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Biomedical subjects

Patrick G Sullivan

Publications and source records attributed to Patrick G Sullivan.

25 records · Page 2Linked to original sources

Mitochondrial uncoupling protein-2 protects the immature brain from excitotoxic neuronal death.

Excitotoxic cell death is the fundamental process responsible for many human neurodegenerative disorders, yet the basic mechanisms involved are not fully understood. Here, we exploited the fact that the immature brain is remarkably resistant to seizure-induced excitotoxic cell death and examined the underlying protective mechanisms. We found that, unlike in the adult, seizures do not increase the formation of reactive oxygen species or result in mitochondrial dysfunction in neonatal brain, because of high levels of the mitochondrial uncoupling protein (UCP2). UCP2 expression and function were basally increased in neonatal brain by the fat-rich diet of maternal milk, and substituting a low-fat diet reduced UCP2, restored mitochondrial coupling, and permitted seizure-induced neuronal injury. Thus, modulation of UCP2 expression and function by dietary fat protects neonatal neurons from excitotoxicity by preventing mitochondrial dysfunction. This mechanism offers novel neuroprotective strategies for individuals, greater than 1% of the world's population, who are affected by seizures.

Age Factors↗

Creatine diet supplement for spinal cord injury: influences on functional recovery and tissue sparing in rats.

Creatine-supplemented diet significantly attenuates cortical damage after traumatic brain injury in rodents. The protective mechanism likely involves maintenance of mitochondrial homeostasis. In the present study, we used two separate contusion spinal cord injury (SCI) instruments--the NYU device and the PSI Infinite Horizon (IH) impactor--to assess the efficacy of creatine-supplemented diets on hind limb functional recovery and tissue sparing in adult rats. Rats were fed control versus 2% creatine-supplemented chow for 4-5 weeks prior to SCI (pre-fed), after which most resumed a control diet while some remained on a 2% creatine diet (pre & post-fed). Following long-term behavioral analysis (BBB), the amount of spared spinal cord tissue among the dietary regimen groups was assessed using stereology. Comparatively, both instruments caused similar amounts of gray matter damage while the NYU device rendered a greater loss of white matter, reflected in more severe hind limb functional deficits than with the IH impactor. Relative to the control fed groups injured with either instrument, none of the creatine fed animals showed improvements in hind limb function or white matter tissue sparing. Although creatine did not attenuate gray matter loss in the NYU cohort, it significantly spared gray matter in the IH cohort with pre-fed and pre & post-fed regimens. Such selective sparing of injured spinal cord gray matter with a dietary supplement yields a promising strategy to promote neuroprotection after SCI. The relationship between the efficacy of creatine and the magnitude of the insults is discussed.

Animals↗

Cytochrome c release and caspase activation after traumatic brain injury.

Experimental traumatic brain injury (TBI) results in a rapid and significant necrosis of cortical tissue at the site of injury. In the ensuing hours and days, secondary injury exacerbates the primary damage resulting in significant neurological dysfunction. The identification of cell death pathways that mediate this secondary traumatic injury have not been elucidated, however recent studies have implicated a role for apoptosis in the neuropathology of traumatic brain injury. The present study utilized a controlled cortical impact model of brain injury to assess the involvement of apoptotic pathways: release of cytochrome c from mitochondria and the activation of caspase-1- and caspase-3-like proteases in the injured cortex at 6, 12 and 24 h post-injury. Collectively, these results demonstrate cytochrome c release from mitochondria and its redistribution into the cytosol occurs in a time-dependent manner following TBI. The release of cytochrome c is accompanied by a time-dependent increase in caspase-3-like protease activity with no apparent increase in caspase-1-like activity. However, pretreatment with a general caspase inhibitor had no significant effect on the amount of cortical damage observed at 7 days post-injury. Our data suggest that several pro-apoptotic events occur following TBI, however the translocation of cytochrome c itself and/or other events upstream of caspase activation/inhibition may be sufficient to induce neuronal cell death.

Analysis of Variance↗

Traumatic brain injury regulates adrenocorticosteroid receptor mRNA levels in rat hippocampus.

Glucocorticoid activation of two types of adrenocorticosteroid receptors (ACRs), the mineralocorticoid receptor (MR) and glucocorticoid receptor (GR), influences the vulnerability of hippocampal neurons to insult. To examine the potential impact of ACR activation following traumatic brain injury (TBI), the current study assesses regulation of MR and GR expression and glucocorticoid levels following controlled cortical impact (CCI). Male Sprague-Dawley rats were pretreated for 48 h with vehicle, the MR antagonist spironolactone, or the GR antagonist mifepristone (RU486). On day three, subjects were sham-operated or injured by unilateral CCI. In situ hybridization analysis determined that pretreatment with either MR antagonist spironolactone or GR antagonist RU486 increased 24-h hippocampal GR mRNA levels in sham-operated animals only, suggesting that MR and GR regulation of GR mRNA is suppressed following TBI. Injury decreased GR mRNA levels in the ipsilateral dentate gyrus of all pretreatment groups and bilaterally increased MR mRNA levels in CA3 of antagonist-pretreated animals. One day post-injury, plasma corticosterone levels were comparable in sham and injured animals pretreated with vehicle. A separate group of animals that did not receive pretreatment injections prior to sham operation or injury were included for a 24-h time course analysis of plasma ACTH and corticosterone levels. Injury increased hypothalamic-pituitary-adrenal (HPA) activation for approximately 6 h following injury. These results indicate that hippocampal ACR mRNA levels and HPA activation are altered by TBI. Regulation of MR and GR expression following TBI may influence hippocampal neuron viability by modulating glucocorticoid signaling after injury.

