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S D Turley

Publications and source records attributed to S D Turley.

At least 55 records · Page 3Linked to original sources

Receptor-independent low density lipoprotein transport in the rat in vivo. Quantitation, characterization, and metabolic consequences.

Receptor-independent low density lipoprotein (LDL) transport plays a critical role in the regulation of plasma cholesterol levels; hence, these studies were done to characterize this process in the tissues of the rat. High rates of receptor-independent clearance were found in the spleen, but other organs, like liver, gastrointestinal tract, and endocrine glands manifested lower clearance rates that varied from 3 to 9 microliter/h per g, while the rates in nervous tissue, muscle, and adipose tissue were less than 1 microliter/h per g. Receptor-dependent uptake was much higher in liver (85 microliter/h per g) and adrenal gland (219 microliter/h per g), but was also low in most other tissues. At normal plasma LDL concentrations, 67% of the receptor-dependent transport in the whole animal was accounted for by LDL uptake in the liver. In contrast, the receptor-independent uptake found in the whole animal took place in many organs, including skeletal muscle (20%), liver (16%), small bowel (15%), skin (10%), and spleen (7%). Furthermore, in liver, the rate of cholesterol synthesis could be varied 11-fold, yet the rate of receptor-independent LDL clearance remained constant at approximately 8 microliter/h per g. When the circulating levels of LDL were systematically increased, receptor-independent LDL clearance also remained constant, so that hepatic LDL-cholesterol uptake by this mechanism increased linearly, from 1 to 20 micrograms/h per g, as the plasma LDL-cholesterol level was increased from 10 to 250 mg/dl. Finally, when equal amounts of LDL-cholesterol were delivered into the liver by either the receptor-dependent or receptor-independent mechanism, there was significant suppression of cholesterol synthesis and an increase in cholesteryl esters. Thus, in any situation in which receptor-dependent LDL degradation is lost, cholesterol balance in the whole animal and across individual organs is maintained by receptor-independent mechanisms, although when the new steady state is achieved, circulating levels of LDL must necessarily be very much increased.

Animals↗

Rates of low density lipoprotein uptake and cholesterol synthesis are regulated independently in the liver.

The relationship between rates of hepatic sterol synthesis and rates of hepatic low density lipoprotein (LDL) uptake (clearance) was studied in animals with high (rats), low (female hamsters), and very low (male hamsters) basal rates of hepatic sterol synthesis. In rats and female hamsters, rates of hepatic sterol synthesis were varied over a 110-fold range by feeding cholesterol or cholestyramine; nevertheless, rates of hepatic LDL clearance remained essentially unchanged as did plasma LDL-cholesterol concentrations. In contrast, in male hamsters, which have a very limited capacity to synthesize cholesterol in the liver, cholestyramine feeding increased rates of hepatic LDL uptake by 2.5-fold and this was associated with a 50% reduction in plasma LDL-cholesterol concentrations. The observed increase in LDL uptake was due to an increase in receptor-dependent LDL transport while receptor-independent lipoprotein uptake remained constant. These studies suggest that rates of hepatic cholesterol synthesis and receptor-dependent LDL uptake are regulated independently. Furthermore, the primary response of the liver to changes in cholesterol availability is regulation of sterol synthesis and only when the capacity of this compensatory mechanism is exceeded is the rate of LDL transport altered.

Animals↗

Modulation of the stimulatory effect of pregnenolone-16 alpha-carbonitrile on biliary cholesterol output in the rat by manipulation of the rate of hepatic cholesterol synthesis.

