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Avidin-induced lysis of biotinylated erythrocytes by homologous complement via the alternative pathway depends on avidin's ability of multipoint binding with biotinylated membrane.

It was reported that avidin and streptavidin induce lysis of prebiotinylated red blood cells via the alternative pathway of both homologous and heterologous complement. Both of these proteins have four biotin-binding sites, providing a polyvalent interaction with biotinylated components of the erythrocyte membrane. We have compared the effects of mono- and multipoint avidin attachment on the sensitivity of biotinylated erythrocytes to lysis by the complement system. In the presence of anti-avidin antibody, avidin-bearing biotinylated erythrocytes were rapidly lysed by heterologous serum. This lysis was independent from the mode of avidin attachment, implying that complement activation by the classical pathway triggered by interaction between C1 and avidin-bound antibody on the erythrocyte surface is independent from the avidin's ability of polyvalent (multipoint) binding with biotinylated membrane components. In the absence of anti-avidin antibody, biotinylated erythrocytes bearing polyvalently attached avidin were lysed by homologous complement better than cells bearing avidin, which possesses reduced ability for multipoint binding with biotinylated erythrocyte. Two independent approaches to reduce avidin's ability of multipoint binding were used: decrease in surface density of biotin on the erythrocyte membrane and blockage of biotin-binding sites of avidin. Both methods result in reduced lysis of avidin-bearing erythrocytes as compared with erythrocytes bearing an equal amount of polyvalent-bound avidin. Thus the activation of homologous complement via the alternative pathway depends on avidin's ability to 'cross-link' to the biotinylated components of the erythrocyte membrane.

Animals

Avidin acylation prevents the complement-dependent lysis of avidin-carrying erythrocytes.

Non-covalent binding of avidin to biotinylated erythrocytes results in complement-dependent haemolysis. Biotinylated erythrocytes, as well as native cells, are not lysed by complement. Complement activation requires a tight contact between avidin and the erythrocyte membrane, since avidin does not in itself activate complement and does not inhibit lysis of sensitized sheep erythrocytes. The efficiency of haemolysis depends on avidin's surface density. When the avidin concentration in the reaction mixture is less than 15 micrograms/ml, erythrocyte lysis is not induced. However, the attachment of biotinylated antibodies to avidin-carrying erythrocytes decreases dramatically. Acylation of avidin with succinic anhydride strongly decreases its ability to induce complement-dependent haemolysis. However, the ability of avidin to cross-link the biotin-containing structures decreases after acylation. A 50% modification of avidin by succinic anhydride (pI about 7.0) allows preparation of 'immunoerythrocytes', which retain their affinity to antigen and stability in the presence of complement.

Acylation

Tissue distribution of avidin and streptavidin injected to mice. Effect of avidin carbohydrate, streptavidin truncation and exogenous biotin.

Radioionated avidin and streptavidin were characterized for their biodistribution and tissue association in Balb/c mice, in comparison to their interaction with cells in vitro. Binding of avidin to spleen and bone-marrow cells in vitro was up to 20-fold higher than that of streptavidin, but when tested in vivo avidin clearance from blood and tissues was considerably faster than that of streptavidin. Levels of avidin at 24 h after an intravenous injection were below 1% (of the injected dose/mass tissue) in most organs. Non-glycosylated avidin was similar in its biodistribution to native avidin. Native streptavidin exhibited higher and prolonged tissue association with 5-10% levels in lung, liver, spleen, kidney and blood, whereas its truncated form showed low tissue levels (1-3%) but a remarkably high affinity to the kidney (80%). Exogenous biotin did not affect streptavidin distribution in vivo but caused a 2-7-fold increase in the retention of avidin (but not non-glycodylated avidin) in some of the organs.

Animals

Simultaneous inhibition of endogenous avidin-binding activity and peroxidase applicable for the avidin-biotin system using monoclonal antibodies.

