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Beta-2 transferrin: limitations of use as a clinical marker for perilymph.

Beta-2 transferrin is a protein marker that can be used in the clinical setting to reliably identify the presence of cerebrospinal fluid (CSF). Recent literature has suggested that beta-2 transferrin can also be used as a clinical marker for perilymph. This study investigates the use of a beta-2 transferrin assay as a method to identify the presence of perilymph. Twenty-two patients were enrolled in the study. Fluid samples were obtained intraoperatively and tested for the presence of beta-2 transferrin. As expected, four CSF samples collected were positive for beta-2 transferrin; however, four known perilymph samples collected from patients undergoing cochlear implantation were negative for beta-2 transferrin, seven of nine known perilymph samples obtained during stapedectomies were negative for beta-2 transferrin, and four of five samples collected during middle ear explorations for fistula were negative for beta-2 transferrin. With current methodology beta-2 transferrin does not appear to be a reliable clinical marker for perilymph in the operative setting.

Biomarkers↗

Beta-2-transferrin and cerebrospinal fluid rhinorrhoea.

Beta-2-transferrin is a protein produced by neuraminidase activity in the brain which is uniquely found in the cerebrospinal fluid (CSF) and perilymph. Its absence in other body secretions makes its detection invaluable in diagnosing a CSF leak. In this series samples were analysed from 25 patients with suspected CSF rhinorrhoea. The presence of beta-2-transferrin was determined by immuno-fixation electrophoresis. Out of 25 patients 16 were positive for beta-2-transferrin. A dural defect and CSF leak were confirmed during surgery in 13 of the 16 patients. In three patients the rhinorrhoea stopped spontaneously. Out of nine patients who were negative for beta-2-transferrin in the nasal fluids, two underwent a craniotomy and neither had evidence of CSF leak or dural effect. Two of the eight patients had a normal computerized coronal tomography (CT) despite a CSF leak. Seventeen patients underwent CT cisternography (six in the beta-2-transferrin negative group and 11 in the positive group). A leak was shown by CT cisternography in seven patients in the positive beta-2-transferrin group, but a leak could not be confirmed in the other four patients. No leak was demonstrated in the six patients in the negative beta-2-transferrin group. Beta-2-transferrin is a valuable and sensitive means of confirming the diagnosis of CSF leaks. Patients with a suspected CSF leak but no beta-2-transferrin in their nasal discharge can avoid unnecessary invasive investigations.

Adult↗

Transferrin in seminal plasma of fertile and infertile men.

The levels of transferrin in seminal plasma of a large sample of infertile men (n = 287) were measured by radioimmunoassay. A group of recently pregnancy-proven fertile men (n = 20) was used as control and a small group (n = 6) of vasectomized men was studied to determine the origin of seminal transferrin. Infertile men had lower transferrin values than fertile men, although the difference was not significant in the case of normozoospermic infertile men (0,05 less than p less than 0,1); in the case of oligozoospermic infertile men the difference was highly significant (p less than 0,001). The values of transferrin in severely oligozoospermic, azoospermic and vasectomized subjects suggested that 60% of seminal transferrin could be of testicular origin. In infertile patients transferrin fall along with sperm count; there is a strong correlation between transferrin and sperm density. FSH levels were measured in a group of severely oligozoospermic and azoospermic patients (n = 41); although the patients with elevated FSH had lower transferrin levels than the patients with FSH within the normal range, the difference was not significant. The results of this study show that transferrin could be a useful marker of seminiferous tubular function but more work is needed to assess its relevance for clinical practice.

Adenosine Triphosphate↗

Increased urinary excretion of transferrin in children with type 1 diabetes mellitus.

