Abstract
Sequence-specific DNA-protein interactions are basic to DNA function. To better understand these interactions, we studied the effect of position on cleavage of DNA by the type II restriction enzyme (EC 3.1.21.4) Nae I. We discovered two classes of Nae I restriction sites: sites susceptible and sites resistant to cleavage. Kinetic analysis showed that Nae I was activated by DNA containing cleavable Nae I sites to rapidly cleave resistant Nae I sites by a noncompetitive mechanism with a Km for substrate DNA of about 2 nM and a KA for activating DNA of about 6 nM; activation increased catalysis but not substrate binding. Deletion mutagenesis in vitro showed that sequences flanking the Nae I recognition site were responsible for the differences between activating and nonactivating Nae I sites. The polyamine spermidine had a dramatic effect on the interaction of Nae I with DNA; in the presence of 1 mM spermidine, resistant sites were cleaved rapidly and cleavable DNA inhibited cleavage. The direct regulation of enzymatic activity by DNA sequences in trans, and the modulation of this regulation by a polyamine that is sensitive to the cell cycle, provides a regulatory switch mechanism. The implications of this switch for biological control functions are discussed.
MeSH Terms
Base Sequence
Chromosome Deletion
DNA
DNA, Bacterial
DNA, Viral
Deoxyribonucleases, Type II Site-Specific/antagonists & inhibitors,metabolism
Enzyme Activation
Kinetics
Molecular Sequence Data
Oligodeoxyribonucleotides/chemical synthesis
Plasmids
Spermidine/pharmacology
Substrate Specificity
Chemicals
DNA, Bacterial
DNA, Viral
Oligodeoxyribonucleotides
DNA
endodeoxyribonuclease NaeI
Deoxyribonucleases, Type II Site-Specific
Spermidine
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Conrad M
Lineberger Cancer Research Center, University of North Carolina Medical School, Chapel Hill 27599-7295.
Topal M D
References (28)
28 references, click to expand
-
Influence of cation size and charge on the extrusion of a salt-dependent cruciform.
J Mol Biol. 1987 Jan 20;193(2):397-404
PMID: 3599077
-
Restriction enzymes and their isoschizomers.
Nucleic Acids Res. 1987;15 Suppl:r189-217
PMID: 3033611
-
Site-directed mutagenesis by gene targeting in mouse embryo-derived stem cells.
Cell. 1987 Nov 6;51(3):503-12
PMID: 2822260
-
The SV40 enhancer can be dissected into multiple segments, each with a different cell type specificity.
Genes Dev. 1987 Mar;1(1):65-74
PMID: 2828161
-
Mini-P1 plasmid replication: the autoregulation-sequestration paradox.
Cell. 1988 Feb 26;52(4):551-7
PMID: 3277720
-
DNA looping.
Science. 1988 Apr 8;240(4849):127-8
PMID: 3353710
-
EcoRII can be activated to cleave refractory DNA recognition sites.
Nucleic Acids Res. 1988 May 11;16(9):3997-4008
PMID: 2836807
-
Cooperativity and hierarchical levels of functional organization in the SV40 enhancer.
Cell. 1988 Sep 23;54(7):943-53
PMID: 2843294
-
DNA looping generated by DNA bending protein IHF and the two domains of lambda integrase.
Science. 1989 Jun 23;244(4911):1457-61
PMID: 2544029
-
Conformational fluctuations of DNA helix.
Proc Natl Acad Sci U S A. 1975 Nov;72(11):4275-9
PMID: 172901
-
1,4-Diaminobutane (putrescine), spermidine, and spermine.
Annu Rev Biochem. 1976;45:285-306
PMID: 786151
-
EcoRI endonuclease. Physical and catalytic properties of the homogenous enzyme.
J Biol Chem. 1976 Oct 10;251(19):5866-74
PMID: 786985
-
Insertion mutant of bacteriophage f1 sensitive to EcoRI.
Proc Natl Acad Sci U S A. 1979 Jun;76(6):2699-702
PMID: 379863
-
Complete nucleotide sequence of the Escherichia coli plasmid pBR322.
Cold Spring Harb Symp Quant Biol. 1979;43 Pt 1:77-90
PMID: 383387
-
Structures and mechanisms of DNA restriction and modification enzymes.
Q Rev Biophys. 1979 Aug;12(3):315-69
PMID: 232555
-
Conditions which cause the right-handed to left-handed DNA conformational transitions. Evidence for several types of left-handed DNA structures in solution.
J Biol Chem. 1982 Mar 25;257(6):2775-82
PMID: 6277914
-
Transformation of mammalian cells to antibiotic resistance with a bacterial gene under control of the SV40 early region promoter.
J Mol Appl Genet. 1982;1(4):327-41
PMID: 6286831
-
Cloned restriction/modification system from Pseudomonas aeruginosa.
Proc Natl Acad Sci U S A. 1983 Jan;80(2):402-6
PMID: 6300841
-
Revised sequence of the tetracycline-resistance gene of pBR322.
Gene. 1983 May-Jun;22(2-3):277-80
PMID: 6307828
-
Mn2+ and other transition metals at low concentration induce the right-to-left helical transformation of poly[d(G-C)].
EMBO J. 1982;1(7):777-82
PMID: 7188360
-
Polyamines.
Annu Rev Biochem. 1984;53:749-90
PMID: 6206782
-
Efficient in vitro synthesis of biologically active RNA and RNA hybridization probes from plasmids containing a bacteriophage SP6 promoter.
Nucleic Acids Res. 1984 Sep 25;12(18):7035-56
PMID: 6091052
-
Improved M13 phage cloning vectors and host strains: nucleotide sequences of the M13mp18 and pUC19 vectors.
Gene. 1985;33(1):103-19
PMID: 2985470
-
The SV40 enhancer is composed of multiple functional elements that can compensate for one another.
Cell. 1986 May 9;45(3):461-70
PMID: 3009027
-
Multiple nuclear factors interact with the immunoglobulin enhancer sequences.
Cell. 1986 Aug 29;46(5):705-16
PMID: 3091258
-
Gene regulation by proteins acting nearby and at a distance.
Nature. 1986 Aug 21-27;322(6081):697-701
PMID: 3018583
-
Nucleotide sequence and nuclease hypersensitivity of the Chinese hamster dihydrofolate reductase gene promoter region.
Biochemistry. 1986 Oct 7;25(20):6228-36
PMID: 3024702
-
Cationic metals promote sequence-directed DNA bending.
Biochemistry. 1987 Jun 30;26(13):3759-62
PMID: 3651411