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R T Dean

Publications and source records attributed to R T Dean.

At least 91 records · Page 5Linked to original sources

External imaging of atherosclerosis in rabbits using an 123I-labeled synthetic peptide fragment.

The oligopeptide fragment of apolipoprotein B, SP-4, has demonstrated pronounced uptake in the healing edges of balloon-injured rabbit aortic endothelium. To assess 123I-labeled SP-4 for identification of atherosclerotic plaques by gamma camera imaging, 14 Watanabe heritable hyperlipidemic (WHHL) and 5 normal rabbits were imaged 5 minutes and 12 and 24 hours after intravenous injection of 123I-SP-4. In addition, two WHHL and two normal rabbits were injected with 125I-SP-4 for autoradiography. Twelve of the 14 WHHL, but none of the normal, rabbits had visually apparent focal radioiodine accumulation in the region of the aorta. Focus-to-lung and focus-to-heart count ratios were 2.4 +/- 1.3 and 1.0 +/- 0.4, respectively. Five of the visually positive WHHL rabbits were reimaged 4 and 8 weeks later with 123I-NaI and 123I-SP-2 (an apo E peptide), respectively, as negative controls. Perceptible, but faint, aortic localization of 123I-NaI and of 123I-SP-2 was seen in only one animal each. The distributions of atherosclerotic lesions on photographs of the opened WHHL aortas and of film blackening on 125I-SP-4 autoradiograms were identical. In contrast, the two normal rabbit aortas did not exhibit plaques on photographs or film blackening on autoradiograms. Thus, in an animal model closely simulating human atherosclerotic disease, SP-4 localizes specifically in aortic atherosclerotic lesions.

Amino Acid Sequence↗

Does superoxide radical have a role in macrophage-mediated oxidative modification of LDL?

Low-density lipoprotein (LDL) oxidation induced by superoxide radicals generated in a cell-free system could not stimulate the subsequent development of high-uptake LDL during incubation in a medium normally permissive for cell-mediated oxidation. Similarly, LDL oxidative modification by macrophages was not accelerated when extracellular superoxide generation was increased 5-10-fold by stimulation of NADPH oxidase. The NADPH oxidase inhibitor, diphenylene iodonium, did inhibit macrophage-mediated modification of LDL, but its effects do not appear to involve superoxide generation. Superoxide dismutase (SOD) was shown to be inappropriate as a test for the involvement of superoxide radicals in cell-mediated oxidation due to its metal-chelating properties and to the development of a pro-oxidant activity by heat inactivation. We conclude that there is presently no secure evidence for the involvement of superoxide radical in macrophage-mediated oxidative modification of LDL.

Animals↗

Autoinhibition of murine macrophage-mediated oxidation of low-density lipoprotein by nitric oxide synthesis.

Murine peritoneal macrophages treated with gamma-interferon and lipopolysaccharide (activated cells) oxidized low-density lipoprotein (LDL) less readily than unstimulated cells. Activated cells expressed the enzyme nitric oxide synthase, whose activity was measured by the accumulation of nitrite in the culture supernatant. Treatment of activated macrophages with the arginine analogue NG-monomethyl-arginine (NMMA) inhibited nitric oxide synthesis and restored the ability of the cells to oxidize LDL. This treatment had no effect on the ability of unstimulated cells to oxidize LDL. Similarly, LDL oxidation by activated macrophages in arginine-free Ham's F-10 medium was identical to that of unstimulated cells, whereas restoration of arginine to the medium was associated with nitrite secretion and a decline in LDL oxidation by activated cells only. An inverse relationship between nitric oxide synthesis and LDL oxidation was also demonstrated in the presence of diphenylene iodonium, a flavin analogue which is a potent inhibitor of nitric oxide synthase. Thus nitric oxide synthesis appears to mediate the suppression of LDL oxidation which is associated with the activation of mouse macrophages by gamma-interferon and lipopolysaccharide.

Animals↗

Postprandial changes in apolipoprotein(a) concentration of triglyceride-rich lipoproteins can be reproduced by in vitro incubation: implications for underlying mechanism.

