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Pathologic bone formation.

The literature on pathologic bone formation is reviewed first on the basis of clinical syndromes and second in relation to newer knowledge of the origin of the bone-forming cells and regulatory molecules. Pathologic bone formation can be categorized into three groups based on the initiating stimulus: trauma, tumors, and idiopathic causes. In the trauma category, the formation of ectopic bone is concerned with major and minor traumatic incidents, surgery, burns, and other causes. In the tumor category, direct and reactive pathologic bone formation is discussed with an emphasis on the different neoplasms capable of ectopic bone formation. The category of idiopathic causes involves the formation of pathologic bone following neurologic injury and in systemic ossification disorders. The origin of the bone-forming cells in all forms of pathologic bone has not been unequivocally determined. However, there is evidence suggesting that these cells may arise from osteogenic stromal elements. Potent bone formation growth-regulating factors have been recently identified, and these molecules must also participate in the formation of pathologic bone. Increased understanding of the processes that control pathologic bone formation will lead to better methods of preventing and treating disorders of ossification.

Bone Marrow Cells↗

Obligatory role of cholesterol and apolipoprotein E in the formation of large cholesterol-enriched and receptor-active high density lipoproteins.

The formation of large cholesterol-enriched high density lipoproteins (HDL1/HDLc) from typical HDL3 requires lecithin:cholesterol acyltransferase activity, additional cholesterol, and a source of apolipoprotein (apo-) E. The present study explores the role of apo-E in promoting HDL1/HDLc formation and in imparting to these lipoprotein particles the ability to interact with the apo-B,E(low density lipoprotein (LDL] receptor. Incubation of normal canine serum with cholesterol-loaded mouse peritoneal macrophages resulted in the formation of HDL1/HDLc that competed with 125I-LDL for binding to the apo-B,E(LDL) receptors on cultured human fibroblasts. Cholesterol efflux from macrophages was necessary because incubation of normal canine serum with nonloaded macrophages did not cause HDL1/HDLc formation. However, cholesterol delivery to the serum was not sufficient to result in HDL1/HDLc formation. Apolipoprotein E had to be available. Incubation of apo-E-depleted canine serum with cholesterol-loaded J774 cells, a macrophage cell line that does not synthesize apo-E, demonstrated that no HDL1/HDLc formation was detected even in the presence of significant cholesterol efflux. However, addition of exogenous apo-E to the serum during the incubation with cholesterol-loaded J744 cells promoted the formation of large receptor-active HDL1/HDLc. The receptor binding activity of these particles produced in vitro correlated with the amount of apo-E incorporated into the HDL1/HDLc. Apolipoproteins A-I and C-III were ineffective in promoting HDL1/HDLc formation; thus, apo-E was unique in allowing HDL1/HDLc formation. These results demonstrate that when lecithin:cholesterol acyltransferase activity, cholesterol, and apo-E are present in serum, typical HDL can be transformed in vitro into large cholesterol-rich HDL1/HDLc that are capable of binding to lipoprotein receptors.

Animals↗

A role for cyclooxygenase products in the formation of phosphatidic acid in stimulated human platelets. Differential mechanisms of action of thrombin and collagen.

Human platelets prelabeled with (32P)orthophosphate or [14C]arachidonic acid (AA) were stimulated with collagen or thrombin, and platelet activation (shape change, aggregation, and release of serotonin) was determined in parallel to the formation of 32P- or 14C-labeled phosphatidic acid (PA). The results show a close correlation between the degree of platelet activation and the amount of PA formed. Activation of platelets and formation of PA induced by collagen (2 to 20 micrograms/ml) was blocked by pretreatment of platelets with trifluoperazine, indomethacin, aspirin, or N-methylimidazole. This suggests that the formation of AA by phospholipase A2 and its subsequent metabolism by cyclooxygenase and thromboxane synthetase are required for the collagen-induced formation of PA. Endoperoxide analog U-44069 induces formation of PA in human platelets that have been pretreated with or without aspirin. The action of thrombin does not follow the same pattern of collagen. Low concentrations of thrombin (0.05 units/ml) induce only platelet shape change and a small stimulation of PA, changes which are only minimally inhibited by indomethacin. However, a small increase in the thrombin concentration (to 0.1 unit/ml) induces platelet aggregation, release of serotonin, and a sharp increase in PA accumulation which are effectively inhibited by indomethacin. Even higher thrombin concentrations (0.4 to 0.8 units/ml), however, result in a further stimulation of PA formation, platelet aggregation, and release of serotonin which are insensitive to inhibition by indomethacin. The data show that cyclooxygenase metabolites of AA, produced after platelet activation, may be differentially involved in the formation of PA in platelets stimulated with collagen or thrombin. Formation of PA following collagen or intermediate concentrations of thrombin (0.1 to 0.2 units/ml) is dependent on the cyclooxygenase pathway. However, formation of PA by very low or by high concentrations of thrombin is not mediated by cyclooxygenase metabolites of AA.