The use of the avidin-biotin technique in immunoperoxidase staining provides a simple and highly sensitive method for detecting the localization of antigens defined by monoclonal antibodies. However, endogenous biotin, which is widely distributed in tissues, often causes non-specific staining by binding to avidin [endogenous avidin-binding activity (EABA)]. Endogenous peroxidase activity (EPA) also makes the estimation of specific staining difficult. In the present study, several methods for the inhibition of EABA and/or EPA were examined using the avidin-biotin technique and monoclonal antibodies against murine Mac-1 and Ia antigen. Of these, the overnight incubation of sections in 40% methanol in phosphate-buffered saline containing 0.3% hydrogen peroxide gave the best result, as it inhibited EABA and EPA simultaneously without denaturating of the antigenic determinants recognized by the monoclonal antibodies.

Animals

A spin label study of egg white avidin.

Avidin is a tetrametric protein (mass 68,000 daltons) that binds 4 molecules of vitamin biotin (1). The biotin binding sites, 1 per subunit, are grouped in two pairs at opposite ends of the avidin molecule (GREEN, N.M., KONIECZNY, L., TOMS, E.J., and VALENTINE, R.C. (1971) Biochem. J. 125, 781). We have studied the topography of the avidin binding sites with the aid of four spin-labeled analogs of biotin: 4-biotinamido-2,2,6,6-tetramethyl-1-piperidinyloxy (II), 3-biotinamido-2,2,5,5-tetramethyl-1-pyrrolidinyloxy (III), 3-biotinamidomethyl-2,2,5,5-tetramethyl-1-pyrrolidinyloxy (IV), 4-(biotinylglycyl)-amino-2,2,6,6-tetramethyl-1-piperidinyloxy (V). Fluorescence and optical absorption spectroscopy indicated that II to V occupied the same binding sites on avidin as did biotin. The electron spin resonance spectrum of the 4:1 complex between II and avidin contained broad line components characteristic of a highly immobilized spin label. Dipole-dipole interactions between spin labels bound to adjacent sites split each of the three major hyperfine lines into doublets with a separation of 13.8 G. The distance between adjacent bound nitroxide groups was calculated from this splitting to be 16 A. The dissociation of the 4:1 complex between II and avidin was biphasic with approximately half of the labels dissociating at a rate (kdiss equal to 2.51 times 10- minus 4 s- minus 1) that was much faster than the remainder (kdiss equal to 1.22 times 10- minus 5 s- minus 1). The electron spin resonance spectrum of the 2:1 complex between II and avidin clearly showed that, immediately after mixing, the spin labels were distributed in a random fashion among the available binding sites but that they slowly redistributed themselves so that each label bound to a site which was adjacent to an unoccupied site. The final time-independent electron spin resonance spectrum exhibited a splitting 69 G between the low and high field hyperfine lines which is characteristic of a highly immobilized, noninteracting spin label. Spin labels III and IV interacted with avidin in a similar fashion to that described for II with the exception that their dipolar splittings were 11.9 G and 14.2 G, respectively. From these splittings it was estimated that the distance between adjacent avidin-bound nitroxides was 16.7 A for labeled III and 15.7 A for label IV. The electron spin resonance spectrum of label V bound to avidin was characteristic of a noninteracting highly immobilized nitroxide with a maximum splitting of 62 G. The spectrum of V bound to avidin was independent of both time and the amount of bound label. The rate of dissociation of V from a 4:1 complex with avidin was monophasic. A model is proposed in which the recognition site for the heterocyclic ring system of biotin is represented as a cleft located within a hydrophobic depression in the surface of avidin.

Avidin

Induction of avidin messenger ribonucleic acid in the chick oviduct by progesterone and other steroids.

Avidin gene expression was analyzed using an avidin immunoassay and RNA hybridization analysis. To ascertain whether the induction of the avidin gene by progesterone remains specific also during secondary restimulation with diethylstilbestrol, chicks were given different steroid hormones or hormone combinations. Progesterone-specific induction of avidin protein and messenger RNA (mRNA) was 15- to 30-fold over the control even after secondary restimulation with diethylstilbestrol. A functional difference between the progesterone response element and glucocorticoid response element was suggested, since dexamethasone alone did not induce avidin in vivo. In spite of progesterone specificity, a combination of progesterone with other steroids nevertheless generated a synergistic increase in the amount of avidin mRNA. This may indicate that binding of progesterone receptor to the progesterone response element may be important to alter the functional activity of other hormone response elements present on the avidin gene. The time response curve of the avidin mRNA induction by progesterone was also determined. Avidin mRNA was detectable 8 h after progesterone induction, and its amount was maximal after 16-24 h. This would indicate that the avidin gene belongs in the so-called late responder genes, which also include chicken ovalbumin, ovomucoid, and lysozyme genes.

