Search PubMedSearch

SEARCH · Search PubMed

Results for “Dimerization”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 163 records · Page 9Linked to original sources

Location of CD4 dimerization site explains critical role of CDR3-like region in HIV-1 infection and T-cell activation and implies a model for complex of coreceptor-MHC.

CD4 cross-linking by antibodies or its natural ligands triggers a tyrosine kinase activity that is one of the necessary steps in the mechanism of human immunodeficiency virus type 1 (HIV-1)-induced syncytium formation and full Th-cell activation. In this study we mapped a part of the dimerization site of human CD4 to amino acids 87-98 using a bivalent CD4 immunoadhesin and a series of overlapping 12-mer peptides of the D1 domain. The dimerization site we found is part of the complementary determining region (CDR) 3-like region of CD4. Using the three-dimensional structure of other immunoglobulin dimers as a basis, a molecular modeling study was performed to dimerize the D1 domains of CD4. Both the peptide binding studies and molecular modeling studies independently led to the conclusion that the CDR3-like region is part of the CD4 dimerization site. The suggested dimerization of CD4 through its CDR3-like region explains the important role that has been ascribed to this region in Th-cell activation and HIV-1-mediated fusion. Based on this model of the CD4 dimer and published results of different mutational analysis studies, a model was proposed for the complex of the CD4 dimer with two MHC-II molecules. The CD4 dimer allows tight binding to a large surface of MHC-II and the complex of CD4 and MHC-II reconciles mutational analysis studies that were previously incompatible. Moreover, the complex suggests how CD4 can dimerize through ligand binding.

Amino Acid Sequence

Quantitative plasma D-dimer levels among patients undergoing pulmonary angiography for suspected pulmonary embolism.

OBJECTIVE: To test the hypothesis that a low D-dimer level has a high negative predictive value for acute pulmonary embolism (PE) among patients undergoing diagnostic pulmonary angiography. DESIGN: Blinded comparison of quantitative plasma D-dimer levels, measured using a monoclonal antibody assay, with pulmonary angiographic results from 173 patients with suspected acute PE. SETTING: Tertiary care setting at fur participating institutions. PATIENTS: Plasma samples were analyzed in 173 patients who underwent diagnostic pulmonary arteriography for suspected acute PE. MAIN OUTCOME MEASURES: Sensitivity, specificity, and predictive values of quantitative plasma D-dimer levels for the diagnosis of PE, using pulmonary angiographic data as the criterion standard test. RESULTS: Of 35 patients with D-dimer values less than 500 ng/mL, only three had abnormal pulmonary angiograms. The negative predictive value of a plasma D-dimer level less than 500 ng/mL for acute PE was 91.4% (95% confidence interval [CI], 76.9% to 98.2%). D-dimer levels were greater than 500 ng/mL in 42 of 45 patients with PE and in 96 of 128 patients without PE (P = .016). Sensitivity, specificity, and positive predictive value of a plasma D-dimer level greater than 500 ng/mL for acute PE were 93.3% (95% CI, 81.7% to 98.6%), 25.0% (95% CI, 17.5% to 32.5%), and 30.4% (95% CI, 22.8% to 38.1%), respectively. CONCLUSIONS: The results of our study indicate that quantitative plasma D-dimer levels can be useful in screening patients with suspected PE who require pulmonary angiography. Plasma D-dimer values less than 500 ng/mL may obviate the need for pulmonary angiography, particularly among medical patients for whom the clinical suspicion of PE is low. The plasma D-dimer value, assayed using a commercially available enzyme-linked immunosorbent assay kit, is a sensitive but nonspecific test for the presence of acute PE.

Adult

Disulfide bond formation between dimeric immunoglobulin A and the polymeric immunoglobulin receptor during hepatic transcytosis.