We investigated the reciprocal changes in apolipoprotein(a) concentration in the lipoprotein of d > 1.006 and the triglyceride-rich lipoprotein (TRL) fractions of plasma which occur in vivo following fat ingestion. Twenty fasting subjects were studied before and 4 h after a fat-rich meal. In 75% of cases, in vitro incubation of the postprandial (4-h) TRL with autologous fasting (0-h) lipoproteins of d > 1.006 resulted in further substantial (> 5% total) reciprocal changes in apo(a) concentration of the 2 fractions. The increase in re-isolated postprandial TRL apo(a) was 25.1% +/- 5.1% of the total apo(a), compared to the insignificant increase (0.1% +/- 0.1%) in re-isolated fasting TRL. Most of the further increase in 4-h TRL apo(a) (94% +/- 4%) could be achieved by incubation with the corresponding 4-h chylomicron fraction (CM) alone. The re-isolated 4-h TRL apo(a) concentration correlated positively with 4-h plasma TG concentration (r = 0.65, P < 0.01) and other indices of postprandial lipaemia. In vitro incubation of pooled serum lipoproteins of d > 1.006 with serial dilutions of nascent CM obtained from chylous ascitic fluid revealed that the reciprocal changes in apo(a) concentration exhibit a curvilinear relationship with the concentration of CM triglyceride which plateaued round 7 mmol/l in this instance. We conclude that the reciprocal changes in apo(a) concentration between TRL and lipoproteins of d > 1.006 which occur in the postprandial phase are quantitatively significant and largely represent a redistribution process rather than de novo synthesis because they can be reproduced by in vitro incubation.

Adult↗

Reactive species and their accumulation on radical-damaged proteins.

Hydroperoxides and catechols are described as novel reactive products of radical attack on proteins. These species, like other components of oxidized and otherwise damaged proteins, may accumulate in some biological systems. We propose that the reactive species may then attack other biomolecules, and constitute both a marker and a mechanism of age-related pathologies.

Aging↗

Enhanced enzymatic degradation of radical damaged mitochondrial membrane components.

The location of a protein (soluble or membrane-bound) influences the extent of oxidative damage caused by free radicals. It has been established that after radical attack, soluble proteins can become more susceptible to hydrolysis by individual proteinases than native proteins. We have now examined the hydrolytic susceptibility following radical attack of a protein that is located within a membrane environment, mitochondrial monoamine oxidase (MAO). After exposure to oxygen radicals generated by gamma irradiation, hydrolysis of sub-mitochondrial particles (SMP) containing MAO was increased in three respects. First, the generation of small fragments of MAO by the proteinases elastase and trypsin, was enhanced. Second, the generation by these enzymes and by phospholipase A2 of non-sedimentable membrane fragments containing MAO was also increased. Third, autolysis of SMP was enhanced. Hence, proteins located within membranes may become more susceptible to enzymatic degradation following oxidative damage.

Animals↗

Inefficient degradation of oxidized regions of protein molecules.

We have previously shown that the intracellular half-life of endocytosed oxidized albumin is much longer than that of native albumin. We now report that the regions of oxidized albumin which contain oxidation products (carbonyls and fluorophores), are less readily released as small degradation products by cell-free proteolysis than is the molecule overall. We deduce that oxidized moieties in the polypeptide chain can confer localized resistance to enzymatic proteolysis. Such resistance to proteolysis may account for the intracellular accumulation of some endocytosed oxidized protein which we have previously observed.

Endopeptidases↗

Alginate may accumulate in cystic fibrosis lung because the enzymatic and free radical capacities of phagocytic cells are inadequate for its degradation.

We sought an explanation for the accumulation, and apparent poor degradation by alveolar phagocytes, of alginate in cystic fibrosis lung. A crude intracellular lyase preparation extracted from Klebsiella pneumoniae was able to degrade seaweed alginic acid as well as forms purified from Pseudomonas aeruginosa bacteria from Cystic Fibrosis (CF) patient lungs. This was by a beta-eliminative mechanism, as detected by an increase in the 232nm absorbance and activity was enhanced by deacetylation of the Pseudomonas aeruginosa alginates. Conditioned media or cell lysates from unstimulated or triggered phagocytic cells (including resident mouse peritoneal macrophages and the human macrophage cell line U937) had no effect in the same system. Free radicals generated by chemical systems or by gamma irradiation of water degraded alginate. Depolymerisation by free radicals, as detected by viscosity determinations and polyacrylamide gel electrophoresis, generated a wide range of fragment sizes. In contrast, mouse peritoneal macrophages or human polymorphonuclear neutrophils stimulated to generate free radicals had no significant effect on alginate. Under the conditions of our experiments, phagocytic cells representative of the CF lung are not able to degrade Pseudomonas aeruginosa alginate. This may explain the gross accumulation of alginate in CF lung.