Urinary transferrin excretion was measured by radioimmunoassay in 74 children with Type 1 diabetes mellitus and in 40 normal children, and compared with urinary excretion of albumin, alpha-1-microglobulin, and N-acetyl-beta-D-glucosaminidase. Urinary transferrin excretion was significantly elevated in diabetic (median (range) 186 (18-1671) mg mol-creatinine-1) compared with normal (85 (27-668) mg mol-creatinine-1) children (p less than 0.001). Seventeen diabetic children had transferrin excretion above the 95th centile for normal children. In contrast there was no significant increase in urinary albumin excretion in the diabetic children although 8 had urinary albumin excretion which exceeded the 95th centile for normal children (6 of these 8 patients having coexistent urinary hyperexcretion of transferrin). Urinary transferrin excretion correlated significantly with urinary albumin excretion in both normal (rs = 0.62, p less than 0.001) and diabetic (rs = 0.61, p less than 0.001) children. The indices of proximal renal tubular function (urinary excretion of alpha-1-microglobulin and N-acetyl-beta-D-glucosaminidase) correlated significantly with transferrin excretion in both diabetic (rs = 0.43 and rs = 0.41, p less than 0.001) and normal (rs = 0.40, p less than 0.02 and rs = 0.53, p less than 0.001) children, but not with albumin excretion (rs = 0.20, p greater than 0.05 and rs = 0.22, p greater than 0.05). In addition urinary transferrin excretion significantly correlated with urinary glucose concentration (rs = 0.34, p less than 0.007) in Type 1 diabetic children. The discrepancy in urinary excretion of transferrin and albumin may reflect impaired proximal renal tubular reabsorption of transferrin and/or altered glomerular basement membrane selectivity for the two proteins.

Acetylglucosaminidase↗

Urinary transferrin excretion in type 1 (insulin-dependent) diabetes mellitus.

Urinary excretion of transferrin and albumin was studied by radioimmunoassay in 47 adult patients with Type 1 diabetes and 28 control subjects. Median (range) urinary transferrin excretion rate was significantly elevated in the diabetic group 0.58 (0.02-2663.3) micrograms min-1 compared with the control group 0.04 (0.01-0.28) micrograms min-1, p less than 0.001. Urinary transferrin:creatinine ratios (x 10(2)) were different in diabetic 47 (0.6-958.0) micrograms mmol-1 and control groups 0.7 (0.06-2.3) micrograms mmol-1, p less than 0.001). There were correlations between urinary transferrin and albumin excretion rates in diabetic (r = 0.78, p less than 0.001) and control groups (r = 0.81, p less than 0.05). Forty (85%) diabetic patients had elevated transferrin excretion rates, 18 (38.3%) had elevated albumin excretion rates. All diabetic patients with elevated albumin excretion rates had elevated transferrin excretion rates. Twenty-one (77.8%) of the patients with normal albumin excretion rates had elevated transferrin excretion rates. Urinary excretion of N-acetyl-beta-D-glucosaminidase was greater in diabetic patients than control subjects (142 vs 58 mumol h-1 l-1, p less than 0.001). There were correlation between transferrin and N-acetyl-beta-D-glucosaminidase excretion (r = 0.67, p less than 0.01) and albumin and N-acetyl-beta-D-glucosaminidase excretion (r = 0.63, p less than 0.01) in the diabetic group. Elevated urinary transferrin excretion rate may be a marker for renal dysfunction in diabetes mellitus.

Acetylglucosaminidase↗

Non-transferrin-bound iron in platelet concentrates promotes the growth of Staphylococcus epidermidis.

BACKGROUND: Staphylococcus epidermidis, the most common organism implicated in bacterial contamination of platelet (PLT) concentrates (PCs), does not grow in serum unless transferrin is fully saturated and there is non-transferrin-bound iron (NTBI) available. Here, the occurrence and origin of NTBI in PCs has been studied. STUDY DESIGN AND METHODS: NTBI in PC supernatants was determined by a chelation method and by the bleomycin-detectable iron assay. Iron binding by transferrin was determined by spectrophotometry, and transferrin iron forms, by urea gel electrophoresis. The growth of inoculated S. epidermidis in PC supernatants was monitored by optical density and determination of viable counts. RESULTS: PCs contained approximately 0.14 micromol per L redox-active iron measured by the bleomycin assay and approximately 0.7 micromol per L NTBI by the chelation method. As a further indication of the presence of NTBI, the growth of S. epidermidis in the PC supernatants was inhibited by iron chelation with deferoxamine. Transferrin in the PC medium was only partially saturated with iron, and the reason for the presence of NTBI was found to be impaired iron binding by transferrin. Iron was displaced from transferrin by citrate at molar ratios to transferrin that occur in citrated plasma and in PLT additive solution (AS). Citrated plasma supported the growth of S. epidermidis whereas serum did not. CONCLUSIONS: PCs stored in plasma or AS contain a low level of NTBI because of the displacement of iron from plasma-derived transferrin by citrate. NTBI in the PC medium supports the growth of S. epidermidis.