Blood Platelets↗

Formation and transformation of octacalcium phosphate, OCP: a preliminary report.

Octacalcium phosphate, Ca8H2(PO4)6 X 5H2O (OCP), occurs in pathological calcifications frequently as one of the crystalline components of human dental calculi. OCP has also been presumed a necessary precursor of biological apatites in both normal (enamel, dentine, cementum, bones) and pathological (e.g., phosphatic renal stones) calcifications. This study investigated the optimum conditions for the direct in vitro formation of OCP in solutions and in gel systems and the factors affecting its formation and transformation or hydrolysis to apatite. It was observed in both solution and gel systems that the formation of OCP was dependent on definite conditions of pH and temperature (the higher the temperature the lower the pH at which OCP forms, and vice versa), and on the presence of other ions. The presence of pyrophosphate inhibited OCP formation favoring instead the formation of amorphous calcium phosphate while the presence of citrate or carbonate favored the formation of "apatitic" calcium phosphate at the expense of OCP. The presence of oxalate ions caused the formation of mixed OCP/calcium oxalate phases. Hydrolysis of OCP to apatite was suppressed in the presence of magnesium or pyrophosphate, and promoted in the presence of carbonate or fluoride ions. In the presence of oxalate ions, partial hydrolysis of OCP to calcium oxalate and not to apatite was observed. Results from this study give insights on the factors (e.g., pH, temperature, presence of ions besides calcium and phosphate) which influence the formation of OCP and its transformation to apatite and/or calcium oxalate. Ions which demonstrated significant effect on the formation and/or transformation of OCP were magnesium, pyrophosphate, carbonate, citrate, fluoride and oxalate.

Apatites↗

Inhibition of human bone marrow fibroblast colony formation by leukemic cells.

The number of bone marrow fibroblast colony formations decreases in most cases of acute leukemia before the initiation of chemotherapy. This study was undertaken to clarify the mechanism of suppression of fibroblast colony formation in leukemic patients. Titration of the number of bone marrow cells did not indicate a linear relationship between the number of bone marrow cells cultured and the number of fibroblast colony formations. The number of fibroblast colony formations recovered by removal of nonadherent leukemic cells following one day of incubation increased. The cloning efficiency of patient bone marrow still showed increases in colony formation at higher plating concentrations after the nonadherent cells were removed. When leukemic and normal bone marrow cells were cocultured, the suppressive effect of leukemic cells on normal marrow fibroblast colony formation was clearly observed. The suppressive effect disappeared at complete remission, and then reappeared at relapse. Heat-inactivated serum and bone marrow culture media from leukemic patients whose fibroblast colony formations were small in number suppressed fibroblast colony formation from normal bone marrow. From these results, it was concluded that the suppression of fibroblast colony formation in leukemic patients was through humoral factors produced by leukemic cells.

Acute Disease↗

Radiation-induced DNA damage in tumors and normal tissues. III. Oxygen dependence of the formation of strand breaks and DNA-protein crosslinks.