The polymeric immunoglobulin receptor on rat hepatocytes binds dimeric IgA on the sinusoidal surface and mediates its transport to the canaliculus, where the complex of dimeric IgA and secretory component, the cleaved extracellular domain of polymeric immunoglobulin receptor, is secreted into bile. This process is unique in that disulfide bonds are formed between dimeric IgA and polymeric immunoglobulin receptor during transcytosis, permanently preventing their dissociation. Here we present three lines of evidence that disulfide bonding between dimeric IgA and polymeric immunoglobulin receptor occurs predominantly in a late transcytotic compartment and that hepatic transcytosis can proceed in the absence of disulfide bond formation. First, throughout the course of transcytosis the percentage of intracellular dimeric IgA disulfide bonded to polymeric immunoglobulin receptor is less than half that in bile, suggesting that disulfide bond formation is a late event in transcytosis. Second, dimeric IgA that recycles from early endocytotic compartments into the circulation is mostly noncovalently bound to secretory component. Finally, the rate of transcytosis of dimeric IgA and its appearance in bile are not affected when disulfide bond formation with polymeric immunoglobulin receptor is inhibited by blocking of free thiol groups on dimeric IgA with iodoacetamide. These results are consistent with other findings in the literature and indicate that the main physiological role of disulfide bond formation between dimeric IgA and polymeric immunoglobulin receptor is not to facilitate transcytosis but, rather, to stabilize the dimeric IgA-secretory component complex after its release into external secretions such as bile and intestinal secretions.

Animals

Evidence that Na+/H+ exchanger isoforms NHE1 and NHE3 exist as stable dimers in membranes with a high degree of specificity for homodimers.

In this study, we have investigated whether members of the Na+/H+ exchanger (NHE) family are oligomers and whether such oligomeric structure is required for function. Fibroblasts overexpressing NHE1 were treated briefly at 0 degrees C with the cross-linker disuccinimidyl suberate, then membranes were prepared and proteins analyzed by SDS-polyacrylamide gel electrophoresis. Disuccinimidyl suberate treatment converted quantitatively the immunoreactive monomeric form of NHE1 (110 kDa) to a putative dimeric form (210 kDa). Utilization of NHE1 mutant deleted of the cytoplasmic domain (delta 515TH) demonstrates that the transmembrane domain of the antiporter is sufficient for dimerization. Moreover, coimmunoprecipitation of NHE1 and delta 515TH, coexpressed in the same cell, formally proved the existence of dimers. This dimerization was also shown to take place with the epithelial and apically expressed NHE3 isoform, suggesting that oligomerization is a common feature of these transporters. However, coexpression of NHE1 and NHE3 in the same cells did not lead to the formation of heterodimers demonstrating an isoform specificity for the subunit interaction. The domain(s) involved in the isoform-specific dimerization is (are) likely to be confined within the transmembrane segments, as deletion of the 300 amino acids of the cytoplasmic domain did not disrupt dimerization. Exploiting the dimeric properties of the receptor tyrosine kinases and the fact that dimerization triggers kinase activity, we constructed a NHE1/insulin receptor chimera to probe NHE1 dimerization in vivo. When transfected into hamster fibroblasts, this chimera containing the N-terminal transmembrane domain of NHE1 and the cytoplasmic beta-subunit domain of the insulin receptor generates a functional transporter that is autophosphorylated on tyrosine and that presents properties of a constitutively active insulin receptor. These findings support the notion that NHE1 exists in an oligomeric state in intact cells. Finally, to test whether individual subunits of NHE1 are the minimum functional unit for Na+/H+ exchange, we coexpressed a truncated form of NHE1 (delta 515) together with an inactive mutant of NHE1 (E262I). In spite of good expression of the inactive transporter and its capacity to dimerize with active NHE1, no dominant negative effect was observed on amiloride-sensitive 22Na+ flux. This observation would suggest that individual subunits of NHE1 function independently within the oligomeric state.

Animals

The repair of pyrimidine dimers via a DNA-glycosylase mechanism.

The "UV endonuclease" isolated either from M. luteus or bacteriophage T4 infected E. coli (the denV gene product) consists of two enzymatic activities on a single polypeptide chain: a pyrimidine dimer-DNA glycosylase and an AP endonuclease. The repair of pyrimidine dimers by this enzyme is initiated by the cleavage of the N-glycosylic bond of the 5' pyrimidine of the dimer that leaves the cyclobutane dimer still attached to the DNA through the N-glycosylic bond of the 3' pyrimidine of the dimer. This reaction results in the formation of an apyrimidinic site in the DNA. The second step in this repair pathway is the endonucleolytic cleavage of the DNA 3' to the AP site by the associated AP endonuclease. As a result, the nicked DNA contains DNA damage on both sides of the incision site: an apyrimidinic moiety on the 3' end and a thymine-thymidylate dimer on the 5' end. The enzymes prefer double stranded DNA over single stranded DNA, and thymine over cytosine at the 5' position of the dimer. The AP endonuclease activity prefers the AP site created by the pyrimidine dimer-DNA glycosylase on UV irradiated DNA over either apurinic or apyrimidinic DNA. This repair mechanism appears to be operative in vivo since DNA intermediates containing thymine-thymidylate dimer sites have been detected in UV irradiated T4 infected E. coli and in UV irradiated M. luteus. The cloned denV gene partially complements the UV repair deficient uvr A, B, C strains of E. coli.