Animals

Avidin attachment to biotinylated erythrocytes induces homologous lysis via the alternative pathway of complement.

Noncovalent attachment of avidin to the membrane of prebiotinylated red blood cells (RBCs) induces lysis via the alternative pathway of complement (APC). Lysis is not species-dependent; RBCs from humans, rabbits, rats, and sheep were lysed with both autologous and all heterologous sera. Both biotinylated and native cells were not lysed. Lysis was observed at an avidin surface density of about 10(5) molecules per cell. Acylation of avidin prevents lysis and decreases the positive charge of the avidin. Lysis depends on the length of the cross-linking agent used for the biotin attachment to the membrane. An increase in the length of the cross-linking agent was accompanied by an enhancement of the lysis and the agglutination titer of biotinylated RBCs in a solution of avidin. It is suggested that avidin attachment induces some transformations of the cell membrane that lead to the conversion from "APC nonactivator" cells to "APC activator" cells. The interaction of avidin with membrane APC-restrictors (decay-accelerating factors, type 1 receptor for complement, homologous restriction factor, and others), the charge of avidin, and its cross-linking ability in lysis are discussed. It is proposed that membrane rearrangement induced by multipoint avidin attachment to biotinylated membrane is the main reason for avidin-induced elimination of APC restriction.

Animals

Studies on the biotin-binding site of avidin. Minimized fragments that bind biotin.

The object of this study was to define minimized biotin-binding fragments, or 'prorecognition sites', of either the egg-white glycoprotein avidin or its bacterial analogue streptavidin. Because of the extreme stability to enzymic hydrolysis, fragments of avidin were prepared by chemical means and examined for their individual biotin-binding capacity. Treatment of avidin with hydroxylamine was shown to result in new cleavage sites in addition to the known Asn-Gly cleavage site (position 88-89 in avidin). Notably, the Asn-Glu and Asp-Lys peptide bonds (positions 42-43 and 57-58 respectively) were readily cleaved; in addition, lesser levels of hydrolysis of the Gln-Pro (61-62) and Asn-Asp (12-13 and 104-105) bonds could be detected. The smallest biotin-binding peptide fragment, derived from hydroxylamine cleavage of either native or non-glycosylated avidin, was identified to comprise residues 1-42. CNBr cleavage resulted in a 78-amino acid-residue fragment (residues 19-96) that still retained activity. The data ascribe an important biotin-binding function to the overlapping region (residues 19-42) of avidin, which bears the single tyrosine moiety. This contention was corroborated by synthesizing a tridecapeptide corresponding to residues 26-38 of avidin; this peptide was shown to recognize biotin. Streptavidin was not susceptible to either enzymic or chemical cleavage methods used in this work. The approach taken in this study enabled the experimental distinction between the chemical and structural elements of the binding site. The capacity to assign biotin-binding activity to the tyrosine-containing domain of avidin underscores its primary chemical contribution to the binding of biotin by avidin.

Amino Acid Sequence

The effect of avidin-biotin interactions in detection systems for in situ hybridization.

The effect of avidin-biotin interactions in several detection systems for the non-radioactive in situ hybridization (ISH) technique was studied in a model system using a transitional cell carcinoma line and a biotinylated DNA probe. We performed fluorescence ISH to unravel the individual steps in a sensitive and frequently used amplification method which makes use of the alternating cytochemical detection layers of fluorescein isothiocyanate-conjugated avidin (AvFITC) and biotinylated goat anti-avidin (BioGAA) antibodies to detect the hybridized and biotinylated probe. Our experiments revealed that BioGAA antibodies bind with their antigen binding sites and not with their biotin moieties to avidin molecules that have already interacted with the DNA probe. The probable working mechanism of this amplification method is presented in a model. Furthermore, we used a peroxidase staining technique to compare with each other the sensitivity of several other detection systems in which avidin-biotin interactions play an important role, e.g., the avidin-biotinylated peroxidase complex (ABC) system. The experiments show that avidin molecules can not be efficiently used to interconnect two biotinylated molecular layers, since their introduction leads to firmly closed cytochemical networks. Such a closed network is already formed between the hybridized and biotinylated DNA probe and a first detection layer of avidin molecules, as appears from the finding that biotinylated molecules could hardly be coupled to these avidin molecules in a following detection layer. Therefore, the results presented here provide us with new insight into the molecular basis of cytochemical network formation. This will enable us to choose the proper procedures for increasing the sensitivity of ISH detection systems.