Results from several laboratories, including ours, have suggested that measurements of radiation-induced DNA strand breaks and DNA-protein crosslinks (DPCs) may be used to estimate the hypoxic fraction or fractional hypoxic volume of tumors and normal tissues. This suggestion has been predicted on both published and unpublished information that (1) the oxygen dependence of the formation of strand breaks in irradiated mammalian cells is similar to the oxygen dependence of radiation-induced cell killing, and (2) the oxygen dependence of the formation of DPCs in irradiated mammalian cells is the mirror image of the oxygen dependence of radiation-induced cell killing. However, the published studies that attempted to determine the relationship between the oxygen dependence of the formation of strand breaks and the radiation sensitivity of mammalian cells were not performed at 37 degrees C, the exact oxygen concentrations were not always known, and the results were conflicting. In addition, most of the data on the oxygen dependence of the formation of DPCs are unpublished. Consequently, we have undertaken a comprehensive investigation of one cell line, 9L/Ro rat brain tumor cells, to determine if the shape of the oxygen dependence curve and the Km value for radiation-induced strand breaks and DPCs were similar when 9L cells were irradiated under both ideal gas-liquid equilibrium conditions at 4 degrees C and nonideal gas-liquid equilibrium conditions at 37 degrees C. At 4 degrees C under ideal gas-liquid equilibrium conditions, the Km for the formation of strand breaks was approximately 0.0045 mM, and the Km for radiation sensitivity was approximately 0.005 mM. A similar comparison for the formation of DPCs at 4 degrees C could not be made, because the efficiency of the formation of DPCs was much lower at 4 degrees C than at 37 degrees C. At 37 degrees C under nonideal gas-liquid equilibrium conditions, the apparent Km for the formation of strand breaks and radiation sensitivity was approximately 0.032 mM, and the Km for the formation of DPCs was approximately 0.02 mM. The data for strand breaks are in agreement with the published data of Chapman et al. (Int. J. Radiat. Biol. 26, 383-389, 1974), and the data for DPCs are in agreement with the unpublished data of Meyn (personal communication). These results support the suggestion that measurements of radiation-induced strand breaks and/or DPCs may be used to detect hypoxic cells and estimate the hypoxic fraction or fractional hypoxic volume of tumors and normal tissues.

Animals↗

Inflammatory granuloma formation is mediated by TNF-alpha-inducible intercellular adhesion molecule-1.

Recent studies have demonstrated a crucial role for TNF during inflammatory granuloma formation. In addition, TNF has been shown to up-regulate adhesion molecules that participate in cellular recruitment and lymphocyte activation. In the present study, we have examined the mechanism of TNF activation during Schistosoma mansoni egg granuloma formation and its relationship to the expression of ICAM-1. Our initial studies showed that high affinity human soluble TNFR coupled to the Fc portion of an Ig (sTNFR:Fc construct) could effectively diminish granuloma formation and lymphocyte activation in vivo. We have also assessed the increased expression of ICAM-1, its contribution to granuloma development, and its relationship with TNF during lesion formation. Increased steady state ICAM-1 mRNA expression was observed in primary egg granulomas when compared with normal lung and foreign body (Sephadex bead) granulomas, which suggests a role for ICAM-1 in Ag-induced lesion formation. Subsequent studies have demonstrated that sTNFR:Fc treatment down-regulated granuloma formation and ICAM-1 expression, thus suggesting one mechanism of TNF involvement in granuloma formation was through the induction of ICAM-1. Anti-ICAM-1 decreased the soluble egg Ag-specific T cell proliferation in vitro. In addition, passive immunization of mice with anti-ICAM-1 mAb during primary granuloma formation resulted in an attenuation of lesion development as compared with lesion development in a control Ab-treated group. The proliferative response to soluble egg Ag was also significantly reduced in ex vivo experiments that used spleen cells from the anti-ICAM-1 treated mice. These data demonstrate that both TNF and ICAM-1 participate in lymphocyte activation and granuloma formation and suggest that one mechanism of TNF in granuloma development is through TNF-induced ICAM-1 expression.

Animals↗

Protein kinase C is involved in cyclic adenosine monophosphate formation due to PGF2 alpha desensitization in bovine iris sphincter.