Cloning, Molecular

Excision of pyrimidine dimers from the DNA of Neurospora.

Germinated conidia of Neurospora have been monitored for their ability to excise pyrimidine dimers. Dimer concentration was measured in DNA extracted immediately after UV treatment, and it was compared to that of DNA from cells which had a post-UV incubation before extraction. Two methods were used to assay dimer level in DNA: measurement of the number of single-strand breaks (as revealed in alkaline sucrose gradients) produced by a dimer-specific endonuclease; monitoring the ability to compete for binding to dimer-specific antibodies in a radioimmunoassay. Both methods showed efficient excision of dimers by wild-type and by uvs-2, even though an earlier study had reported that uvs-2 was unable to excise dimers. UV-induced mutation shows a dose-rate effect: acute UV yields several times as many mutations as does the same dose of chronic UV. There is a parallel effect on dimer accumulation. The concentration of dimers at the conclusion of the UV treatment shows a strong correlation with the resultant mutation frequency.

DNA Repair

The influence of inhibitors on dimer removal and repair of single-strand breaks in normal and bromodeoxyuridine substituted DNA of HeLa cells.

The elimination of cyclobutane pyrimidine dimers from the nuclear DNA of ultraviolet irradiated HeLa cells has been examined by means of chromatography and immunoautoradiography. The extent and duration of the process was similar when dimers were assayed by both methods, proving that the anti-sera recognized pyrimidine dimers. The rate of dimer excision did not differ through the cell cycle with the exception of mitosis during which no dimers were removed. Dimer excision is a relatively fast process which is terminated within a few hours, but it leaves many dimers in the DNA. Excision is depressed by inhibitors of semiconservative DNA synthesis that affect the DNA precursor pool or DNA polymerases. Cells whose DNA is partly substituted with bromodeoxyuridine instead of thymidine, repair single-strand breaks and remove dimers at the same rate but to different extents. On the other hand, inhibitors limit repair of breaks and removal of dimers to the same degree suggesting that the repair of the two types of lesion is coordinated.

Bromodeoxyuridine

Effects of microinjected photoreactivating enzyme on thymine dimer removal and DNA repair synthesis in normal human and xeroderma pigmentosum fibroblasts.

UV-induced thymine dimers (10 J/m2 of UV-C) were assayed in normal human and xeroderma pigmentosum (XP) fibroblasts with a monoclonal antibody against these dimers and quantitative fluorescence microscopy. In repair-proficient cells dimer-specific immunofluorescence gradually decreased with time, reaching about 25% of the initial fluorescence after 27 h. Rapid disappearance of dimers was observed in cells which had been microinjected with yeast photoreactivating enzyme prior to UV irradiation. This photoreactivation (PHR) was light dependent and (virtually) complete within 15 min of PHR illumination. In general, PHR of dimers strongly reduces UV-induced unscheduled DNA synthesis (UDS). However, when PHR was applied immediately after UV irradiation, UDS remained unchanged initially; the decrease set in only after 30 min. When PHR was performed 2 h after UV exposure, UDS dropped without delay. An explanation for this difference is preferential removal of some type(s) of nondimer lesions, e.g., (6-4) photoproducts, which is responsible for the PHR-resistant UDS immediately following UV irradiation. After the rapid removal of these photoproducts, the bulk of UDS is due to dimer repair. From the rapid effect of dimer removal by PHR on UDS it can be deduced that the excision of dimers up to the repair synthesis step takes considerably less than 30 min. Also in XP fibroblasts of various complementation groups the effect of PHR was investigated. The immunochemical dimer assay showed rapid PHR-dependent removal comparable to that in normal cells. However, the decrease of (residual) UDS due to PHR was absent (in XP-D) or much delayed (in XP-A and -E) compared to normal cells. This supports the idea that in these XP cells preferential repair of nondimer lesions does occur, but at a much lower rate.

Cells, Cultured

Characterization of erythropoietin dimerization.