Antimetabolites, Antineoplastic↗

Hepatocellular transferrin receptor expression in secondary siderosis.

We investigated the hepatocellular transferrin receptor expression in 55 human liver specimens with secondary siderosis, with an indirect immunoperoxidase technique on frozen sections using 3 monoclonal anti-transferrin receptor antibodies. For comparison, specimens were also stained with the monoclonal antibody BK19.9, recognizing an antigen which is biochemically similar to the transferrin receptor, and with a monoclonal antibody against the epidermal growth factor receptor. The degree of iron overload was estimated semi-quantitatively, taking into account hepatocellular and Kupffer cell iron deposition. In 47 out of 55 specimens hepatocellular transferrin receptor expression was present. The positivity was predominantly localized on hemosiderin-free hepatocytes. With increasing hepatocellular iron deposition, the proportion of cases with absent transferrin receptor immunoreactivity increased. This supports the previously reported disappearance of hepatocellular transferrin receptor expression in primary hemochromatosis cases with severe iron deposition. However, the transferrin receptor negative cases included four specimens in which Kupffer cell iron deposition clearly exceeded hepatocyte iron load. This finding suggests that in addition to hepatocellular iron load other factors may regulate the expression of parenchymal transferrin receptors in iron overload diseases. These may include plasma levels of various iron sources and/or Kupffer cell iron load. The iron deposition did not influence the staining of the hepatocellular epidermal growth factor receptor nor the Kupffer cell staining by the BK19.9 antibody. This confirms the specificity of the findings concerning the behaviour of the transferrin receptor in secondary siderosis.

Antibodies, Monoclonal↗

Transferrin associated with the porcine intestinal mucosa is a receptor specific for K88ab fimbriae of Escherichia coli.

Putative receptors of Escherichia coli K88 fimbriae are either tightly membrane bound or an integral part of membranes. Thus, proteins associated with piglet small intestinal mucosae were solubilized by a detergent (deoxycholate). A 74-kDa glycoprotein (GP74) purified from enterocyte and brush border membrane preparations was specifically detected in vitro by K88ab fimbriae. GP74 was recognized only in the mucosae of phenotypically adhesive animals. Metaperiodate treatment abolished the recognition, indicating that K88ab fimbriae-GP74 binding required the carbohydrate moiety. This glycoprotein belongs to the transferrin family and differed from the serum transferrin of the same adhesive-phenotype piglets. Unlike intestinal transferrin, serum transferrin was recognized independently of the adhesion phenotype. The glycan moieties of intestinal and serum transferrins differed in their molar compositions. Transferrin GP74 contained one monosialylated and monofucosylated glycan chain of the N-acetyllactosamine type. Intestinal holotransferrin exhibited pI values of 5.2, 5.3, 5.5, and 5.6, whereas serum holotransferrin pI values ranged between 5.4 and 6.2. Since mucosal transferrin was found intimately entrapped on membranes, we hypothesize that a K88ab fimbriae-transferrin-cell transferrin receptor complex might allow the bacteria to adhere to specific sites of the mucosa.

Amino Acid Sequence↗

Iron acquisition from transferrin by Candida albicans depends on the reductive pathway.