In female rats fed a plain ground diet containing pregnenolone-16 alpha-carbonitrile, biliary cholesterol output increased twofold, whereas bile acid and phospholipid output either remained unchanged or decreased slightly. There was a 32% increase in liver weight, a 3.5-fold increase in cholesteryl esters, and a 45% decrease in the rate of hepatic sterol synthesis. When pregnenolone-16 alpha-carbonitrile was fed with AOMA, an agent that blocks cholesterol absorption, there was less of an increase in cholesteryl esters, the inhibitory effect of pregnenolone-16 alpha-carbonitrile on hepatic sterol synthesis was abolished, and biliary cholesterol output was increased to an even greater extent. In contrast, when pregnenolone-16 alpha-carbonitrile was fed together with cholesterol, there was a 14-fold increase in the level of cholesteryl esters, an 85% decrease in the rate of hepatic sterol synthesis, and a marked reduction in biliary cholesterol output. The increase in biliary cholesterol saturation produced by either pregnenolone-16 alpha-carbonitrile alone or pregnenolone-16 alpha-carbonitrile with AOMA occurred with little or no change in plasma cholesterol levels and bile acid pool size. Because biliary cholesterol saturation in rats given pregnenolone-16 alpha-carbonitrile appears to correlate with the rate of hepatic cholesterol synthesis, the drug likely mediates its effect on biliary lipid composition at an intrahepatic level and may provide an important model for determining how overproduction of cholesterol by the body results in excessive transport of cholesterol into bile.

Animals↗

Dissociation of hepatic cholesterol synthesis from hepatic low-density lipoprotein uptake and biliary cholesterol saturation in female and male hamsters of different ages.

These studies were carried out in order to examine the relationship between the rate of uptake of low-density lipoproteins (LDL) by the liver and the rates of hepatic and extrahepatic cholesterol synthesis and biliary cholesterol content. Female hamsters fed a regular chow diet manifested a rate of hepatic sterol synthesis that was several-fold higher than that in age-matched males maintained on the same diet. Synthesis in the small intestine did not show a corresponding sex difference, but the overall rate in the remaining tissues of the carcass was significantly lower in the females than in the males. Thus, although the proportion of newly synthesized sterol produced by the liver was substantially greater in the females, this was balanced by a smaller contribution from the extrahepatic compartment so that whole-body sterol synthesis was similar in the females and males. Sterol synthesis in the whole animal declined markedly with age in both the females and males, and this was due principally to a reduction in extrahepatic synthesis. Despite the higher rate of hepatic synthesis in females, the rate of uptake of [14C]sucrose-labeled, homologous LDL by the liver was similar in females and males. In males, the adrenal gland transported the labeled LDL at a much higher rate than in females, but in the other extrahepatic tissues the rate of LDL uptake was similar in both groups. The level of cholesterol carried in the various plasma lipoprotein fractions and the relative cholesterol content of gallbladder bile were also similar in females and males. Thus, in this experimental model, the rate of LDL transport by the liver and extrahepatic tissues, the amount of cholesterol carried in plasma lipoproteins and the degree of biliary cholesterol saturation were not directly related to the rates of endogenous hepatic and extrahepatic sterol synthesis.

Aging↗

Alteration of the degree of biliary cholesterol saturation in the hamster and rat by manipulation of the pools of preformed and newly synthesized cholesterol.

Our studies compared the effects of changing the availability of newly synthesized and preformed cholesterol by various dietary manipulations on biliary cholesterol secretion in the hamster and rat. In hamsters fed a plain pelleted diet, only 2%-5% of biliary cholesterol was derived directly from newly synthesized sterol. Cholestyramine feeding, through a stimulation of hepatic sterol synthesis, increased this fraction fivefold but did not change total biliary cholesterol output. The relative cholesterol content increased significantly due to a reduction in bile acid and phospholipid output. In contrast, biliary cholesterol output was increased several-fold in hamsters fed a fat-free diet. These animals also manifested a pronounced increase in whole-body sterol synthesis, this being due principally to an increase in hepatic sterol synthesis. Although this resulted in the transport of much more newly synthesized cholesterol directly into bile, this did not account for the disproportionately high rate of biliary cholesterol output. Such excess sterol was derived predominantly from a preformed source. Unlike hamsters, rats fed the fat-free diet manifested a marked reduction in hepatic and whole-body sterol synthesis, bile acid pool size, and bile acid and cholesterol output in bile. These studies demonstrate that when hepatic cholesterol synthesis increases in response to a need for more sterol in the body, a greater proportion of biliary cholesterol is derived directly from newly synthesized sterol, but total biliary cholesterol output is unchanged. In contrast, when more cholesterol is synthesized than is needed to maintain cholesterol balance, biliary cholesterol output may increase. Such excess biliary sterol is derived predominantly from a preformed source rather than from the transport of newly synthesized sterol directly across the canalicular membrane.