PURPOSE: To examine the mechanisms underlying the effects of PGF2 alpha receptor desensitization on agonist-induced second messenger formation and contraction in bovine iris sphincter. METHODS: Short-term PGF2 alpha receptor desensitization of the bovine iris sphincter was carried out by incubating the tissue in Krebs-Ringer bicarbonate buffer containing 25 microM PGF2 alpha for 45 min at 37 degrees C. The effects of PGF2 alpha and other pharmacologic agents on inositol 1,4,5-triphosphate (IP3) production and cyclic adenosine monophosphate (cAMP) formation in desensitized and nondesensitized tissues were monitored by anion-exchange chromatography and radioimmunoassay. RESULTS: In the isolated bovine iris sphincter, protein kinase C (PKC) is involved in the activation of adenylate cyclase and the desensitization of prostaglandin F2 alpha receptor-mediated responses supported by these findings. (A) Exposure of the tissue to phorbol 12,13-dibutyrate, used to activate PKC, enhanced basal cAMP formation in a dose (EC50 = 8.8 x 10(-8) M) and time (t1/2 = 7.5 min) dependent manner. Phorbol 12,13-dibutyrate increased cAMP levels by twofold and it potentiated the isoproterenol-induced cAMP formation. The biologically inactive phorbol ester, 4 alpha-phorbol had no effect. Staurosporine, a potent PKC inhibitor, inhibited phorbol 12,13-dibutyrate-induced cAMP formation in a dose-dependent manner (IC50 of 0.25 microM). The increase in cAMP levels by phorbol 12,13-dibutyrate results from stimulation of adenylate cyclase, rather than from inhibition of cAMP phosphodiesterase, and it is not mediated through Ca2+ mobilization. Pretreatment of the tissue with phorbol 12,13-dibutyrate inhibited IP3 production in response to PGF2 alpha. (B) Desensitization of the sphincter with PGF2 alpha for 45 min increased cAMP formation and attenuated IP3 production and contraction. The effects of PGF2 alpha desensitization were reversed by pretreatment of the tissue with staurosporine. Down-regulation of PKC prevented the PGF2 alpha-stimulated increase in cAMP formation. In the desensitized tissue, diacylglycerol, the endogenous activator of PKC, may arise from phosphatidylcholine, via phospholipase D. CONCLUSIONS: (A) Activation of PKC in the bovine iris sphincter leads to stimulation of adenylate cyclase and to an increase in cAMP formation. The cAMP formed inhibits IP3 production and muscle contraction. (B) PGF2 alpha desensitization results in adenylate cyclase activation, mediated through PKC. (C) PGF2 alpha desensitization could uncouple the receptor from the Gq and Gi proteins and enhance PG stimulation of adenylate cyclase activity through the Gs protein. (D) Uncoupling of the G proteins from the PG receptor and activation of PKC, both of which result in enhanced cAMP formation, may underlie the mechanism of PGF2 alpha desensitization. (E) These observations demonstrate "cross talk" between the two second messenger systems and their physiologic consequences.

Adenylyl Cyclases↗

Phenytoin-initiated hydroxyl radical formation: characterization by enhanced salicylate hydroxylation.

Bioactivation of phenytoin and related teratogens by peroxidases such as prostaglandin H synthase (PHS) may initiate hydroxyl radical (.OH) formation that is teratogenic. Salicylate is hydroxylated by .OH at the third and fifth carbon atoms, forming 2,3- and 2,5-dihydroxybenzoic acids (DHBA). In vivo salicylate metabolism produces only the 2,5-isomer, so 2,3-DHBA formation may reflect .OH production. In the present study, we validated the salicylate assay using the known .OH generator paraquat and evaluated .OH production by phenytoin. Female CD-1 mice were treated with paraquat (30 mg/kg, intraperitoneally) given 30 min after acetylsalicylic acid (ASA) (200 mg/kg, intraperitoneally). Blood was collected at 5, 15, and 30 min and 1 and 2 hr after paraquat, and plasma was analyzed for DHBA isomers and glucuronide conjugates by high performance liquid chromatography with electrochemical detection. Paraquat increased 2,3-DHBA formation 19.2-fold, with substantial inter-individual variability in the time of maximal formation (p = 0.0001). The 2,3-DHBA glucuronide conjugates in vivo and in hepatic microsomal studies amounted to approximately 11% and 0.43%, respectively, of total 2,3-DHBA equivalents. To investigate putative .OH production initiated via PHS-catalyzed phenytoin bioactivation, ASA was given 30 min before phenytoin (65 or 100 mg/kg, intraperitoneally), resulting in respective 7.6-fold (p = 0.02) and 14.2-fold (p = 0.003) increases in phenytoin-initiated maximal 2,3-DHBA formation. Maximal 2,3-DHBA formation was 2.1-fold higher when ASA was administered after rather than before the same dose (65 mg/kg) of phenytoin (p = 0.03), indicating ASA inhibition of PHS-catalyzed phenytoin bioactivation. Urinary analysis was much less sensitive, and the 2,5-isomer reflected enzymatic rather than .OH-mediated hydroxylation. The paraquat studies demonstrate the importance of timing in accurately quantifying 2,3-DHBA formation and suggest that glucuronidation does not interfere. The substantial, dose-dependent initiation of 2,3-DHBA formation by phenytoin, and its inhibition by ASA, provide the first in vivo evidence that PHS-dependent .OH formation could contribute to the molecular mechanism of phenytoin teratogenesis.