Host-pathogen interactions that alter virulence are influenced by critical nutrients such as iron. In humans, free iron is unavailable, being present only in high-affinity iron binding proteins such as transferrin. The fungal pathogen Candida albicans grows as a saprophyte on mucosal surfaces. Occasionally it invades systemically, and in this circumstance it will encounter transferrin iron. Here we report that C. albicans is able to acquire iron from transferrin. Iron-loaded transferrin restored growth to cultures arrested by iron deprivation, whereas apotransferrin was unable to promote growth. By using congenic strains, we have been able to show that iron uptake by C. albicans from transferrin was mediated by the reductive pathway (via FTR1). The genetically separate siderophore and heme uptake systems were not involved. FRE10 was required for a surface reductase activity and for efficient transferrin iron uptake activity in unbuffered medium. Other reductase genes were apparently up-regulated in medium buffered at pH 6.3 to 6.4, and the fre10(-/-) mutant had no effect under these conditions. Experiments in which transferrin was sequestered in a dialysis bag demonstrated that cell contact with the substrate was required for iron reduction and release. The requirement of FTR1 for virulence in a systemic infection model and its role in transferrin iron uptake raise the possibility that transferrin is a source of iron during systemic C. albicans infections.

Apoproteins↗

The iron carrier transferrin is upregulated in retinas from patients with age-related macular degeneration.

PURPOSE: Iron can cause oxidative stress, and elevated iron levels have been associated with several neurodegenerative diseases including age-related macular degeneration (AMD). Transferrin, an iron transport protein, is expressed at high levels in the retina. The purpose of this study was to assess transferrin involvement in AMD by determining the expression profile of transferrin in retinas with AMD compared with retinas without evidence of disease. METHODS: Postmortem retinas were obtained from AMD and non-AMD eyes. Expression of transferrin was assessed in a microarray dataset from 33 retinas of unaffected donors and 12 retinas of patients with AMD (six with neovascular AMD and six with non-neovascular AMD). Quantitative real-time RT-PCR (QPCR) was used to confirm the microarray results. Transferrin protein expression was assessed by semiquantitative Western blot analysis and immunohistochemistry. RESULTS: In comparison to unaffected retinas, mean transferrin mRNA levels, as measured by microarray analysis were elevated 3.5- and 2.1-fold in non-neovascular and neovascular AMD retinas, respectively. Semiquantitative Western blot analysis demonstrated a 2.1-fold increase in transferrin protein in AMD eyes. Immunohistochemistry showed more intense and widespread transferrin label in AMD maculas, particularly in large drusen, Müller cells, and photoreceptors. CONCLUSIONS: These data demonstrate that transferrin expression is increased in the retinas of patients with AMD relative to those of healthy control patients of comparable age. Along with previous studies that have demonstrated elevated iron levels in AMD retinas, early onset drusen formation in a patient with retinal iron overload resulting from aceruloplasminemia, and retinal degeneration with some features of macular degeneration in the iron-overloaded retinas of ceruloplasmin/hephestin knockout mice, the present study suggests that altered iron homeostasis is associated with AMD.

Adult↗

Endocytosis and intracellular transport of transferrin across the lactating rabbit mammary epithelial cell.

To study the transcytosis and segregation of ligand in the mammary epithelial cell, endocytosis and intracellular transit of human blood transferrin were followed in lactating rabbit mammary epithelial cells. Human transferrin labeled with biotin added to an incubation medium was bound to the basal membrane of mammary epithelial cells and carried across the cell to the lumen of the acini within 5-60 min. At the same time, biotinylated human transferrin accumulated at the apex of the cell. After incubation with human transferrin labeled with colloidal gold, label was detected inside endosome-like structures, vesicles and saccules of the Golgi apparatus, and inside the lumen within 2-5 min. A significant label accumulated at the apex of the cell after 30-60 min. Biotin labeling did not modify the time of transit of human transferrin, as attested by comparison with the time of transit of native transferrin. Human transferrin was never detected inside vesicles containing casein micelles. In contrast, rabbit milk transferrin was immunocytochemically detected inside vesicles containing casein micelles. These results indicate that transcytosis of human transferrin follows a pathway different from vesicles that carry casein micelles.

Animals↗

Relationship between transferrin saturation and iron stores in the African American and US Caucasian populations: analysis of data from the third National Health and Nutrition Examination Survey.