Avidin

Avidin and ovalbumin induction by progesterone in chicken oviduct detected by sensitive immunoenzymometric assays.

This study describes sensitive immunoenzymometric assays (IEMAs) for chicken avidin and ovalbumin, markers of cytodifferentiation and action of progesterone and oestrogen in the oviduct magnum mucosa. The determination range was 0.5-100 ng/ml and the detection limit 0.1 ng/ml in both IEMAs. The intra- and interassay coefficients of variation, measured from chicken tissue supernatants, averaged below 6 and 10% respectively. IEMAs correlated well with the radioimmunoassays for avidin and ovalbumin previously developed in our laboratory, and with the widely used [14C]biotin-binding method for avidin. Using an IEMA, we found avidin induction with low concentrations of progesterone in the differentiated oviduct of oestrogen-pretreated chicks. The induction has not been detected previously by less sensitive methods. Avidin was induced by all given doses of progesterone (0.2-200 mg/kg in vivo for 24 h after a short oestrogen treatment), the response being dose-dependent at doses of 0.2-20 mg progesterone/kg body weight, the maximum avidin production being about 70 micrograms/g tissue. Ovalbumin was induced at doses of 2-200 mg progesterone/kg body weight without variations in the responses, being about 35 mg/g. The mean content of avidin in the oviduct of laying hens was 58.1 micrograms/g, and of ovalbumin 74.9 mg/g. Minimal traces of avidin and ovalbumin were found in the oviduct after hatching (0.3 and 5 micrograms/g respectively); however, progesterone did not have an effect on this expression. Sensitivity, rapidity and practicability, together with non-radioactivity, are the main advantages of the present IEMAs for chicken avidin and ovalbumin.

Animals

Progesterone-independent avidin induction in chick tissues caused by tissue injury and inflammation.

Progesterone was administered to oestrogen-treated and untreated chicks, or inflammation in the abdominal cavity was caused by intestine and liver injury or intraperitoneal actinomycin D administration. Local injury to the pectoral muscle was also carried out. Chicks were killed 24--26 h after the treatment and the biotin-binding egg white protein, avidin, was assayed in a number of tissues using a [14C]biotin-binding method and radioimmunoassay. Ovalbumin was also assayed with a radioimmunoassay. Avidin was not found in the tissues of control chicks. Progesterone induced avidin only in the oviducts of oestrogen-treated chicks. After intestine and liver injury avidin was found, however, in all the tissues of oestrogen-treated and untreated chicks studied except for the brain. The concentrations were highest in the oviduct, lung, intestine and bursa of Fabricius. Actinomycin D (200 microgram/kg) caused ascites and subcutaneous oedema in 40--60% of the chicks, and avidin was found only in the tissues of these inflamed animals. Avidin production caused by the local muscular injury was restricted to the injured area. Tissue injury and inflammation did not induce ovalbumin in any tissue. The study shows that avidin can be induced besides the oviduct also in non-oviductal chick tissues, and it is proposed that there are both progesterone-dependent and -independent avidin induction mechanisms.

Animals

Comparison of avidin induction in the differentiated and undifferentiated chick oviduct by progesterone, actinomycin D and oviductal injury.