Animals↗

Slow cluster formation of purified human or rhesus T cells requires protein kinase C and LFA-1.

Homotropic T cell adhesion, as generally studied, consists of a rapid, transient binding process that is measured over a 15-120 min. period. Here we report a slow type of adhesion process occurring with human or rhesus T cells, purified from peripheral blood, that manifests itself by the formation of rounded, multi-layer clusters which may contain hundreds of cells. The maximal number and size of the clusters peak 1-2 days after the addition of phorbol ester, an absolute requirement. The number of clusters formed is proportional to phorbol ester concentration up to 1.25 ng/mL. Phorbol esters such as phorbol myristate acetate (PMA), phorbol dibutyrate (PDB), and 7-octylindolactam (OIL) induced optimal cluster formation at 1-13 ng/mL, levels slightly higher than that required to induce mitogenesis of purified T cells. Phorbol itself and the alpha-form of the ester were inactive. Both cluster formation and mitogenesis (stimulated by Con A or anti-CD3) are completely inhibited by staurosporin at 12.5 ng/mL. Even at 2.5 ng/mL, 74% of cluster formation was inhibited, which strongly implies a crucial role for protein kinase C. In the presence of accessory cells, T cell clusters were suppressed. Monoclonal Ab such as anti-CD3, mouse anti-CD3 followed by anti-mouse IgG, anti-CD4, anti-CD4A, anti-CD2, anti-CD8, and anti-CD45 did not induce cluster formation. None were inhibitory or stimulatory in the presence of PMA, except for anti-CD3 which enhanced cluster formation by 26%. However, anti-LFA-1 beta-chain (mouse monoclonal) completely blocked cluster formation over the range studied (63-1000 ng/mL) for both human and rhesus cells; rat anti-LFA-1 only blocked human cell adhesion. Anti LFA-1 only partially inhibited T cell mitogenesis. These results show that slow cluster formation shares the LFA-1 and phorbol ester requirements of the rapid adhesion of T cells requiring LFA-1 and ICAM-1. However, cluster occurs at a very low phorbol ester concentration, appears more sensitive to staurosporin inhibition, and is not stimulated via the TCR receptor like the rapid adhesion process. We hypothesize that certain neuronal processes, induced by phorbol ester, and which also show a similar protein kinase C activation time course, may share mechanisms in common with cluster formation.

Animals↗

Dual-energy X-ray absorptiometry predicts bone formation in lower limb callotasis lengthening.

The rate of regenerate bone mineral content (BMC) acceleration was studied using dual-energy X-ray absorptiometry (DEXA) in callotasis lengthening of the lower limb. Eleven youngsters (age range 5-17 years) undergoing callotasis lengthening for congenital, post-traumatic or post-infective conditions were studied longitudinally. Patients were initially scanned once a week until completion of the lengthening phase, and at 2-week intervals thereafter until removal of the fixator. They were subsequently followed up at regular intervals on an outpatient basis for up to 2 years after removal of the fixator (average, 14 months). The BMC accretion slopes exhibited by the patients and the rate of new bone formation allowed the identification of three groups. In the fast formation group, the rate of new bone formation was 0.3-0.6% per day. In the moderate formation group the rate of new bone formation is 0.1-0.3% per day, while in the poor formation group the rate of new bone formation is < 0.1% per day. From the analysis of time graphs, a direct correlation emerged between early bone formation and subsequent bone mineral content accretion. Measurement of BMC during callotasis lengthening in the lower limb allows precise monitoring of the process. It may prove useful to prevent complications occurring after removal of the fixator at an unduly early stage, such as plastic deformation and fracture through the regenerate bone. It may be used to predict the bone formation rate in a given patient, and to implement measures to try to influence it.

Absorptiometry, Photon↗

Biochemical evidence for formate transfer in syntrophic propionate-oxidizing cocultures of Syntrophobacter fumaroxidans and Methanospirillum hungatei.

