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P C Chu

Publications and source records attributed to P C Chu.

16 recordsLinked to original sources

mu-Opioid receptor internalization: opiate drugs have differential effects on a conserved endocytic mechanism in vitro and in the mammalian brain.

mu-Opioid receptors are the pharmacological targets of endogenous opioid peptides and morphine-like alkaloid drugs. Previous studies of transfected cells and peripheral neurons indicate that opioid receptors are rapidly internalized after activation by the alkaloid agonist etorphine but not after activation by morphine. To determine whether opioid receptors in the central nervous system are regulated by a similar process of agonist-selective internalization, mu-opioid receptors were examined in rat brain neurons after treatment of animals with opioid drugs. Internalized mu receptors were observed within 30 min after intraperitoneal injection of the alkaloid agonist etorphine, and this process was blocked by the antagonist naloxone. Colocalization of internalized opioid receptors with transferrin receptors in confocal optical sections indicated that receptor internalization observed in vivo is mediated by a membrane trafficking pathway similar to that observed previously in vitro using transfected human embryonic kidney 293 cells. Morphine failed to induce detectable rapid internalization of receptors, even when administered to animals at doses far in excess of those required to induce analgesia. To quantify these agonist-selective differences and to analyze an array of opioid ligands for their ability to trigger internalization, we used flow cytometry on stably transfected 293 cells. These studies indicated that the different effects of individual agonists are not correlated with their potencies for receptor activation and that a variety of clinically important agonists differ significantly in their relative abilities to stimulate the rapid internalization of opioid receptors.

Animals↗

Morphine activates opioid receptors without causing their rapid internalization.

We have examined the endocytic trafficking of epitope-tagged delta and mu opioid receptors expressed in human embryonic kidney (HEK) 293 cells. These receptors are activated by peptide agonists (enkephalins) as well as by the alkaloid agonist drugs etorphine and morphine. Enkephalins and etorphine cause opioid receptors to internalize rapidly (t1/2 approximately 6 min) by a mechanism similar to that utilized by a number of other classes of receptor, as indicated by localization of internalized opioid receptors in transferrin-containing endosomes and inhibition of opioid receptor internalization by hypertonic media. Remarkably, morphine does not stimulate the rapid internalization of either delta or mu opioid receptors, even at high concentrations that strongly inhibit adenylyl cyclase. These data indicate that agonist ligands, which have similar effects on receptor-mediated signaling, can have dramatically different effects on the intracellular trafficking of a G protein-coupled receptor.

Cell Line↗

Reverse sequestration in a case of sickle crisis.

A patient with homozygous sickle cell disease presented with sickle crisis complicated by hepatic and pulmonary sequestration and required intensive therapy. During the recovery phrase she developed a rapid rise of haemoglobin concentration, unrelated to blood transfusion, followed by hypertension, congestive cardiac failure and catastrophic intracerebral haemorrhage. This serious haemodynamic disturbance was considered to be caused by a reversal of the sequestration process. Careful monitoring of a sickle cell patient's blood pressure, blood counts, haematocrits, haemoglobin S level and plasma viscosity, even after the end of a sequestration crisis, is recommended.

Adult↗

Epidemiology of persistent proteinuria in type II diabetes mellitus. Population-based study in Rochester, Minnesota.

Clinical risk factors for nephropathy were assessed in a population-based study of Rochester, Minnesota, residents with diabetes mellitus initially diagnosed between 1945 and 1969 (incidence cohort). The 1031 Rochester residents with non-insulin-dependent diabetes mellitus (NIDDM) were followed through their complete medical records in the community to 1 January 1982. The prevalence of persistent proteinuria was 8.2% at the diagnosis of NIDDM. Among those initially free of persistent proteinuria, the subsequent incidence was 15.3/1000 person-yr. Twenty years after the diagnosis of diabetes, the cumulative incidence of persistent proteinuria was 24.6%. A proportional hazards model identified the following risk factors for persistent proteinuria in NIDDM: elevated initial fasting blood glucose (P less than .01); older age at onset of diabetes (P less than .01); male gender (P = .05); and presence of macrovascular disease (P = .05), diabetic retinopathy (P = .05), or glycosuria (P = .07) at the diagnosis of diabetes. Separate analyses controlling for attained age indicated no association between duration of NIDDM and the incidence of persistent proteinuria. Stratified analysis of the two most significant risk factors (fasting blood glucose and age) indicated that hyperglycemia was a stronger risk factor for proteinuria in younger diabetic subjects, perhaps because of a competing risk of death in the elderly diabetic patient. In contrast to a recently described decreasing secular trend of proteinuria in Danish insulin-dependent diabetes mellitus patients, there was no decrease over the past 40 yr in proteinuria risk in this NIDDM incidence cohort.