Various oestrogen (diethylstilboestrol, DES) pre-treatments were carried out on chicks and the production of avidin in the oviduct was induced by progesterone, actinomycin D or oviductal injury. Avidin induction was dose-dependent at doses between 5 mg and 40 mg progesterone/kg or 50 micrograns and 300 micrograms actinomycin D/kg respectively. The induction by oviductal injury correlated with the magnitude of tissue injury. First signs of avidin induction were seen at 4 h after oviductal injury, 12 h after progesterone or 12--16h after actinomycin D administration. Actinomycin D (200 micrograms/kg), when administered after progesterone injection, did not increase avidin induction by progesterone, this indicating that avidin induction by actinomycin D is not a "superinduction" effect. Evidence is presented here that the mechanism of avidin induction by oviductal injury and actinomycin D differs from that by progesterone. The differentiation of the oviduct caused by DES treatment was necessary for the induction by progesterone, whereas actinomycin D and oviductal injury also induced avidin in the undifferentiated or poorly differentiated oviduct. Simultaneous DES stimulation potentiated induction by progesterone but not by actinomycin D or oviductal injury. Furthermore, single prior DES stimulation increased avidin induction in the differentiated oviduct of DES-withdrawn chicks caused by progesterone but not that by actinomycin D or oviductal injury.

Animals

Biotin delivery to brain with a covalent conjugate of avidin and a monoclonal antibody to the transferrin receptor.

The OX26 mouse monoclonal antibody to the rat transferrin receptor undergoes transcytosis through the brain capillary endothelial wall, which makes up the blood-brain barrier (BBB) in vivo, owing to high concentrations of transferrin receptor on the BBB. This property allows the OX26 antibody to serve as a brain drug transport vector. To simplify coupling of therapeutics to the OX26 antibody, the present studies examine the use of the avidin/biotin system to promote coupling of biotin and biotinylated drugs to brain transport vectors. The OX26 antibody was affinity purified from ascites fluid and was covalently coupled via a thioether linkage to avidin, and the conjugate was purified to homogeneity by gel filtration fast protein liquid chromatography. The biotin binding capacity of the avidin-OX26 conjugate was measured, and 2.3 biotin binding sites per avidin-OX26 (1:1) conjugate were detected. Transcytosis through the BBB of [3H]biotin bound to either unconjugated avidin or to the avidin-OX26 conjugate was measured with an internal carotid artery perfusion/capillary depletion technique. [3H]Biotin bound to the avidin-OX26 conjugate was transported through the BBB at rates that equaled the rate of transcytosis of the unconjugated OX26 antibody. The clearance from plasma of [3H]biotin bound to the avidin-OX26 conjugate approximated the rate of clearance of the unconjugated OX26 antibody, and not the rate of clearance of [3H]biotin bound to avidin, which was cleared from plasma at much faster rates.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Induction of avidin in the chick oviduct by tissue damage. Effect of promethazine chloride, CaCl2 and hydrocortisone on local induction.

The local effect of the mechanical induction of avidin by ligature was studied in diethylstilbestrol-primed chicks. The highest induction of avidin was always found in the immediate vicinity of the silk ligature of the oviduct. The locality of the induction was highly dependent on the position of the ligature. The nonligated parts of the ligated oviduct also showed a slight avidin induction. These results indicate a strictly local effect of avidin induction by ligature. An antihistamine, promethazine chloride, has a potentiating effect on the avidin induction by ligature when administered after the ligature. On the other hand, membrane stabilization by hydrocortisone or CaCl2 did not influence the ligature-induced avidin synthesis. On the basis of these results it is concluded that the avidin induction is not mediated by histamine activation or membrane damage.

Animals

Complete protection of antisense oligonucleotides against serum nuclease degradation by an avidin-biotin system.