In previous analyses of transferrin saturation data in African Americans and Caucasians from the second National Health and Nutrition Examination Survey (NHANES II), subpopulations were found consistent with population genetics for common loci that influence iron metabolism. The goal of this new study was to determine if these transferrin saturation subpopulations have different levels of iron stores. Statistical mixture modeling was applied to transferrin saturation data for African Americans and Caucasians from the third National Health and Nutrition Examination Survey (NHANES III), and then the mean serum ferritin concentrations were determined for the transferrin saturation subpopulations that were identified. After adjustment for diurnal variation, 3 subpopulations of transferrin saturation were identified in each racial group. Satisfying Hardy-Weinberg conditions for major locus effects, in both racial groups the sum of the square roots of the proportion with the lowest mean transferrin saturation and the proportion with the highest mean transferrin saturation was approximately 1. When weighted to reflect the US adult population as a whole, these subpopulations of increasing transferrin saturations had progressively increasing mean age-adjusted serum ferritin concentration values in each ethnic grouping as stratified by sex (trend test, P <.002 for all). These results are consistent with the concept that population transferrin saturation subpopulations reflect different levels of storage iron.

Adult↗

Role of basic-helix-loop-helix transcription factors in Sertoli cell differentiation: identification of an E-box response element in the transferrin promoter.

Sertoli cells are critical for testicular function and maintenance of the spermatogenic process. The induction of Sertoli cell differentiation in the embryo promotes testicular development and male sex determination. The progression of Sertoli cell differentiation during puberty promotes the onset of spermatogenesis. The maintenance of optimal Sertoli cell differentiation in the adult is required for spermatogenesis to proceed. The current study was designed to investigate the transcriptional regulation of Sertoli cell differentiation through the analysis of a previously identified marker of differentiation, transferrin gene expression. Sertoli cells produce transferrin to transport iron to developing spermatogenic cells sequestered within the blood-testis barrier. The transferrin promoter was characterized and found to contain two critical response elements, designated Sertoli element 1 (SE1) and Sertoli element 2 (SE2). Through sequence analysis, SE2 was found to contain an E-box response element, which has been shown to respond to basic-helix-loop-helix (bHLH) transcription factors. The bHLH proteins are a class of transcription factors associated with the induction and progression of cell differentiation. bHLH proteins dimerize through the conserved helix-loop-helix region and bind DNA through the basic region. Nuclear extracts from Sertoli cells were found to cause an E-box gel shift when the cells were stimulated to differentiate in culture, but not under basal conditions. The SE2 gel shift of Sertoli nuclear extracts was competed with excess unlabeled SE2 or E-box DNA fragments. Several Sertoli nuclear proteins associate with the SE2 gel shifts, including 70-, 42-, and 25-kDa proteins. Therefore, the critical SE2 element in the transferrin promoter is an E-box element capable of binding bHLH transcription factors. The ubiquitously expressed E12 bHLH protein dimerizes with numerous cell-specific bHLH factors. A Western blot analysis demonstrated that E12 was present in Sertoli cell nuclear extracts and associated with the SE2 gel shift. A ligand blot of Sertoli cell nuclear extracts with radiolabeled E12 had apparent bHLH proteins when the cells were stimulated to differentiate. The E-box sequence in the SE2 fragment of the transferrin promoter was CATCTG and was similar in gel shifts to the consensus E-box elements (CANNTG) previously characterized. A bHLH inhibitory factor (Id) competed and inhibited formation of the Sertoli cell nuclear extract E-box gel shift. To extend this observation, Id protein was overexpressed in cultured Sertoli cells. A transferrin promoter chloramphenicol acetyltransferase construct was used to monitor Sertoli cell function. The presence of Id suppressed the activation of the promoter induced by Sertoli differentiation factors. Therefore, the inhibition of Sertoli bHLH factors by Id suppressed Sertoli cell differentiated function, as measured by transferrin expression. An E-box-chloramphenicol acetyltransferase construct was also found to be active in Sertoli cells when cells were induced to differentiate. Screening the computerized nucleotide data bases demonstrated that putative E-box response elements are present in the promoters of a large number of Sertoli cell differentiated genes. In summary, a critical E-box response element has been identified in the transferrin promoter that can be activated by bHLH factors (e.g. E12) present in Sertoli cells. Inhibition of Sertoli bHLH factors by Id suppresses Sertoli cell differentiated function (i.e. transferrin expression), suggesting that bHLH transcription factors may be important in regulating Sertoli cell differentiated functions.