Adrenocorticotropic Hormone↗

Efficacy of methylprednisolone therapy for the injured rat spinal cord.

Currently the synthetic glucocorticosteroid methylprednisolone sodium succinate (MPSS) is the standard therapy after acute spinal cord injury (SCI) in humans based on reported neurological improvements. The mechanisms for its beneficial actions are not entirely clear, but experimental evidence suggests MPSS affords some degree of neuroprotection. As many studies with rat models of SCI have been unable to demonstrate improved behavioral outcome or tissue sparing after MPSS treatment, we chose to stereologically assess whether it alters lesion volume and tissue sparing over time, as well as long-term behavioral recovery. Adult rats subjected to contusion SCI with the NYU impactor were administered either MPSS or saline for 24 hr beginning 5 min post injury. Over time the lesion dimensions were extremely dynamic, such that by 6 weeks post injury the volumes were reduced to a third of those seen after the first week. MPSS marginally reduced lesion volumes across time vs. controls, but the amount of spared gray and white matter remained unaltered between the two groups. Behavioral results further showed that MPSS failed to improve recovery of hind-limb function. These findings add to the emerging scrutiny of MPSS as the standard therapy for acute SCI, as well as indicate the existence of a therapeutic window for tissue sparing restricted to the first several days after this type of SCI in rats. Equally important, our results caution the use of lesion volume dimensions or percent tissue sparing at the epicenter as indicators of therapeutic efficacy because neither reflects the actual amount of tissue sparing.

Animals↗

Early effects of tribromoethanol, ketamine/xylazine, pentobarbitol, and isoflurane anesthesia on hepatic and lymphoid tissue in ICR mice.

We investigated the effects of various anesthetic agents on hepatic and splenic injury in mice. Three and six hours after intraperitoneal injection of TBE, intramuscular injection of ketamine/xylazine combination (K/X), intraperitoneal injection of pentobarbital (PB), and inhalation of isoflurane (IF), or intraperitoneal and intramuscular injection of control saline, mice were exsanguinated and serum was obtained for measurement of hepatic aspartate transaminase (AST), alanine transaminase (ALT) and gamma-glutamyltransferase (GGT). The spleen and liver also were obtained, and sections were examined by use of routine light microscopy for pathologic changes and for apoptosis, as determined by use of the in situ terminal deoxynucleotidyl transferase-mediated dUPT nick-end-labeling (TUNEL) histochemical analysis. Three hours after TBE or K/X administration, AST activity increased three- to fourfold above that in untreated and saline-injected control animals, and remained high at six hours. Administration of PB did not effect AST activity at three hours, but there was a significant increase at six hours. Activity of ALT was non-significantly increased three hours after TBE and K/X, but not PB administration. Administration of IF had no effect on hepatic enzyme activities, and GGT was not increased after administration of any of the agents. Markedly increased apoptosis was observed in splenic follicles and in hepatic Kupffer and endothelial cells at three hours after TBE and K/X administration, but apoptosis decreased to control levels by six hours. Increased apoptosis was not observed after IF administration. Administration of TBE and K/X causes injury to lymphocytes and to hepatic Kupffer and endothelial cells within three hours, and PB administration induces changes within six hours. Thus, use of these anesthetic agents should be avoided when experiments are being designed to test short-term effects of an experimental intervention on the spleen and possibly on all lymphoid tissues. In addition, they also should be avoided in experiments testing effects on hepatic tissue.

Alanine Transaminase↗

The emerging functions of UCP2 in health, disease, and therapeutics.

The uncoupling proteins (UCPs) are attracting an increased interest as potential therapeutic targets in a number of important diseases. UCP2 is expressed in several tissues, but its physiological functions as well as potential therapeutic applications are still unclear. Unlike UCP1, UCP2 does not seem to be important to thermogenesis or weight control, but appears to have an important role in the regulation of production of reactive oxygen species, inhibition of inflammation, and inhibition of cell death. These are central features in, for example, neurodegenerative and cardiovascular disease, and experimental evidence suggests that an increased expression and activity of UCP2 in models of these diseases has a beneficial effect on disease progression, implicating a potential therapeutic role for UCP2. UCP2 has an important role in the pathogenesis of type 2 diabetes by inhibiting insulin secretion in islet beta cells. At the same time, type 2 diabetes is associated with increased risk of cardiovascular disease and atherosclerosis where an increased expression of UCP2 appears to be beneficial. This illustrates that therapeutic applications involving UCP2 likely will have to regulate expression and activity in a tissue-specific manner.

Aging↗