It has been recently demonstrated that a complex of avidin, a cationic protein, and a monobiotinylated antisense oligonucleotide for the GLUT1 glucose transporter mRNA is taken up by cells in vitro and by organs in vivo via absorptive-mediated endocytosis. In the present study, a GLUT1 biotinylated oligonucleotide-avidin construct showing complete protection against serum 3'-exonuclease-mediated degradation is described. 21-mer antisense oligonucleotides complementary to nucleotides 162-182 and 161-181 of the bovine GLUT1 glucose transporter mRNA were synthesized with a 6-aminodeoxyuridine at positions 3 and 20, respectively, biotinylated with NHS- or NHS-XX-biotin to yield near 5'- or near 3'-biotinylated oligonucleotide (bio-DNA), and 5'- and 3'-end radiolabeled. Serum induced a rapid degradation of unprotected (no avidin) [5'-32P]-5'-bio-DNA (> 95% at 30 min). Avidin partially protected this construct (approximately 31% of intact 21-mer oligo remained at 1 h). Similar results were obtained with the [3'-32P]-5'-bio-DNA; however, no degradation products of varying size were observed, confirming that the degradation is mediated primarily by a 3'-exonuclease. Incubation of the [5'-32P]-3'-bio-DNA with serum showed a rapid conversion to the 20- and 19-mer forms (t1/2 approximately 13 min). Conversely, avidin totally protected this construct against the serum 3'-exonuclease. In conclusion, avidin fully protects antisense oligonucleotides biotinylated at the near 3'-terminus against serum 3'-exonuclease degradation, and this property may be useful for avidin-mediated drug delivery of oligonucleotides to tissues in vivo or to cultured cells in vitro.

Animals

A radioimmunoassay for chicken avidin. Comparison with a [14C]biotin-binding method.

A double-antibody solid-phase radioimmunoassay for chicken avidin is reported. Avidin was labelled with 125I by the chloramine-T method. The bound and free avidin were separated with a second antibody bound to a solid matrix. In the logit-log scale the standard curve was linear from 1-2 to 100-200ng of avidin/ml. Cross-reaction of ovalbumin was less than 0.015%. Saturation of biotin-binding sites of avidin with an excess of biotin decreased radioimmunoassay values by about 15%. Recovery studies indicated that avidin can be assayed from all chicken tissues studied with radioimmunoassay, whereas the [14C]biotin/bentonite method gave poor recoveries for avidin in the liver and kidney. Radioimmunoassay and the [14C]biotin/bentonite method gave similar concentrations for oviduct avidin.

Animals

Partial purification of a progesterone-inducible messenger RNA (avidin) from hen oviduct.

The messenger RNA (mRNA) for avidin, which represents less than 0.05% of the total cellular proteins, was partially purified from hen oviduct, and the presence of avidin mRNA was shown to depend upon prior stimulation by progesterone. A total nucleic acid extract was subjected to oligo (dT)-cellulose chromatography, followed by Sepharose 4B chromatography, preparative agarose gel electrophoresis, and sucrose gradient centrifugation. The relative purity of each preparation was assessed by translation in a wheat-germ system; avidin messenger RNA activity was measured by specific immunoprecipitation of synthesized proteins. Avidin mRNA was separated from the bulk of the total messenger RNA activity of the oviduct and from all ribosomal RNAs to produce greater than a 1000-fold enrichment of avidin mRNA activity compared with total cellular RNA. Based on the translation assay, the most highly purified fraction contained about 2.5% avidin messenger RNA. Avidin mRNA activity was absent in partially purified mRNA obtained from estrogen-stimulated chick oviducts, but was detected in oviducts following progesterone administration.

Animals

Immunofluorescence demonstration of avidin in the immature chick oviduct epithelium after progesterone.

Immature chicks were used for the experiments 1-2 days after hatching. A group of chicks were injected with 5 mg of progesterone and sacrificed 1 or 24 hr later. An other group of chicks were injected daily for 9 days with 5 mg of diethylstilbestrol and thereafter with single injection of progesterone. Cryostat sections were incubated with rabbit anti-avidin serum and with fluorescein labelled antirabbit globulin for fluorescence histochemistry. In the control animals no epithelial cells of the oviduct were fluorescence positive independently whether or not the animals were pretreated with diethylstilbestrol. One hour after administration of progesterone epithelial cells showed occasionally a slight synthesis of avidin. 24 hours after the injection of progesterone most, however never all, of the epithelial cells showed avidin in the apical part of the cell. The fluorescence reaction was clearly more intense if the animals were estrogen-primed. Diethylstilbestrol caused a differentiation of oviductal glands which were, however, only occasionally avidin positive after progesterone. These results suggest that primitive oviductal cells can produce avidin without preceding differentiation whereas estrogen causes a differentiation of new line of cells which have regularly lost their capacity of avidin synthesis after progesterone administration.

Animals