The hydrogenase and formate dehydrogenase levels in Syntrophobacter fumaroxidans and Methanospirillum hungatei were studied in syntrophic propionate-oxidizing cultures and compared to the levels in axenic cultures of both organisms. Cells grown syntrophically were separated from each other by Percoll gradient centrifugation. In S. fumaroxidans both formate dehydrogenase and hydrogenase levels were highest in cells which were grown syntrophically, while the formate-H(2) lyase activities were comparable under the conditions tested. In M. hungatei the formate dehydrogenase and formate-H(2) lyase levels were highest in cells grown syntrophically, while the hydrogenase levels in syntrophically grown cells were comparable to those in cells grown on formate. Reconstituted syntrophic cultures from axenic cultures immediately resumed syntrophic growth, and the calculated growth rates of these cultures were highest for cells which were inoculated from the axenic S. fumaroxidans cultures that exhibited the highest formate dehydrogenase activities. The results suggest that formate is the preferred electron carrier in syntrophic propionate-oxidizing cocultures of S. fumaroxidans and M. hungatei.

Biological Transport↗

[Two ways of formate oxidation in methylotrophic bacteria].

The cells of Achromobacter parvulus, strain 1T, when grown in a methanol-containing medium, have two formate dehydrogenases, i.e. NAD-linked formate dehydrogenase and the formate dehydrogenase reducing the ferricyanide and tetrazolia. Only the latter enzyme was found in the cells grown in a medium with glycerol as a carbon source. These enzymes differ with respect to Km for formate and antigenic specificity. Km for formate oxidation by the cells of A. parvulus is lower than for formate of the NAD-dependent formate dehydrogenase and is equal to Km for the enzyme reducing artificial electron acceptors. The results obtained are discussed in terms of the existence of two cytochrome oxidase systems in the methylotrophic bacteria, differing in their sensitivities to the inhibition by formate.

Alcaligenes↗

Oxalate and formate in Alcaligenes and Pseudomonas species.

Oxalate is metabolized by the glycerate pathway involving glyoxylate carboligase in Alcaligenes LOx and Pseudomonas KOx, and by the serine pathway involving hydroxypyruvate reductase in Ps.MOx and Ps.AM1 (var. 470). Although A.LOx does not grow on formate, stimulation of growth was observed in the presence of amino acids and a few Kreb's cycle intermediates. A.LOx possesses two different mechanisms for the oxidation of formate: (1) the constitutive formate oxidase which is present in the particulate fraction of oxalate-grown and succinate-plus-formate-grown cells; (2) the inducible NAD-linked formate dehydrogenase present in the 100 000 x g supernatant fraction of the cell-free extracts of oxalate-grown cells alone. The two systems occur simultaneously in oxalate-grown cells. The effect of inhibitors on formate oxidase activity and the other enzyme activities of the particulate formate-oxidizing fraction indicate that the oxidation of formate is linked to the respiratory chain.

Alcaligenes↗

The feedback circuit connecting the superior colliculus and central mesencephalic reticular formation: a direct morphological demonstration.

The central mesencephalic reticular formation (cMRF) has been distinguished from the surrounding reticular formation due to its involvement in the control of saccades. A role in saccade function has been proposed for this region based on electrical-stimulation experiments, its neuronal activity, and its pattern of connections. The present study was undertaken in an attempt to further characterize the location of the central mesencephalic reticular formation by anatomical methods and to examine its connections with the superior colliculus at the neuronal level. Biotinylated dextran amine (BDA) was injected into the superior colliculus of two cynomolgus monkeys (Macaca fascicularis). This resulted in the retrograde labeling of a large number of neurons in a restricted area of the mesencephalic reticular formation. They were distributed bilaterally, with an ipsilateral predominance, forming a cellular band in the ventral half of the midbrain reticular formation that was 2.7 mm in its rostrocaudal extent. Its rostral pole lay dorsolateral to the red nucleus and ventrolateral to, but not immediately adjacent to, the interstitial nucleus of Cajal. The cell band was widest caudally, where it occupied an area of approximately 2.7 mm wide and 2 mm in depth. Labeled neurons displayed a wide variety of multipolar somatic shapes and sizes, with long, slightly tapering, sparsely branched dendrites. Tectal terminal arbors were also labeled within the mesencephalic reticular formation. They were concentrated bilaterally, with an ipsilateral predominance, in the same areas that contained retrogradely labeled neurons. Numerous, primarily en passant labeled boutons of various sizes and shapes were seen in close association with both labeled and unlabeled neurons. They formed axosomatic and, more commonly, axodendritic relationships with labeled neurons. The extensive relationship of labeled terminals and labeled cells suggests the existence of a strong interconnection between the deeper layers of the colliculus and the central mesencephalic reticular formation neurons projecting back to the tectum. The bidirectional neural circuit directly demonstrated in this study presumably provides an anatomical substrate for feedback modification of gaze signals generated in the colliculus. However, the presence of tectal terminals around unlabeled reticular neurons suggests that the collicular signal may also be fed forward to the downstream targets of the central mesencephalic reticular formation.