Recombinant human erythropoietin (rHuEPO) is a monomeric glycoprotein hormone when stored under refrigeration. Higher temperatures and various formulation conditions have shown the monomer to partially dimerize followed by aggregation to higher molecular weight species. To protect the product against aggregation, it is critical to understand this dimerization mechanism. The formation of the dimer was analyzed by matrix-assisted laser desorption time-of-flight mass spectrometry, endoproteinase LysC mapping, and N-terminal sequencing. The dimer was shown to have an average molecular mass of 53.5 kDa vs 27.8 kDa for the monomer. The dimer to monomer ratio of 1.9 instead of 2 seemed to be caused by some loss of sialic acids during the purification. The LysC map of the dimer also showed two new peptide peaks not present in the monomer. The sequencing of the new peptides revealed the presence of two types of EPO dimers. The data indicate the dimerization mechanism to involve an initial reduction of the Cys7-Cys161 disulfide bond and subsequent random reoxidation of the free thiols across two EPO molecules. The absence of free thiols in the dimer was confirmed by a fluorescent thiol probe. The higher molecular weight aggregation followed from random intermolecular reoxidation of Cys7 and Cys161.

Amino Acid Sequence

A study of the dimerization of Rous sarcoma virus RNA in vitro and in vivo.

The Rous sarcoma virus dimer linkage site (DLS) has been located by electron microscopy at position 511 +/- 28 nucleotides. We have studied the dimerization of RNAs encompassing the first 634 nucleotides of Rous sarcoma virus and conclude that there are at least two dimerization signals. One is located between nucleotides 531 and 634 and may involve Watson-Crick pairing of an imperfect inverted repeat. The other signal is located between nucleotides 496 and 530. A tetraguanine sequence at nucleotides 523-526 is required for dimerization of this domain. The guanines are not involved in an identifiable Watson-Crick interaction or in guanine tetrad formation. Either dimerization domain can initiate the dimerization of RNA 1-634. It is possible that these domains are two parts of a single dimerization signal. Interstrand RNA contacts within the virion are not limited to the DLS but occur along the length of the genome. Nascent virions contain monomeric RNA which slowly associates to form an RNA dimer. The limiting step in dimerization is not proteolytic cleavage of the gag precursor because only the mature capsid protein p27 can be detected in these nascent virions.

Avian Sarcoma Viruses

Formation of dimers in ultraviolet-irradiated DNA.

Evidence has been obtained that in UV-irradiated native DNA, pyrimidine dimers are preferentially formed in long pyrimidine tracts. This effects is not the result of the existence of more dimerizable thymine in the long pyrimidine tracts. The preferential formation of dimers in long pyrimidine tracts is enhanced as the dose of irradiation is decreased. These results suggest that the formation of dimers in native DNA occurs by a cooperative mechanism. Quite likely, dimers are formed only in regions of native DNA that are locally denatured (breathing), in which the bases can be aligned. The formation of a dimer in such a breathing region would tend to lock it open and could lead to cooperative formation of dimers in such regions. If this mechanism for the cooperative formation of dimers is operative then it should be restricted to double-strand DNA. The pyrimidine tracts of irradiated single-stranded DNA all show virtually the same dimer content, irrespective of the length of the tract. These results are consistent with the hypothesis that dimers form cooperatively in breathing regions.

Binding Sites

The aggregation state of bovine heart cytochrome c oxidase and its kinetics in monomeric and dimeric form.

The monomeric and dimeric forms of bovine cytochrome c oxidase (EC 1.9.3.1) were obtained from gel filtration chromatography on Ultrogel AcA 34 and analyzed. Both species contained all 12-13 subunits described for this enzyme. In the dimer 320 molecules [3H]dodecyl-beta-D-maltoside were bound per heme aa3 and in the monomer 360 molecules per heme aa3. The monomers contained 10 mol of tightly bound phospholipid/mol heme aa3 and the dimers 14. Sedimentation coefficients of 15.5-18 S for the dimer and 9.6 S for the monomer were calculated from sucrose density centrifugation analysis and analytical centrifugation. By the laser beam light-scattering technique a Stokes radius of 70 A for the dimeric detergent-lipid-protein complex was measured. From those parameters and the densitometric determined partial specific volumes of the detergent and the enzyme, the molecular weights of 400,000 for the protein moiety of the dimer and 170,000-200,000 for the monomer were calculated. Under very low ionic strength conditions the monomer/dimer equilibrium was found to be dependent on the protein concentration. At low enzyme concentrations (10(-9) M) monomers were predominant, whereas at concentrations above 5 X 10(-6) M the amounts of dimers and higher aggregates were more represented. The cytochrome c oxidase activity, measured spectrophotometrically and analyzed by Eadie-Hofstee plot, was biphasic as a function of cytochrome c concentration for the dimeric enzyme. Pure monomers gave monophasic kinetics. The data, fitting with a homotropic negative cooperative mechanism for the dimer of cytochrome c oxidase, are discussed and compared with other described mechanisms.