Alginates↗

The participation of nitric oxide in cell free- and its restriction of macrophage-mediated oxidation of low-density lipoprotein.

The potential role of nitric oxide radical (NO .) in macrophage-mediated oxidation and conversion of human low density lipoprotein (LDL) to a high-uptake form was examined by exposing LDL to aerobic solutions of either NO . or 3-morpholino-sydnonimine-hydrochloride (SIN-1, a compound that spontaneously forms NO . and superoxide anion radical) or to mouse peritoneal macrophages in the presence and absence of modulators of cellular NO . synthesis. Incubation with NO . alone caused oxidation of LDL's ubiquinol-10 and accumulation of small amounts of lipid hydroperoxides, but failed to form any high-uptake ligand for endocytosis by macrophages and did not alter the LDL particle charge or the integrity of apoB. Exposure of LDL to SIN-1 resulted in complete consumption of all antioxidants and substantial formation of lipid hydroperoxides, but again had little effect on the lipoprotein particle charge or generation of high-uptake form. Preincubation of macrophages with interferon-gamma increased the cells ability to generate reactive nitrogen metabolites. The extent of cell-mediated oxidation of LDL and the generation of high-uptake LDL was substantial in resident cells in which NO . synthesis was barely detectable, depressed in cells active in NO . synthesis and restored when NO . synthesis was suppressed by the arginine analogue, NMMA. These results suggest that, while together with superoxide anion radical, NO . can oxidize LDL, its synthesis is not required for macrophage-mediated oxidation of LDL in vitro; rather it exerts a protective role in preventing oxidative LDL modification by macrophages.

Animals↗

The intracellular storage and turnover of apolipoprotein B of oxidized LDL in macrophages.

We have studied the effect of several chemical modifications to low-density lipoprotein (LDL) on its intracellular fate in macrophages. Native, acetylated and oxidized 125I-LDL were supplied to cultured peritoneal macrophages and the accumulation and distribution of labelled protein was measured both during uptake and a subsequent chase period. The intracellular accumulation of macromolecular oxidized LDL protein greatly exceeded that of acetylated LDL, despite similar rates of uptake and common endocytic receptors. The accumulation of intracellular apoprotein was proportional to the extent to which the LDL was first oxidized. ApoB of oxidized LDL was more resistant to proteolysis by lysosomal enzymes than native apoB. Interestingly, acetylated apoB is more rapidly hydrolysed than the native protein. 125I-LDL modified with 4-hydroxynonenal (HNE) and myricetin, but not with malondialdehyde (MDA), was also accumulated within macrophages in a high-molecular weight fraction, and was resistant to cell-free lysosomal proteolysis. These forms of LDL also contained crosslinked apoB molecules. It is suggested that the accumulation of oxidized LDL within macrophages may he due, at least in part, to the formation of inter- or intra-molecular crosslinks in apoB which render it less accessible to proteolysis.

Aldehydes↗

Accelerated endocytosis and incomplete catabolism of radical-damaged protein.

Native bovine serum albumin (BSA) was endocytosed and degraded at a steady rate by resident peritoneal murine macrophages with barely detectable amounts remaining within the cells. Radical-damaged BSA was endocytosed and degraded up to 2.5-fold more rapidly than native BSA, but some radical-damaged BSA accumulated within the cells in a time-dependent manner. The extent of accumulation increased in parallel with that of radical damage. Thus, some radical-damaged BSA was processed less efficiently than native BSA. Such inefficient catabolism of radical-damaged proteins may contribute to certain diseases such as atherosclerosis.

Animals↗

Long-lived reactive species on free-radical-damaged proteins.

We have demonstrated two novel reactive species on radical-modified proteins which are relatively long-lived, one oxidizing and one reducing. The two species are reactive with critical biological components, and so may be of physiological and pathological importance. The oxidizing species, which have been identified as protein hydroperoxides, can consume key cellular reductants, such as ascorbate and glutathione. The reducing species can act on both free and metalloprotein forms of copper and iron ions, which participate in radical generation. These findings suggest that proteins may act as traps for the chemical energy released by free radicals, with the capacity to pass it on to other molecules. The long-lived nature of both the reactive moieties indicates that they may be able to diffuse and transfer damaging reactions to distant sites.

