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Abstract 


Previously, we found that anti-DDDED antibodies strongly inhibited in vivo nuclear transport of nuclear proteins and that these antibodies recognized a protein of 69 kD (p69) from rat liver nuclear envelopes that showed specific binding activities to the nuclear location sequences (NLSs) of nucleoplasmin and SV-40 large T-antigen. Here we identified this protein as the 70-kD heat shock cognate protein (hsc70) based on its mass, isoelectric point, cellular localization, and partial amino acid sequences. Competition studies indicated that the recombinant hsc70 expressed in Escherichia coli binds to transport competent SV-40 T-antigen NLS more strongly than to the point mutated transport incompetent mutant NLS. To investigate the possible involvement of hsc70 in nuclear transport, we examined the effect of anti-hsc70 rabbit antibodies on the nuclear accumulation of karyophilic proteins. When injected into the cytoplasm of tissue culture cells, anti-hsc70 strongly inhibited the nuclear import of nucleoplasmin, SV-40 T-antigen NLS bearing BSA and histone H1. In contrast, anti-hsc70 IgG did not prevent the diffusion of lysozyme or 17.4-kD FITC-dextran into the nuclei. After injection of these antibodies, cells continued RNA synthesis and were viable. These results indicate that hsc70 interacts with NLS-containing proteins in the cytoplasm before their nuclear import.

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J Cell Biol. 1992 Dec 1; 119(5): 1047–1061.
PMCID: PMC2289726
PMID: 1332978

Antibodies against 70-kD heat shock cognate protein inhibit mediated nuclear import of karyophilic proteins

Abstract

Previously, we found that anti-DDDED antibodies strongly inhibited in vivo nuclear transport of nuclear proteins and that these antibodies recognized a protein of 69 kD (p69) from rat liver nuclear envelopes that showed specific binding activities to the nuclear location sequences (NLSs) of nucleoplasmin and SV-40 large T-antigen. Here we identified this protein as the 70-kD heat shock cognate protein (hsc70) based on its mass, isoelectric point, cellular localization, and partial amino acid sequences. Competition studies indicated that the recombinant hsc70 expressed in Escherichia coli binds to transport competent SV-40 T-antigen NLS more strongly than to the point mutated transport incompetent mutant NLS. To investigate the possible involvement of hsc70 in nuclear transport, we examined the effect of anti-hsc70 rabbit antibodies on the nuclear accumulation of karyophilic proteins. When injected into the cytoplasm of tissue culture cells, anti-hsc70 strongly inhibited the nuclear import of nucleoplasmin, SV- 40 T-antigen NLS bearing BSA and histone H1. In contrast, anti-hsc70 IgG did not prevent the diffusion of lysozyme or 17.4-kD FITC-dextran into the nuclei. After injection of these antibodies, cells continued RNA synthesis and were viable. These results indicate that hsc70 interacts with NLS-containing proteins in the cytoplasm before their nuclear import.

