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PMID: 7217202 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Distribution of proteins between nucleus and cytoplasm of Amoeba proteus.

The Journal of cell biology ·Vol. 88 ·No. 3 ·1981-03-00 ·Pages 516-25

Goldstein L, Ko C

Abstract

By transplanting nuclei between labeled and unlabeled cells, we determined the localization of the major proteins of amebas and described certain features of their intracellular distributon. We identified approximately 130 cellular proteins by fluorography of one-dimensional polyacrylamide electrophoretic gels and found that slightly less than half of them (designated NP, for nuclear proteins) are almost exclusively nuclear. About 95 percent of the other proteins (designated CP for cytoplamsic proteins) are roughly equally concentrated in nucleus and cytoplasm, but-because the cytoplasm is 50 times larger than the nucleus-about 98 percent of each of the latter is in the cytoplasm. Of the CP, roughly 5 percent are not detectable in the nucleus. Assuming that these are restricted to the cytoplasm only because, for example, they are in structures too large to enter the nucleus and labeled CP readily exit a nucleus introduced into unlabeled cytoplasm, we conclude that the nuclear envelope does not limit the movement of any nonstructural cellular protein in either direction between the two compartments. Some NP are not found in the cytoplasm (although ostensibly synthesized there) presumably because of preferential binding within the nucleus. Almost one half of the protein mass in nuclei in vivo is CP and apparently only proteins of that group are lost from nuclei when cells are lysed. Thus, while an extracellular environment allows CP to exit isolated nuclei, the nuclear binding affinities for NP are retained. Further examination of NP distribution shows that many NP species are, in fact, detectable in the cytoplasm (although at only about 1/300 the nuclear concentration), apparently because the nuclear affinity is relatively low. These proteins are electrophoretically distinguishable from the high-affinity NP not found in the cytoplasm. New experiments show that an earlier suggestion that the nuclear transplantation operation causes an artifactual release of NP to the cytoplasm is largely incorrect. Moreover, we show that cytoplasmic "contamination" of nuclear preparations is not a factor in classifying proteins by these nuclear transplantation experiments. We speculate the no mechanism has evolved to confine most CP to the cytoplasm (where they presumably function exclusively) because the cytoplasm's large volume ensures that CP will be abundant there. Extending Bonner's idea of "quasi-functional nuclear binding sites" for NP, we suggest that a subset of NP usually have a low affinity for available intranuclear sites because their main function(s) occurs at other intranuclear sites to which they bind tightly only when particular metabolic conditions demand. The other NP (those completely absent from cytoplasm) presumable always are bound with high affinity at their primary functional sites.

MeSH Terms
Amoeba/analysis,ultrastructure Animals Binding Sites Cell Compartmentation Cell Nucleus/analysis,metabolism Cytoplasm/analysis,metabolism Nuclear Transfer Techniques Proteins/analysis,metabolism
Chemicals
Proteins
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Goldstein L
Ko C
References (21)
21 references, click to expand
  1. New simple method of micrurgy on living cells.
    Nature. 1968 Feb 3;217(5127):463 PMID: 5641764
  2. Proteins in nucleocytoplasmic interactions. 3. Redistributions of nuclear proteins during and following mitosis in Amoeba proteus.
    J Cell Biol. 1968 Nov;39(2):404-14 PMID: 5677972
  3. Studies on the origin of ribosomes in Amoeba proteus.
    J Cell Biol. 1969 Mar;40(3):622-32 PMID: 5765758
  4. Cleavage of structural proteins during the assembly of the head of bacteriophage T4.
    Nature. 1970 Aug 15;227(5259):680-5 PMID: 5432063
  5. Proteins in nucleocytoplasmic interactions. VI. Is there an artefact responsible for the observed shuttling of proteins between cytoplasm and nucleus in Amoeba proteus?
    Exp Cell Res. 1972 Nov;75(1):111-21 PMID: 4635872
  6. Distrbution of enzymes between nucleus and cytoplasm of single nerve cell bodies.
    J Biol Chem. 1973 Mar 25;248(6):2044-8 PMID: 4144105
  7. Electrophoretic characterization of shuttling and nonshuttling small nuclear RNAs.
    Cell. 1974 Aug;2(4):259-69 PMID: 4369984
  8. Protein migration into nuclei. II. Frog oocyte nuclei accumulate a class of microinjected oocyte nuclear proteins and exclude a class of microinjected oocyte cytoplasmic proteins.
    J Cell Biol. 1975 Feb;64(2):431-7 PMID: 1117031
  9. Chemical and structural changes within chick erythrocyte nuclei introduced into mammalian cells by cell fusion.
    Curr Top Dev Biol. 1975;9:137-66 PMID: 1106954
  10. Non-histone chromosomal proteins from HeLa cells. A survey by high resolution, two-dimensional electrophoresis.
    J Biol Chem. 1976 Jan 25;251(2):548-54 PMID: 942718
  11. Small nuclear RNA localization during mitosis. An electron microscope study.
    J Cell Biol. 1977 May;73(2):322-31 PMID: 870500
  12. The presence of actin in nuclei: a critical appraisal.
    Cell. 1977 Nov;12(3):601-8 PMID: 336220
  13. Intracellular migration of nuclear proteins in Xenopus oocytes.
    Nature. 1978 Mar 16;272(5650):254-6 PMID: 564468
  14. Rapid transfer of non-histone chromosomal proteins to the nucleus of living cells.
    Nature. 1978 Jun 29;273(5665):782-4 PMID: 566387
  15. Mechanism for the selection of nuclear polypeptides in Xenopus oocytes.
    J Cell Biol. 1978 Jul;78(1):168-75 PMID: 566759
  16. Antibodies against chromosomal HMG proteins stain the cytoplasm of mammalian cells.
    Cell. 1979 Jan;16(1):181-9 PMID: 369705
  17. Microinjection of the nonhistone chromosomal protein HMG1 into bovine fibroblasts and HeLa cells.
    Cell. 1979 Apr;16(4):901-8 PMID: 455454
  18. Intranuclear injection of anti-actin antibodies into Xenopus oocytes blocks chromosome condensation.
    Nature. 1979 Nov 15;282(5736):320-1 PMID: 574192
  19. Immunological identification and localization of the predominant nuclear protein of the amphibian oocyte nucleus.
    Proc Natl Acad Sci U S A. 1980 Feb;77(2):1034-8 PMID: 6987661
  20. Localization of nucleusspecific protein as shown by transplantation experiments in Amoeba proteus.
    Exp Cell Res. 1958 Dec;15(3):635-7 PMID: 13609647
  21. Relations between cell growth and cell division. I. Reduced weight, cell volume, protein content, and nuclear volume of amoeba proteus from division to division.
    Exp Cell Res. 1955 Oct;9(2):328-37 PMID: 13262045
Article Info
Journal
The Journal of cell biology
Abbr.
J Cell Biol
ISSN
0021-9525
Published
1981-03-00
Pages
516-25
Language
English
Region
United States
NLM ID
0375356
PMCID
PMC2112769
Subset
IM
Grants
NIGMS NIH HHS · GM-15156 · United States
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