Animals↗

Pseudomonas aeruginosa alkaline protease can facilitate siderophore-mediated iron-uptake via the proteolytic cleavage of transferrins.

In order to determine whether Pseudomonas aeruginosa alkaline protease AprA is involved in facilitating siderophore-mediated iron-acquisition from human transferrins, we measured bacterial growth, the production of siderophore and AprA, iron-acquisition from transferrins, and the proteolytic cleavage of transferrins in an alkaline minimal medium (pH 8.3) containing human transferrins as an iron source and compared these on a time scale. The growth of P. aeruginosa was found to be stimulated in proportion to the iron-saturation levels of transferrins. AprA production and the proteolytic cleavage of transferrins began concomitantly with siderophore production from the early growth phase when P. aeruginosa was actively growing and consuming most iron for growth. However, the AprA-free, but siderophore-containing, culture ultrafiltrates could also remove iron from transferrin. These results indicate that alkaline protease AprA can facilitate the siderophore-mediated iron-uptake of P. aeruginosa via the proteolytic cleavage of transferrins. However, the proteolytic cleavage by AprA is not essentially required for iron-acquisition from transferrins.

Anemia, Iron-Deficiency↗

Transferrin-iron uptake by Gram-negative bacteria.

Members of the families Neisseriaceae, Pasteurellaceae and Moraxellaceae are capable of transferrin-iron acquisition in the absence of siderophore production. They do so via expression of a bi-partite receptor composed of two dissimilar proteins, TbpA and TbpB. Both proteins are surface exposed, iron-regulated and capable of binding transferrin. However, other physiochemical, antigenic, and immunogenic characteristics of the proteins are quite distinct. TbpB is a lipoprotein, which like the mammalian transferrin receptor is capable if discriminating between apo- and holo-transferrin. Expression of TbpB is not essential for transferrin-iron uptake, and in rare situations, the gene that encodes this protein is not linked to the gene encoding the second component. TbpA is a member of a family of TonB-dependent transporters, others of which accomplish ferric-siderophore and vitamin B12 uptake at the expense of a proton gradient across the cytoplasmic membrane. However, unlike the other TonB-dependent receptors where vitamins or ferric-siderophores are wholly internalized, the bacterial transferrin receptor must remove iron from transferrin at the cell surface. This review focuses on the structure-function relationships in the transferrin-binding proteins, their sequence and antigenic diversity, and the mechanisms by which they accomplish transferrin-iron uptake. The contribution of these proteins to pathogenesis and vaccine development based on TbpA and TbpB are also discussed.

Amino Acid Sequence↗

Synthesis of lactoferrin and transport of transferrin in the lactating mammary gland of sheep.

Two iron-binding proteins, lactoferrin and transferrin, are present in ruminant milk. Lactoferrin commonly has been assumed to be a product of mammary synthesis, but the origin of milk transferrin has not been elucidated. The objective of this experiment was to study the synthesis and distribution of these two proteins in the mammary gland of sheep. Explants from lactating mammary gland of sheep have been cultured in the presence of [3H]leucine to determine rates of synthesis of lactoferrin and transferrin. After incubation, [3H]lactoferrin was found, but labeled transferrin was not. The capacity of the mammary gland to synthesize lactoferrin decreased markedly in the first 24 h of lactation. Immunohistochemical techniques were utilized to identify the locations of lactoferrin and transferrin in the mammary gland. Transferrin was found in the colostrum contained in the alveolar lumen, in the cytoplasm of the secretory cells, and in the connective tissue between the mammary acini. High concentration of transferrin was found in the basal membrane of the secretory alveolar cells, mainly in those near capillary vessels. Lactoferrin was found in the colostrum and in the cytoplasm of secretory cells with a more homogeneous distribution than transferrin. The connective tissue stained negative for lactoferrin. These results suggest that, although lactoferrin is synthesized by mammary gland of the sheep, transferrin comes from blood serum, probably by a receptor-mediated mechanism of transcytosis.