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Selected References

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  • Adam SA, Gerace L. Cytosolic proteins that specifically bind nuclear location signals are receptors for nuclear import. Cell. 1991 Sep 6;66(5):837–847. [Abstract] [Google Scholar]
  • Adam SA, Lobl TJ, Mitchell MA, Gerace L. Identification of specific binding proteins for a nuclear location sequence. Nature. 1989 Jan 19;337(6204):276–279. [Abstract] [Google Scholar]
  • Akey CW, Goldfarb DS. Protein import through the nuclear pore complex is a multistep process. J Cell Biol. 1989 Sep;109(3):971–982. [Europe PMC free article] [Abstract] [Google Scholar]
  • Beckmann RP, Mizzen LE, Welch WJ. Interaction of Hsp 70 with newly synthesized proteins: implications for protein folding and assembly. Science. 1990 May 18;248(4957):850–854. [Abstract] [Google Scholar]
  • Benditt JO, Meyer C, Fasold H, Barnard FC, Riedel N. Interaction of a nuclear location signal with isolated nuclear envelopes and identification of signal-binding proteins by photoaffinity labeling. Proc Natl Acad Sci U S A. 1989 Dec;86(23):9327–9331. [Europe PMC free article] [Abstract] [Google Scholar]
  • Blobel G, Potter VR. Nuclei from rat liver: isolation method that combines purity with high yield. Science. 1966 Dec 30;154(3757):1662–1665. [Abstract] [Google Scholar]
  • Borer RA, Lehner CF, Eppenberger HM, Nigg EA. Major nucleolar proteins shuttle between nucleus and cytoplasm. Cell. 1989 Feb 10;56(3):379–390. [Abstract] [Google Scholar]
  • Breeuwer M, Goldfarb DS. Facilitated nuclear transport of histone H1 and other small nucleophilic proteins. Cell. 1990 Mar 23;60(6):999–1008. [Abstract] [Google Scholar]
  • Chappell TG, Welch WJ, Schlossman DM, Palter KB, Schlesinger MJ, Rothman JE. Uncoating ATPase is a member of the 70 kilodalton family of stress proteins. Cell. 1986 Apr 11;45(1):3–13. [Abstract] [Google Scholar]
  • Chiang HL, Terlecky SR, Plant CP, Dice JF. A role for a 70-kilodalton heat shock protein in lysosomal degradation of intracellular proteins. Science. 1989 Oct 20;246(4928):382–385. [Abstract] [Google Scholar]
  • Chirico WJ, Waters MG, Blobel G. 70K heat shock related proteins stimulate protein translocation into microsomes. Nature. 1988 Apr 28;332(6167):805–810. [Abstract] [Google Scholar]
  • DeLuca-Flaherty C, McKay DB, Parham P, Hill BL. Uncoating protein (hsc70) binds a conformationally labile domain of clathrin light chain LCa to stimulate ATP hydrolysis. Cell. 1990 Sep 7;62(5):875–887. [Abstract] [Google Scholar]
  • Deshaies RJ, Koch BD, Werner-Washburne M, Craig EA, Schekman R. A subfamily of stress proteins facilitates translocation of secretory and mitochondrial precursor polypeptides. Nature. 1988 Apr 28;332(6167):800–805. [Abstract] [Google Scholar]
  • Dingwall C, Laskey RA. Protein import into the cell nucleus. Annu Rev Cell Biol. 1986;2:367–390. [Abstract] [Google Scholar]
  • Dworetzky SI, Lanford RE, Feldherr CM. The effects of variations in the number and sequence of targeting signals on nuclear uptake. J Cell Biol. 1988 Oct;107(4):1279–1287. [Europe PMC free article] [Abstract] [Google Scholar]
  • Dwyer N, Blobel G. A modified procedure for the isolation of a pore complex-lamina fraction from rat liver nuclei. J Cell Biol. 1976 Sep;70(3):581–591. [Europe PMC free article] [Abstract] [Google Scholar]
  • Ellis RJ, van der Vies SM. Molecular chaperones. Annu Rev Biochem. 1991;60:321–347. [Abstract] [Google Scholar]
  • Featherstone C, Darby MK, Gerace L. A monoclonal antibody against the nuclear pore complex inhibits nucleocytoplasmic transport of protein and RNA in vivo. J Cell Biol. 1988 Oct;107(4):1289–1297. [Europe PMC free article] [Abstract] [Google Scholar]
  • Feldherr CM, Kallenbach E, Schultz N. Movement of a karyophilic protein through the nuclear pores of oocytes. J Cell Biol. 1984 Dec;99(6):2216–2222. [Europe PMC free article] [Abstract] [Google Scholar]
  • Finlay DR, Forbes DJ. Reconstitution of biochemically altered nuclear pores: transport can be eliminated and restored. Cell. 1990 Jan 12;60(1):17–29. [Abstract] [Google Scholar]
  • Finlay DR, Newmeyer DD, Price TM, Forbes DJ. Inhibition of in vitro nuclear transport by a lectin that binds to nuclear pores. J Cell Biol. 1987 Feb;104(2):189–200. [Europe PMC free article] [Abstract] [Google Scholar]