Animals↗

A second phenazine methosulphate-linked formate dehydrogenase isoenzyme in Escherichia coli.

A biochemical and immunological study has revealed a new formate dehydrogenase isoenzyme in Escherichia coli. The enzyme is an isoenzyme of the respiratory formate dehydrogenase (FDH-N) which forms part of the formate to nitrate respiratory pathway found in the organisms when it is grown anaerobically in the presence of nitrate. The new enzyme, termed FDH-Z, cross reacts with antibodies raised to FDH-N and possesses a similar polypeptide composition to FDH-N. FDH-Z catalyses the phenazine methosulphate-linked formate dehydrogenase activity present in the aerobically-grown bacterium. FDH-Z and FDH-N exhibit distinct regulation. Like formate dehydrogenase N, formate dehydrogenase Z is a membrane-bound molybdoenzyme. With nitrate reductase it can catalyse electron transfer between formate and nitrate. Quinones are required for the physiological electron transfer to nitrate. It seems likely that like FDH-N, FDH-Z functions physiologically as a formate: quinone oxidoreductase.

Electron Transport↗

Reticular formation influence on neuronal transmission from perforant pathway through dentate gyrus.

Electrical stimulation of the perforant pathway discharges granule cell synchronously, giving rise to a characteristic evoked potential in the granule cell layer termed here the evoked action potential or EAP. In freely moving rats, we applied 3 pulses of low intensity electrical stimulation to the medullary reticular formation prior to the application of the perforant path pulse. The effect of prior reticular formation stimulation was a marked augmentation of the normal EAP response to the perforant path stimulus. The augmentation was dependent on the behavioral state of the experimental animal (it occurred during slow-wave sleep but not during still, alert behavior) and was eliminated by anesthetic agents. The latency of EAP augmentation effect (minimum effective time interval between application of the reticular formation stimulus and the perforant path pulse) was 13--18 msec. In order to localize the sites in the medullary reticular formation from which EAP augmentation could be elicited, threshold currents for producing the effect were determined during dorso-ventral penetrations of a reticular formation stimulating electrode. EAP augmentation was elicited at low stimulus currents from a relatively broad region of the reticular formation. It was also noted that reticular formation stimulation which produced EAP augmentation always elicited one or more motor responses of the neck, back, face or vibrissae. Subsequent investigation of the pathways underlying these motor responses suggested that the effect of reticular formation stimulation on granule cell excitability was mediated by a polysynaptic pathway, the first segment of which was a projection to cells of nucleus gigantocellularis of the caudal medulla.

Afferent Pathways↗

A sensitive determination of uric acid in serum using uricase/catalase/formaldehyde dehydrogenase coupled with formate dehydrogenase.

We developed and evaluated an assay for serum uric acid based on the uricase (EC 1.7.3.3)-catalase (EC 1.11.1.6)-formaldehyde dehydrogenase (FADH, EC 1.2.1.46) method coupled with formate dehydrogenase (formate:NAD oxidoreductase, FDH, EC 1.2.1.2). Formate dehydrogenase from Pseudomonas oxalaticus catalyzes the formation of NADH from formate produced by FADH. Owing to the NADH and formate oxidase activity of the FDH itself, the full reaction curve is not linear, but gradually decreases. The formation of NADH is not stoichiometric with formate removal, but is strictly proportional to it. To overcome this decrease of extinction, we added hydroxylamine hydrochloride to the FDH. The sensitivity of the full reaction in the presence of FDH was about 1.8 times that without FDH. Analysis with a Cobas Bio centrifugal analyzer revealed a linearity of up to 3.56 mmol/L. The uricase-catalase-alcohol dehydrogenase method correlated well with the uricase-peroxidase-chromogen method. Our method is more sensitive than other methods.

Aldehyde Oxidoreductases↗