Animals

Separation, stability and kinetics of monomeric and dimeric bovine heart cytochrome c oxidase.

The stability of monomeric and dimeric bovine heart cytochrome c oxidase in laurylmaltoside-containing buffers of high ionic strength allowed separation of the two forms by gel-filtration high-performance liquid chromatography (HPLC). A solution of the dimeric oxidase could be diluted without monomerisation. Both monomeric and dimeric cytochrome c oxidase showed biphasic steady-state kinetics when assayed spectrophotometrically at low ionic strength. Thus, the biphasic kinetics did not result from negative cooperativity between the two adjacent cytochrome c binding sites of the monomers constituting the dimeric oxidase. On polyacrylamide gels in the presence of sodium dodecyl sulphate (SDS) a fraction of subunit III of the dimeric enzyme migrated as a dimer, a phenomenon not seen with the monomeric enzyme. This might suggest that in the dimeric oxidase subunit III lies on the contact surface between the protomers. If so, the presumably hydrophobic interaction between the two subunits III resisted dissociation by SDS to some extent. Addition of sufficient ascorbate and cytochrome c to the monomeric oxidase to allow a few turnovers induced slow dimerisation (on a time-scale of hours). This probably indicates that one of the transient forms arising upon reoxidation of the reduced enzyme is more easily converted to the dimeric state than the resting enzyme. Gel-filtration HPLC proved to be a useful step in small-scale purification of cytochrome c oxidase. In the presence of laurylmaltoside the monomeric oxidase eluted after the usual trace contaminants, the dimeric Complex III and the much larger Complex I. The procedure is fast and non-denaturing, although limited by the capacity of available columns.

Animals

Dependence on Mg2+ ions of the activities of dimeric hammerhead minizymes.

A minizyme is a hammerhead ribozyme with short oligonucleotide linkers instead of stem/loop II. In a previous study we demonstrated that a minizyme with high-level activity forms a dimeric structure with a common stem II [Amontov and Taira (1996) J. Am. Chem. Soc. 118, 1624-1628]. We now demonstrate that the stability of the dimeric structure is influenced by Mg2+ ions. We found that the dependence on Mg2+ ions of the activity of homodimeric minizyme (a dimer with two identical binding sites) has composite biphasic characteristics. When the concentration of Mg2+ ions reached a specific critical level, the dependence on the concentration of Mg2+ ions lost its tendency to reach a plateau. In the case of the heterodimeric minizyme (a dimer with two different binding sites), we investigated the kinetic behavior of two different forms of the dimer, namely, free dimer and the complex of the dimer with an uncleavable substrate. The kinetic behavior of the free heterodimer was very similar to that of the homodimeric minizyme. In contrast, in the presence of the uncleavable substrate at a concentration as high as that of the minizyme, the curve for the dependence on Mg2+ ions showed normal saturation kinetics. While, at low concentrations of Mg2+ ions, the activity of the heterodimers was much higher when the dimeric structure was stabilized by the presence of the uncleavable substrate, at high concentrations of Mg2+ ions, this difference in activity became less and less significant. Thus, high concentrations of Mg2+ ions were able to stabilize the dimeric minizymes in the absence of the uncleavable substrate.

Base Sequence

Cis elements and trans-acting factors involved in the RNA dimerization of the human immunodeficiency virus HIV-1.

The retroviral genome consists of two identical RNA molecules joined at their 5' ends by the Dimer Linkage Structure (DLS). To study the mechanism of dimerization and the DLS of HIV-1 RNA, large amounts of bona fide HIV-1 RNA and of mutants have been synthesized in vitro. We report that HIV-1 RNA forms dimeric molecules and that viral nucleocapsid (NC) protein NCp15 greatly activates dimerization. Deletion mutagenesis in the RNA 5' 1333 nucleotides indicated that a small domain of 100 nucleotides, located between positions 311 to 415 from the 5' end, is necessary and sufficient to promote HIV-1 RNA dimerization. This dimerization domain encompasses an encapsidation element located between the 5' splice donor site and initiator AUG of gag and shows little sequence variations in different strains of HIV-1. Furthermore, cross-linking analysis of the interactions between NC and HIV-1 RNA (311 to 415) locates a major contact site in the encapsidation element of HIV-1 RNA. The genomic RNA dimer is tightly associated with nucleocapsid protein molecules in avian and murine retroviruses, and this ribonucleoprotein structure is believed to be the template for reverse transcription. Genomic RNA-protein interactions have been analyzed in human immunodeficiency virus (HIV) virions and results showed that NC protein molecules are tightly bound to the genomic RNA dimer. Since retroviral RNA dimerization and packaging appear to be under the control of the same cis element, the encapsidation sequences, and trans-acting factor, the NC protein, they are probably related events in the course of virion assembly.