  • Flynn GC, Pohl J, Flocco MT, Rothman JE. Peptide-binding specificity of the molecular chaperone BiP. Nature. 1991 Oct 24;353(6346):726–730. [Abstract] [Google Scholar]
  • Garcia-Bustos J, Heitman J, Hall MN. Nuclear protein localization. Biochim Biophys Acta. 1991 Mar 7;1071(1):83–101. [Abstract] [Google Scholar]
  • Gerace L, Burke B. Functional organization of the nuclear envelope. Annu Rev Cell Biol. 1988;4:335–374. [Abstract] [Google Scholar]
  • Goldfarb DS, Gariépy J, Schoolnik G, Kornberg RD. Synthetic peptides as nuclear localization signals. Nature. 1986 Aug 14;322(6080):641–644. [Abstract] [Google Scholar]
  • Imamoto-Sonobe N, Yoneda Y, Iwamoto R, Sugawa H, Uchida T. ATP-dependent association of nuclear proteins with isolated rat liver nuclei. Proc Natl Acad Sci U S A. 1988 May;85(10):3426–3430. [Europe PMC free article] [Abstract] [Google Scholar]
  • Imamoto-Sonobe N, Matsuoka Y, Semba T, Okada Y, Uchida T, Yoneda Y. A protein recognized by antibodies to Asp-Asp-Asp-Glu-Asp shows specific binding activity to heterogeneous nuclear transport signals. J Biol Chem. 1990 Sep 25;265(27):16504–16508. [Abstract] [Google Scholar]
  • Kalderon D, Richardson WD, Markham AF, Smith AE. Sequence requirements for nuclear location of simian virus 40 large-T antigen. Nature. 1984 Sep 6;311(5981):33–38. [Abstract] [Google Scholar]
  • Kang PJ, Ostermann J, Shilling J, Neupert W, Craig EA, Pfanner N. Requirement for hsp70 in the mitochondrial matrix for translocation and folding of precursor proteins. Nature. 1990 Nov 8;348(6297):137–143. [Abstract] [Google Scholar]
  • Lanford RE, Butel JS. Construction and characterization of an SV40 mutant defective in nuclear transport of T antigen. Cell. 1984 Jul;37(3):801–813. [Abstract] [Google Scholar]
  • Lanford RE, White RG, Dunham RG, Kanda P. Effect of basic and nonbasic amino acid substitutions on transport induced by simian virus 40 T-antigen synthetic peptide nuclear transport signals. Mol Cell Biol. 1988 Jul;8(7):2722–2729. [Europe PMC free article] [Abstract] [Google Scholar]
  • Lee WC, Mélèse T. Identification and characterization of a nuclear localization sequence-binding protein in yeast. Proc Natl Acad Sci U S A. 1989 Nov;86(22):8808–8812. [Europe PMC free article] [Abstract] [Google Scholar]
  • Lee WC, Xue ZX, Mélèse T. The NSR1 gene encodes a protein that specifically binds nuclear localization sequences and has two RNA recognition motifs. J Cell Biol. 1991 Apr;113(1):1–12. [Europe PMC free article] [Abstract] [Google Scholar]
  • Li RH, Thomas JO. Identification of a human protein that interacts with nuclear localization signals. J Cell Biol. 1989 Dec;109(6 Pt 1):2623–2632. [Europe PMC free article] [Abstract] [Google Scholar]
  • Lindquist S, Craig EA. The heat-shock proteins. Annu Rev Genet. 1988;22:631–677. [Abstract] [Google Scholar]
  • Mandell RB, Feldherr CM. Identification of two HSP70-related Xenopus oocyte proteins that are capable of recycling across the nuclear envelope. J Cell Biol. 1990 Nov;111(5 Pt 1):1775–1783. [Europe PMC free article] [Abstract] [Google Scholar]
  • Meier UT, Blobel G. A nuclear localization signal binding protein in the nucleolus. J Cell Biol. 1990 Dec;111(6 Pt 1):2235–2245. [Europe PMC free article] [Abstract] [Google Scholar]
  • Michaud N, Goldfarb D. Microinjected U snRNAs are imported to oocyte nuclei via the nuclear pore complex by three distinguishable targeting pathways. J Cell Biol. 1992 Feb;116(4):851–861. [Europe PMC free article] [Abstract] [Google Scholar]
  • Moore MS, Blobel G. The two steps of nuclear import, targeting to the nuclear envelope and translocation through the nuclear pore, require different cytosolic factors. Cell. 1992 Jun 12;69(6):939–950. [Abstract] [Google Scholar]
  • Newmeyer DD, Forbes DJ. Nuclear import can be separated into distinct steps in vitro: nuclear pore binding and translocation. Cell. 1988 Mar 11;52(5):641–653. [Abstract] [Google Scholar]
  • Newmeyer DD, Forbes DJ. An N-ethylmaleimide-sensitive cytosolic factor necessary for nuclear protein import: requirement in signal-mediated binding to the nuclear pore. J Cell Biol. 1990 Mar;110(3):547–557. [Europe PMC free article] [Abstract] [Google Scholar]
  • Newport JW, Forbes DJ. The nucleus: structure, function, and dynamics. Annu Rev Biochem. 1987;56:535–565. [Abstract] [Google Scholar]
  • O'Malley K, Mauron A, Barchas JD, Kedes L. Constitutively expressed rat mRNA encoding a 70-kilodalton heat-shock-like protein. Mol Cell Biol. 1985 Dec;5(12):3476–3483. [Europe PMC free article] [Abstract] [Google Scholar]