Animals↗

Immunofixation to quantify beta 2-transferrin in cerebrospinal fluid to detect leakage of cerebrospinal fluid from skull injury.

beta 2-Transferrin, the desialated form of transferrin normally found only in cerebrospinal fluid (CSF) and aqueous and vitreous humor, is detected by high-resolution immunofixation (IFE). It is not normally found in nasal or aural fluids, saliva, tears, or serum. Detection in nasal fluid has been suggested to document CSF leakage into the nose after skull injury. We measured beta 2-transferrin in 48 samples of CSF. IFE of the CSF was performed on high-resolution agarose gels and stained with Coomassie Blue. beta 2-Transferrin was estimated by quantifying the total transferrin by rate nephelometry and then determining the percentage of transferrin in the beta 2 vs beta 1 region by densitometric scanning of the IFE pattern. We accurately quantified as little beta 2-transferrin as 2.5 mg/L in the CSF samples. The beta 2-transferrin fraction was clearly visible by IFE at concentrations less than 2.5 mg/L, but accurate quantification was difficult. In the samples assayed, the range of beta 2-transferrin was 4.6 +/- 1.9 mg/L. Use of this technique to examine rhinorrhea in a motor-vehicle-accident patient confirmed leakage of CSF into the nasal cavity through a vent in the left olfactory groove.

Adult↗

Preparation, biodistribution, and small animal PET of 45Ti-transferrin.

UNLABELLED: Investigation of 45Ti-transferrin was pursued to provide insight into the mechanism of action of titanocene dichloride, a chemotherapeutic agent currently in clinical trials. METHODS: Plasma protein-binding studies of processed 45Ti were performed by solubilizing the 45Ti residue in 0.05N HCl, of which 1.22 MBq (33 microCi) in 10 microL were added to 250 microL of dog plasma. 45Ti-Transferrin was prepared by redissolving the processed 45Ti in 25 micromol/L apotransferrin or by in vivo incorporation through preparation and introduction of 45Ti-citrate. Biodistribution studies were performed on normal Sprague-Dawley rats and EMT-6 tumor-bearing BALB/c mice with 45Ti-transferrin coinjected with 67Ga-citrate for direct comparison. microPET was performed on mice bearing EMT-6 tumors and the images were analyzed for tumor-to-muscle uptake ratios. RESULTS: Direct labeling of apotransferrin in situ with 45Ti was achieved as well as in vivo incorporation by 2 h after injection with 45Ti-citrate. The biodistribution of 45Ti-transferrin and 67Ga-citrate showed similar trends. In Sprague-Dawley rats, initial blood uptake was higher for the 45Ti-transferrin, whereas bone uptake increased more for the 67Ga-citrate. EMT-6 tumor uptake in both cases was relatively high (14.6 +/- 1.83 %ID/g for 45Ti and 8.72 +/- 0.98 %ID/g for 67Ga [%ID/g = percentage injected dose per gram]) and remained elevated even out to 24 h after injection. The tumor-to-muscle ratio of the 67Ga-citrate reached 6.7 at 24 h, whereas the ratio of the 45Ti-transferrin increased to 4.3 at this time point. Uptake of 45Ti-transferrin was visualized in the EMT-6 murine mammary carcinoma tumor with microPET. In all cases, the tumor was clearly delineated from the surrounding tissue with tumor-to-muscle ratios on the order of 1.6. CONCLUSION: 45Ti forms a complex with apotransferrin that remains intact in vivo. Results of the biodistribution in mice showed that the tumor had increased uptake compared with nontarget organs (e.g., muscle). The microPET images of tumor-bearing mice clearly delineate the tumors from the surrounding tissue. Comparison of the data suggests that tissue uptake is similar whether injecting 45Ti-transferrin directly or as 45Ti-citrate, which transchelates to transferrin before the time of imaging.

Animals↗