yagi, M., D'Eustachio, P., Ruddle, F.H., and Koshland, M.E.: J chain encoded by a single gene unlinked to other immunoglobulin structural genes.J Exp Med 155: 647–654, 1982.Google Scholar
  163. Yamazaki, K., Sakakibara, A., Tomita, T., Mukoyama, M., and Kikuchi, T.: Location of gracile axonal dystrophy (gad) on chromosome 5 of the mouse.Jpn J Genet 62: 479–484, 1987.Google Scholar
  164. Yang, F., Bergeron, J.M., Linehan, L.A., Lalley, P.A., Sakaguchi, A.Y., and Bowman, B.H.: Mapping and conservation of the group-specific component gene in mouse.Genomics 7: 509–516, 1990.Google Scholar
  165. Yang-Feng, T.L., Ullrich, A., and Francke, U.: The oncogene c-kit (KIT) is located on human chromosome 4 and mouse chromosome 5.Cytogenet Cell Genet 46: 723, 1987.Google Scholar
  166. Yarden, Y., Kuang, W.-J., Yang-Feng, T., Coussens, L., Munemitso, S., Dull, T.J., Chen, E., Schlessinger, J., Francke, U., and Ullrich, A.: Human proto-oncogene c-kit: A new cell surface receptor tyrosine kinase for an unidentified ligand.EMBO J 6: 3341–3351, 1987.Google Scholar
  167. Zech, L., Evans, E.P., Ford, C.E., and Gropp, A.: Banding patterns in mitotic chromosomes of tobacco mouse.Exp Cell Res 70: 263–268, 1972.Google Scholar

Copyright information

© Springer-Verlag New York Inc. 1991

Authors and Affiliations

  • Christine A. Kozak
    • 1
  • Dennis A. Stephenson
  1. 1.Laboratory of Molecular MicrobiologyNational Institute of Allergy and Infectious Diseases, National Institutes of HealthBethesdaUSA

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