Amino Acids↗

Hypothesis: a damaging role in aging for reactive protein oxidation products?

This paper discusses our knowledge of protein oxidation and its relationship to aging. It also outlines new observations from our laboratories concerning reactive species produced during protein oxidation, and proposes that these may inflict damage on other molecules, and hence contribute to the progression of aging. Whereas it has previously been difficult to see how relatively inert protein oxidation products could possibly have any causal role in aging, the detection of these novel reactive species implies a potentially significant role.

Aging↗

An instant kit method for labeling antimyosin Fab' with technetium-99m: evaluation in an experimental myocardial infarct model.

An instant kit method for labeling antibody Fab' fragments was developed. The method utilizes a ligand exchange reaction between the intermediate complex 99mTc-D-glucarate and the free sulfhydryl groups on the antibody Fab' fragment. Radiolabeling of the Fab' using generator eluate achieves quantitative 99mTc incorporation in less than 30 min at room temperature. The radiolabel is stable in human plasma for at least 24 hr and stable to incubation with 10 mM diethylene-triaminepentaacetic acid (24 hr) and 1 mM diaminodithiol agent (up to 3 hr). Mouse biodistribution of 99mTc-antimyosin shows faster blood clearance and lower uptake in the lungs, liver, and spleen in comparison to 111In-antimyosin. Technetium-99m-antimyosin and 111In-antimyosin showed equivalent ability to detect myocardial infarct in a canine model.

Animals↗

Free radical damage to proteins: the influence of the relative localization of radical generation, antioxidants, and target proteins.

Free radicals were generated at known rates in the aqueous phase (by means of 2,2'-azobis (2-amidinopropane) dihydrochloride [AAPH]) and in a membranous (lipid) phase (by means of 2,2'-azobis (2,4-dimethylvaleronitrile [AMVN]). A soluble protein (bovine serum albumin: BSA), and membranes of lysed mitochondria containing radioactively labeled monoamine oxidase (MAO), were exposed to the resultant radical fluxes. Antioxidants were added to the system, either in the aqueous phase (Trolox) or in a liposomal membrane phase (alpha-tocopherol). Protein damage was assessed as tryptophan oxidation and conformational changes in tryptophan fluorescence of the soluble protein, BSA, and as fragmentation of both BSA and monoamine oxidase. Radicals generated in the aqueous phase, by AAPH, were effective in damaging BSA and MAO. Radicals generated within the liposome membrane phase (by AMVN) were less effective against BSA than those deriving from AAPH. Liposomal AMVN radicals could damage MAO, present in a separate membranous phase, though again, less effectively than could AAPH-derived radicals. BSA could be protected by Trolox, the aqueous soluble antioxidant, but hardly by tocopherol itself. Damage to MAO was limited by Trolox, and also by the hydrophobic antioxidant, tocopherol. Damaging reactions due to radicals generated in a membrane phase were significantly accelerated when the membrane was peroxidizable (soybean phosphatidylcholine) rather than nonperoxidizable (saturated dimyristoyl phosphatidylcholine). Thus lipid radicals also played some role in protein damage in these systems. BSA was attacked similarly in the presence or absence of liposomes by AAPH. Correspondingly, BSA could inhibit the peroxidation of liposomes induced by AAPH and less efficiently that induced by AMVN.(ABSTRACT TRUNCATED AT 250 WORDS)

Amidines↗

Synthesis, characterization and myocardial uptake of cationic bis(arene)technetium(I) complexes.

A series of bis(arene)technetium(I) complexes has been synthesized from 99mTcO4- in order to study their organ distribution. Syntheses using either ultrasound/Al/AlCl3 or Zn/HCl gave products relatively free from transalkylation. The identity of the complexes was verified by comparison to the 99Tc complexes. Equivalence of the 99Tc and 99mTc complexes was demonstrated by HPLC techniques. Biodistribution studies in rats reveal substantial myocardial uptake for many members of the series, especially those containing benzene rings substituted with about four to six carbon atoms. The myocardial uptake is related to the lipophilicity of the complexes as measured by octanol/buffer partition ratios (OBPR). Optimal ranges of lipophilicity for maximal myocardial uptake occur for OBPR from 2 to 9. Rat and human plasma binding of the complexes increases with lipophilicity after a threshold value is exceeded.

Animals↗