  • Pelham HR. Speculations on the functions of the major heat shock and glucose-regulated proteins. Cell. 1986 Sep 26;46(7):959–961. [Abstract] [Google Scholar]
  • Richardson WD, Mills AD, Dilworth SM, Laskey RA, Dingwall C. Nuclear protein migration involves two steps: rapid binding at the nuclear envelope followed by slower translocation through nuclear pores. Cell. 1988 Mar 11;52(5):655–664. [Abstract] [Google Scholar]
  • Rothman JE. Polypeptide chain binding proteins: catalysts of protein folding and related processes in cells. Cell. 1989 Nov 17;59(4):591–601. [Abstract] [Google Scholar]
  • Sanders C. A method for the fractionation of the high-mobility-group non-histome chromosomal proteins. Biochem Biophys Res Commun. 1977 Oct 10;78(3):1034–1042. [Abstract] [Google Scholar]
  • Scherer PE, Krieg UC, Hwang ST, Vestweber D, Schatz G. A precursor protein partly translocated into yeast mitochondria is bound to a 70 kd mitochondrial stress protein. EMBO J. 1990 Dec;9(13):4315–4322. [Europe PMC free article] [Abstract] [Google Scholar]
  • Schlossman DM, Schmid SL, Braell WA, Rothman JE. An enzyme that removes clathrin coats: purification of an uncoating ATPase. J Cell Biol. 1984 Aug;99(2):723–733. [Europe PMC free article] [Abstract] [Google Scholar]
  • Silver P, Sadler I, Osborne MA. Yeast proteins that recognize nuclear localization sequences. J Cell Biol. 1989 Sep;109(3):983–989. [Europe PMC free article] [Abstract] [Google Scholar]
  • Silver PA. How proteins enter the nucleus. Cell. 1991 Feb 8;64(3):489–497. [Abstract] [Google Scholar]
  • Snow CM, Senior A, Gerace L. Monoclonal antibodies identify a group of nuclear pore complex glycoproteins. J Cell Biol. 1987 May;104(5):1143–1156. [Europe PMC free article] [Abstract] [Google Scholar]
  • Sterne-Marr R, Blevitt JM, Gerace L. O-linked glycoproteins of the nuclear pore complex interact with a cytosolic factor required for nuclear protein import. J Cell Biol. 1992 Jan;116(2):271–280. [Europe PMC free article] [Abstract] [Google Scholar]
  • Stochaj U, Silver PA. A conserved phosphoprotein that specifically binds nuclear localization sequences is involved in nuclear import. J Cell Biol. 1992 May;117(3):473–482. [Europe PMC free article] [Abstract] [Google Scholar]
  • Stochaj U, Osborne M, Kurihara T, Silver P. A yeast protein that binds nuclear localization signals: purification localization, and antibody inhibition of binding activity. J Cell Biol. 1991 Jun;113(6):1243–1254. [Europe PMC free article] [Abstract] [Google Scholar]
  • Tsunasawa S, Masaki T, Hirose M, Soejima M, Sakiyama F. The primary structure and structural characteristics of Achromobacter lyticus protease I, a lysine-specific serine protease. J Biol Chem. 1989 Mar 5;264(7):3832–3839. [Abstract] [Google Scholar]
  • Tsuneoka M, Imamoto NS, Uchida T. Monoclonal antibody against non-histone chromosomal protein high mobility group 1 Co-migrates with high mobility group 1 into the nucleus. J Biol Chem. 1986 Feb 5;261(4):1829–1834. [Abstract] [Google Scholar]
  • Vogel JP, Misra LM, Rose MD. Loss of BiP/GRP78 function blocks translocation of secretory proteins in yeast. J Cell Biol. 1990 Jun;110(6):1885–1895. [Europe PMC free article] [Abstract] [Google Scholar]
  • Yamasaki L, Kanda P, Lanford RE. Identification of four nuclear transport signal-binding proteins that interact with diverse transport signals. Mol Cell Biol. 1989 Jul;9(7):3028–3036. [Europe PMC free article] [Abstract] [Google Scholar]
  • Yoneda Y, Imamoto-Sonobe N, Yamaizumi M, Uchida T. Reversible inhibition of protein import into the nucleus by wheat germ agglutinin injected into cultured cells. Exp Cell Res. 1987 Dec;173(2):586–595. [Abstract] [Google Scholar]
  • Yoneda Y, Imamoto-Sonobe N, Matsuoka Y, Iwamoto R, Kiho Y, Uchida T. Antibodies to Asp-Asp-Glu-Asp can inhibit transport of nuclear proteins into the nucleus. Science. 1988 Oct 14;242(4876):275–278. [Abstract] [Google Scholar]
  • Yoneda Y, Semba T, Kaneda Y, Noble RL, Matsuoka Y, Kurihara T, Okada Y, Imamoto N. A long synthetic peptide containing a nuclear localization signal and its flanking sequences of SV40 T-antigen directs the transport of IgM into the nucleus efficiently. Exp Cell Res. 1992 Aug;201(2):313–320. [Abstract] [Google Scholar]

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