Base Sequence

Rapid quantitative evaluation of plasma D-dimer levels in thrombotic states using an automated latex photometric immunoassay.

To evaluate a recently developed latex photometric immunoassay (LPIA) that which can measure 40 samples quantitatively within 30 minutes, we measured D-dimer levels in blood samples obtained from patients with disseminated intravascular coagulation (DIC). Linearity of D-dimer determination was shown over the range from 0.5 to 36 micrograms/ml, and recovery studies demonstrated 94 to 108% recovery. The intra-assay and inter-assay coefficients of variation ranged from 0.6 to 11.3% at plasma D-dimer levels of 0.54 to 30.1 micrograms/ml. No interference by lipids, bilirubin, haemoglobin, rheumatoid factor, or gamma-globulin was noted. The normal D-dimer range was less than 0.5 microgram/ml in healthy ambulatory subjects, while the level in elderly subjects with atherosclerosis (14%) or in immobilized subjects (38%) was well above this limit. There was a strong correlation between plasma and serum D-dimer levels (r = 0.993). D-dimer levels measured by this LPIA showed a good correlation with those determined using two kinds of ELISA. The LPIA D-dimer levels were elevated in some subjects with diseases predisposing to DIC, but remained below 10.0 micrograms/ml. On the other hand, the LPIA D-dimer levels in DIC subjects were almost always above 10.0 microgramS/ml. Our study showed that a hypercoagulable state should be suspected when the LPIA D-dimer level is greater than 0.5 microgram/ml and that DIC should be diagnosed when the level is greater than 10.0 micrograms/ml in the presence of an appropriate underlying disease. This LPIA system can rapidly evaluate the presence of a hypercoagulable state as accurately as any ELISA, and thus seems potentially valuable for both emergency and routine laboratory use.

Adult

Synthesis and biological properties of antiparallel and parallel dimers of alpha-human atrial natriuretic peptide.

To obtain antiparallel and parallel dimers of alpha-human atrial natriuretic peptide (alpha-hANP), two fully protected peptides I and II having the same amino acid sequence as alpha-hANP with different protective groups at the cysteinyl residues were synthesized, the former having Acm and Npys and the latter MeBzl and Acm. Equivalent amounts of peptides I and II were mixed and subjected to HF deprotection. Next, the first disulfide bond was linked between the remaining Npys group in I and the liberated SH group in II to form a monodisulfide dimer. The second disulfide bond was formed within the newly formed dimer between the remaining Acm groups by treatment with iodine, giving an antiparallel dimer. The parallel dimer of alpha-hANP was synthesized similarly starting from the protected peptide II. These dimers could be clearly segregated on HPLC. The retention time on HPLC of the antiparallel dimer was identical with that of natural beta-hANP. Both dimers showed biological activities as high as one third to one sixth of alpha-hANP in smooth muscle spasmolytic activity, and almost the same level of natriuretic activity as alpha-hANP at a high dose (10 nmol/kg) but about one fifth the activity at a low dose (1 nmol/kg). In these assay systems, the antiparallel dimer showed a slower onset and a tendency of longer duration than alpha-hANP.

Amino Acid Sequence

Pyrimidine dimers in the DNA of Paramecium aurelia.

The production and fate of thymine-containing pyrimidine dimers in Paramecium aurelia DNA was investigated in three experimental series: production of dimers by UV irradiation, fate of dimers in the dark, and "loss of photoreactivability of dimers." It is shown that cyclobutyl dimers are made by UV irradiation of Paramecium DNA in vivo, that because of cytoplasmic absorption the number of dimers made in DNA irradiated in vivo is much lower than in DNA irradiated in vitro, that dimers are lost from animals incubated in the dark after irradiation, and that all the dimers that remain in the animals can be destroyed by photoreactivating illumination. Since mutation induction is photoreactivable, these and previous photoreactivation data suggest that pyrimidine dimers are important in mutation induction in P. aurelia.

Animals