Animals↗

Correlation of low and high density lipoprotein binding in vivo with rates of lipoprotein degradation in the rat. A comparison of lipoproteins of rat and human origin.

These studies were done in the rat to correlate the ability of low and high density lipoproteins of rat (rLDL and rHDL) and human (hLDL and hHDL) origin to bind in vivo to specific tissues with the rates at which these same lipoprotein fractions were cleared from the circulation. The adrenal gland and liver manifested the greatest amounts of rLDL binding in vivo, but activity also was found in spleen, lung, kidney, ovary, and intestine. In contrast, little or no such binding was found utilizing either methyl-rLDL or hLDL. rHDL containing E apoprotein bound to the same group of tissues although in lesser amounts, except in the case of ovary and adrenal gland which bound disproportionately greater amounts of rHDL than rLDL. In keeping with these marked differences in tissue binding, the clearance of rLDL from the plasma equaled 847 +/- 36 microliters/h/100 g of rat while that of methyl-rLDL and hLDL was only 368 +/- 8 and 363 +/- 11 microliters/h/100 g of rat, respectively. When the steady state plasma level of rLDL was raised 2.5-fold, the clearance decreased slightly to 705 +/- 20 microliters/h/100 g of rat. The clearance of hLDL remained constant, however, at about 350 microliters/h/100 g of rat even when the plasma hLDL level was raised to very high values. The clearance of rHDL and hHDL equaled 644 +/- 16 and 408 +/- 13 microliters/h/100 g of rat, respectively, reflecting the more similar rate of binding of rHDL and hHDL to the tissues of the rat. Rates of whole animal sterol synthesis were lowered from 28 mumol/h to 8.8 mumol/h or 13 mumol/h by fasting and cholesterol feeding, respectively, and stimulated to 71 mumol/h by cholestyramine treatment. Under these same conditions, hepatic cholesterol synthesis could be lowered from the normal rate of 15 mumol/h to 4.2 mumol/h and raised to 50 mumol/h. None of these treatments, however, affected the plasma clearance of rLDL and rHDL. In contrast, treatment with ethinyl estradiol increased by 3-fold both the hepatic binding and the whole animal plasma clearance of rLDL. Following resection of approximately two-thirds of the liver under carefully controlled metabolic conditions, there was no change in the rate of hepatic cholesterol synthesis or rLDL binding in the remaining liver, but the clearance of chylomicrons, rLDL, and rHDL diminished by 67%, 26%, and 17%, respectively, suggesting that in the rat the liver was responsible for the degradation of approximately 97%, 39%, and 27%, respectively, of these lipoprotein fractions.

Animals↗

Relative rates of sterol synthesis in the liver and various extrahepatic tissues of normal and cholesterol-fed rabbits. Relationship to plasma lipoprotein and tissue cholesterol levels.

The relative rates of sterol synthesis in the liver and ten extrahepatic tissues of normal and cholesterol-fed rabbits were determined by measuring the rates of incorporation of [1-14C]octanoate into digitonin-precipitable sterols by tissue slices. In normal rabbits the rate of sterol synthesis in the liver was very low compared to that in several extrahepatic tissues, particularly the small intestine. The rate of synthesis in the small intestine showed marked regional variation, with the highest rate occurring in the section proximal to the entry of the common bile duct and the lowest rate in the mid-sections of the intestine. The regional differences in intestinal sterol synthesis correlated inversely with the cholesteryl ester content of the tissue. Rabbits fed the cholesterol diet developed marked hypercholesterolemia, with much of the additional cholesterol appearing in the VLDL and LDL fractions. The cholesteryl ester content of the liver, small intestine and various other extrahepatic tissues increased significantly. Coincident with these changes was a marked suppression of sterol synthesis, not only in the liver, but also in the small intestine, adrenal gland, kidney, lung, spleen and ovary. Thus, the rabbit, like the guinea pig, normally exhibits a very low rate of hepatic sterol synthesis compared to that found in other species such as the rat, squirrel monkey and baboon and, furthermore, manifests feedback inhibition of both hepatic and extrahepatic sterol synthesis when dietary cholesterol intake is increased. This general suppression of synthesis correlates with an accumulation of cholesteryl ester in the tissues which, in turn, presumably is related to the uptake of lipoprotein cholesterol from the hypercholesterolemic plasma that develops under such dietary conditions.