Adult↗

Alterations in physiologic functions and in brain monoamine content in streptozocin-diabetic rats.

In the present study, we used streptozocin (STZ) to induce diabetes in rats and observed alterations in several physiologic functions and in monoamine content of different brain regions. Rats with STZ diabetes displayed a thermoregulatory deficit in the cold. Both the body temperature and metabolic rate of the diabetic animals were reduced at ambient temperatures below 22 degrees C. These diabetic animals had a higher level of the spontaneous pain threshold, but displayed a reduced sensitivity of analgesic responses to morphine injection. In addition, these diabetic animals had a lower level of spontaneous motor activity, but displayed an increased sensitivity of locomotor stimulant responses to amphetamine administration. Biochemical examination revealed that the diabetic animals had a lower serotonin level in both the hypothalamus and the brainstem without changes in the serotonin levels of the corpus striatum. These diabetic animals also had a lower catecholamine level in the hypothalamus, but a higher catecholamine level in the corpus striatum. The alterations in brain monoamine content and in the above-mentioned physiologic parameters were reversed after insulin replacement therapy. The data suggest that alterations in various autonomic, somatosensory, and motor neural functions of untreated STZ-diabetic rats correlated with a reproducible pattern of monoamine content in various brain regions (a pattern that differed from that observed in healthy control rats), and that both the altered neural function and the altered brain monoamine pattern were reversed after insulin therapy.

Amphetamine↗

Decreasing brain epinephrine levels with 2-cyclooctyl-2-hydroxyethylamine induces hyperglycemia in rats.

Intraperitoneal administration of 2-cyclooctyl-2-hydroxyethyl-amine (CONH; 25-75 mg/kg) produced dose-related reductions in the epinephrine (EPI) concentrations in both the hypothalamic and brainstem regions, but not in the adrenal glands. The reductions in the hypothalamic and brainstem EPI concentrations in rats anesthetized with pentobarbital sodium were accompanied by parallel increases in blood glucose. These data suggest that CONH induces its hyperglycemia action at least in part by altering central EPI biosynthesis. This hyperglycemic was antagonized by spinal transection or adrenalectomy, but not by vagotomy. This indicates that CONH increases the adrenal-sympathetic efferent activity and leads to hyperglycemia in rats.

Adrenal Medulla↗

Effects of TSH, TRH, LH and LHRH on thermoregulation and food and water intake in the rat.

The effects of administration of thyroid-stimulating hormone (TSH), thyrotropin-releasing hormone (TRH), luteinizing hormone (LH) or luteinizing hormone-releasing hormone (LHRH) into the lateral cerebral ventricle on thermoregulation and food and water intake were assessed in rats. Intracerebroventricular, but not intraperitoneal, injection of TSH, LH or LHRH produced hypothermia in rats at ambient temperatures of both 8 and 22 degrees C. The hypothermia in response to TSH injection was due to both decreased metabolic heat production and increased heat loss (cutaneous vasodilatation). The hypothermia in response to either LH or LHRH was due solely to decreased metabolic heat production. There was no change in respiratory evaporative heat loss in response to TSH, LH or LHRH injection. Furthermore, food but not water intake was greatly reduced following an intracerebroventricular injection of TSH or TRH in rats. On the other hand, intracerebroventricular administration of LH, but not LHRH, caused an increase in relative water intake (or water/food) in rats. However, intracerebroventricular administration of LH or LHRH had an insignificant effect on food intake. The data indicate that, in addition to their hormone actions, TSH, LH and their releasing hormones act through a central mechanism to influence some of the physiological or behavioral functions.

Animals↗