Adrenal Glands↗

Rates of sterol synthesis and uptake in the major organs of the rat in vivo.

This study was undertaken to determine the rates of sterol synthesis and uptake in the major organs of the female rat in vivo. At the mid-dark phase of the light cycle, control animals, animals in which hepatic sterol synthesis had been selectively inhibited by chylomicron infusion and animals in which the small intestine and liver had been surgically removed, were administered [(3)H]water, and the content of (3)H-labeled digitonin-precipitable sterols ([(3)H]-DPS) in different organs was measured 1 hr later. In control animals, the highest content of [(3)H]DPS was found in the liver (2279 nmol/hr per g), adrenal gland (1222), ovary (791), and small bowel (529): the content of newly synthesized sterols was much lower in 13 other tissues. By selectively inhibiting sterol synthesis in the liver or by surgically removing the small intestine and liver, it was determined that of the total amount of [(3)H]DPS synthesized in the whole animal about 50% had occurred in the liver, 24% in the small bowel, 8% in the skin, and 18% in the remaining tissues of the carcass combined. By analyzing the relationship between the content of [(3)H]DPS in blood and in each organ, it was further possible to determine how much [(3)H]DPS was synthesized and how much was taken up from the blood in each tissue. The highest rate of uptake was found in the adrenal gland where only 4% of the tissue content of [(3)H]DPS came from local synthesis. Low rates of synthesis relative to the rates of uptake, were also found in the spleen (6%), lung (17%), and kidney (26%). In contrast, in other organs there was little uptake of [(3)H]DPS from blood so that >75% of the [(3)H]DPS present in brain and muscle, for example, was due to local synthesis. Lowering the circulating levels of plasma cholesterol markedly increased the synthesis of [(3)H]DPS in tissues like adrenal gland, spleen, and kidney that were dependent upon plasma cholesterol as the major source of tissue sterols, but not in tissues such as muscle and brain. These studies have quantitated the importance of each major organ to total body synthesis and have delineated the rates of movement of [(3)H]DPS between major tissue compartments of the rat.-Turley, S. D., J. M. Andersen, and J. M. Dietschy. Rates of sterol synthesis and uptake in the major organs of the rat in vivo.

Animals↗

Effects of clofibrate, cholestyramine, zanchol, probucol, and AOMA feeding on hepatic and intestinal cholesterol metabolism and on biliary lipid secretion in the rat.

Utilizing newer techniques for measuring rates of cholesterol synthesis, the effects of clofibrate, cholestyramine, zanchol, probucol, and AOMA (a copolymer of maleic acid and an alpha-olefin chain of 18 carbons) on hepatic and intestinal cholesterol metabolism and on biliary lipid secretion in the rat were examined. Uncer conditions of isocaloric feeding, female rats were administered a fixed amount of these drugs each day for 14 days. In one set of experiments the rats were killed and rates of hepatic and intestinal cholesterol synthesis and tissue cholesterol levels were measured. In a second set of studies the rats were subjected to total biliary diversion for 2 hr and rates of biliary lipid secretion were determined. Plasma cholesterol concentrations were measured in all animals. Neither AOMA nor cholestyramine had any effect on plasma cholesterol levels or biliary lipid secretion, but both markedly enhanced intestinal cholesterol synthesis. Cholestyramine also increased hepatic cholesterol synthesis. Clofibrate significantly decreased plasma cholesterol levels, whereas zanchol had the opposite effect. Both clofibrate and zanchol increased liver size and bile secretion rates but lowered biliary lipid concentrations; however, total biliary lipid output was unchanged. Total hepatic cholesterol synthesis in clofibrate-fed animals was similar to that in the controls, but in zanchol-fed animals it was approximately doubled. Neither clofibrate nor zanchol had any effect on intestinal cholesterol synthesis. Probucol dramatically lowered plasma cholesterol levels but had no effect on the other parameters measured. None of the drugs was effective in altering the molar percentage of cholesterol in bile despite the diversity of metabolic changes which occurred. These studies point up the many diverse metabolic effects of these drugs, some of which are clinically useful in lowering plasma cholesterol levels, and delineate the marked dissociations that occur between rates of cholesterol synthesis, tissue cholesterol levels, and plasma cholesterol concentrations.

Animals↗

Low and high density lipoproteins and chylomicrons as regulators of rate of cholesterol synthesis in rat liver in vivo.

The steady-state levels of plasma cholesterol carried in high and low density lipoproteins and in chylomicrons were varied over a wide range by use of a constant-infusion technique. After 40 hr, the rates of hepatic cholesterol synthesis and levels of hepatic cholesterol esters were measured and were related to the plasma level of each of the lipoprotein fractions. From the rates of infusion and the steady-state plasma levels attained, the whole animal clearance rates for cholesterol carried in low density and high density lipoproteins and in chylomicrons were calculated to be 0.53, 0.61, and 42.6 ml/hr, respectively. Hepatic cholesterol ester content increased by 0.8 mug/g for each 1.0 mg/dl increase in the steady-state level of plasma low density lipoprotein cholesterol and by 1.4 mug/g for a similar elevation in plasma high density lipoprotein cholesterol. In contrast, the increase in ester content was 300-fold greater when chylomicrons were infused (330 mug/g). The rate of hepatic cholesterol synthesis was inhibited by a factor of 0.004 and 0.007, respectively, per 1.0 mg/dl increase in the steady-state level of plasma cholesterol carried in either low density or high density lipoprotein but the inhibition was by a factor of 0.255, 50-fold greater, when chylomicrons were infused. Thus, in the steady state, cholesterol carried in either low density or high density lipoproteins is apparently taken up by the liver and regulates the rate of hepatic cholesterol synthesis; however, cholesterol carried in chylomicrons is at least 50-fold more effective in this regard. This marked difference can be attributed to the much higher rates of transport of chylomicron cholesterol into the hepatocyte than of cholesterol carried in either low density or high density plasma lipoproteins.

Animals↗

Regulation of biliary cholesterol output in the rat: dissociation from the rate of hepatic cholesterol synthesis, the size of the hepatic cholesteryl ester pool, and the hepatic uptake of chylomicron cholesterol.

These studies were designed to determine the importance of the rate of hepatic cholesterol synthesis, the size of the hepatic cholesteryl ester pool, the amount of chylomicron cholesterol reaching the liver, and the rate of bile acid transport into bile as determinants of the rate of biliary cholesterol output. Female rats that had been subjected to diurnal light cycling, fasting for 48 hr, intravenous administration of chylomicrons, and diets containing either cholestyramine, cholesterol, or bile acid underwent total biliary diversion for 2 hr. The animals were then killed and the rates of hepatic cholesterol synthesis and levels of hepatic esterified cholesterol were measured along with biliary lipid concentrations. Despite a 1000-fold variation in the rate of hepatic cholesterogenesis and a 100-fold variation in the levels of cholesteryl esters, the output and molar percentage of cholesterol in bile remained essentially constant with the exception of an approximate doubling in the output of cholesterol, as well as of bile acid and phospholipid in those animals fed bile acid. However, in this latter group the molar percentage of each component was unchanged. The administration of a bolus of chylomicrons did not alter output or molar percentage of cholesterol. Total biliary diversion for 36 hr and bile acid infusion were used to markedly vary the rate of biliary bile acid output. Cholesterol and phospholipid output remained tightly coupled to bile acid output over almost a 40-fold range. In other experiments it was shown that biliary cholesterol output could be driven by bile acid infusion to a similar extent in rats in which the rate of hepatic cholesterogenesis had been varied over a 26-fold range. It was concluded that the rate of hepatic cholesterol synthesis, the level of hepatic cholesteryl esters, and the amount of cholesterol absorbed from the diet play no role in determining the rate of biliary cholesterol secretion, at least in this species.-Turley, S. D., and J. M. Dietschy. Regulation of biliary cholesterol output in the rat: dissociation from the rate of hepatic cholesterol synthesis, the size of the hepatic cholesteryl ester pool, and the hepatic uptake of chylomicron cholesterol.

Animals↗

Re-evaluation of the 3 alpha-hydroxysteroid dehydrogenase assay for total bile acids in bile.

A review of the 3 alpha-hydroxysteroid dehydrogenase method for determining the concentration of total bile acids in bile is described. The optimum conditions for the assay were established with respect to pH, temperature, incubation time, amount of NAD+, and units of enzyme activity required to obtain complete oxidation of the substrate under fixed conditions. Furthermore, the effect of hydrazine hydrate, methanol, and bile volume on the reaction was examined. It was also established that the bile acid concentration in bile samples with a high molar percentage of cholesterol would be overestimated if 3 beta-hydroxysteroid dehydrogenase were present with the 3 alpha-enzyme.

3-Hydroxysteroid Dehydrogenases↗

Effect of cholesterol and cholestyramine feeding and of fasting on sterol synthesis in the liver, lleum, and lung of the guinea pig.

The effects of feeding diest containing either cholesterol (0.24% w/w) or cholestyramine (2.5% w/w) and of fasting on sterol synthesis in the liver, ileum, and lung of both male and female guinea pigs have been studied by measuring the incorporation by tissue slices of 14C-labeled acetate into total digitoninpredipitable sterols. Cholesterol feeding significantly decreased (P less than 0.05) sterol synthesis in the liver, ileum, and lung of the males and in the ileum of females. Cholestyramine feeding stimulated the rate of hepatic sterol synthesis 13-fold but did not significantly affect sterologenesis in the ileum. Sterol synthesis in the lung was significantly increased (P less than 0.05) but to a much lesser extent than in the liver. Fatty acid synthesis in the liver, ileum, and lung was not significantly affected by either cholesterol or cholestyramine feeding. In guinea pigs fasted for 24 hr, sterol synthesis was inhibited in all three tissues, the most pronounced effect occurring in the liver. Only in the lung was fatty acid synthesis significantly decreased (P less than 0.001) by fasting. Cholesterol feeding resulted in increased concentrations of cholesterol in the plasma and liver. Cholestyramine feeding reduced plasma cholesterol concentration by 81% in females and by 64% in males. However, it did not significantly change the tissue cholesterol concentrations. Fasting resulted in a significant increase (P less than 0.05) in plasma cholesterol concentration but did not effect the concentration of cholesterol in the tissues. It was concluded that in the normal guinea pig, the feedback inhibition produced by both cholesterol and also possibly by bile acids suppresses sterol synthesis in the liver to very low rates compared to those in the small intestine, where sterologenesis is not only less sensitive to the cholesterol negative feedback system than that in the liver, but also is not subject to regulation by the bile acid negative feedback system.

Animals↗

Sterol synthesis in the liver, intestine, and lung of the guinea pig.

The relative rates of sterol synthesis in the liver, ileum, and lung of the guinea pig have been studied by measuring the incorporation by tissue slices of 14C-labeled acetate into digitonin-precipitable sterols. The liver showed maximum incorporation of acetate at pH 6.5, the ileum at pH 7.5, and the lung at pH 6.0. The incorporation of acetate approached the maximum rate at a concentration of 10 mM with the liver and lung and 5 mM with the ileum. Using these conditions of assay, sterol synthesis was measured in the liver, ileum, and lung of four groups of guinea pigs killed at 6-hourly intervals. Depending on the time of day, the rate of sterol synthesis in the ileum was from 6 to 14 times that in the liver, while in the lung the rate was up to 3 times that shown by the liver, Additional studies showed that all regions of the small intestine synthesized sterol at a higher rate than the liver, with the highest rate of synthesis occurring in the ileum. The rates observed in the adrenal, testis, muscle, adipose tissue, and skin indicated that these tissues are not quantitatively important sites of sterol synthesis in the guinea pig.

Acetates↗

Diurnal variation in the feeding pattern of guinea pigs.

Male and female guinea pigs maintained under controlled lighting and fed ad libitum exhibit a diurnal fluctuation in feed intake. This is characterised by periods of increased eating activity at the beginning and end of the light period and in the middle of the dark period. However, the feed consumption for the light and dark periods is similar. If the normal lighting cycle is retarded by 6 h, the guinea pigs adjust their diurnal rhythm of eating in the new cycle within 8 days. Similar findings in female rabbits have previously been reported from this laboratory.

Animals↗