Setting the record straight.
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Biomedical subjects
Publications and source records attributed to David Naylor.
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BACKGROUND: The authors assessed the safety and resource use associated with fast-track cardiac anesthesia (FTCA) after coronary artery bypass graft surgery (CABG) over a 1-yr period. METHODS: One hundred twenty patients were initially randomized to FTCA (n = 60) or conventional anesthetic (n = 60) for primary elective CABG surgery. Patients were followed for 1-yr after index surgery through linkage to universal administrative databases. Acute care hospital readmission rates and length of stay (LOS) and the downstream use of health resources were compared. Resource use was analyzed as use of hospital and rehabilitation center bed-days, expenditures on physician services, and use of cardiac drugs. RESULTS: There were no deaths during the 1-yr follow-up after initial discharge; 15 (25%) patients from both groups were readmitted to acute care hospitals in the follow-up period. The mean LOS for acute care readmission was 0.3 (1.0) in the FTCA and 1.6 (6.3) days in the conventional group at 3 months; P= 0.01, 95% CI (0.1, 5.7) and 0.8 (1.8) and 2.9 (9.6) days at 12 months; P= 0.01, 95% CI (0.2, 7.5). Two (3.3%) patients in the FTCA group and 9 (15%) patients in the conventional group were transferred to rehabilitation facilities. The LOS was 0.3 (1.5) and 2.3 (5.7) days respectively; P= 0.001, 95% CI (0.6, 4.0). Specialist visits were more frequent in the FTCA group 6.2 (13.2) versus 1.9 (2.2) visits respectively; P= 0.002, 95% CI (-9.0, -1.3). Percentage reduction of FTCA cost was 68% at 3 months, P= 0.0002 and 49.5% at 1-yr, P= 0.004 after index hospital discharge. CONCLUSIONS: Fast-track cardiac anesthesia is a safe practice that decreases resource use for a 1-yr period after index hospitalization.
The response of the developing brain to epileptic seizures and to status epilepticus is highly age-specific. Neonates with their low cerebral metabolic rate and fragmentary neuronal networks can tolerate relatively prolonged seizures without suffering massive cell death, but severe seizures in experimental animals inhibit brain growth, modify neuronal circuits, and can lead to behavioral deficits and to increases in neuronal excitability. Past infancy, the developing brain is characterized by high metabolic rate, exuberant neuronal and synaptic networks and overexpression of receptors and enzymes involved in excitotxic mechanisms. The outcome of seizures is highly model-dependent. Status epilepticus may produce massive neuronal death, behavioral deficits, synaptic reorganization and chronic epilepsy in some models, little damage in others. Long-term consequences are also highly age- and model-dependent. However, we now have some models which reliably lead to spontaneous seizures and chronic epilepsy in the vast majority of animals, demonstrating that seizure-induced epileptogenesis can occur in the developing brain. The mode cell death from status epilepticus is largely (but not exclusively) necrotic in adults, while the incidence of apoptosis increases at younger ages. Seizure-induced necrosis has many of the biochemical features of apoptosis, with early cytochrome release from mitochondria and capase activation. We speculate that this form of necrosis is associated with seizure-induced energy failure.
PURPOSE: We used a model of self-staining status epilepticus (SSSE), induced by brief intermittent stimulation of the perforant path in unanesthetized rats, to study the mechanism of initiation and of maintenance of SSSE and the role of neuropeptides in those processes. METHODS: The perforant path was stimulated intermittently for 7 min (ineffective stimulation) or 30 min (generating SSSE). Peptides and their agonists and antagonists were delivered either intraperitoneally, or directly into the hippocampus through a implanted cannula. Behavior and electroencephalogram (EEG) were recorded through a videotape-telemetry system with automatic spike and seizures detection programs, which were supplemented by manual review of the records to confirm the diagnosis. Immunocytochemistry and enzyme-linked immunosorbent assay followed published methods. RESULTS: Initiation of SSSE was blocked by many agonists of inhibitory neurotransmitters or neuromodulators, and by many antagonists of excitatory synapses, and was facilitated by agents with the opposite action, suggesting the activation of a complex circuit with multiple potential entry points. Once SSSE was established, however, only N-methyl-d-aspartate (NMDA)-receptor ligands and a few neuropeptides had major effects on its maintenance. Galanin and dynorphin had powerful anticonvulsant roles in the maintenance phase of SSSE, whereas somatostatin and neuropeptide Y suppressed seizures only transiently. SSSE seemed to induce maladaptive changes in neuropeptides: it depleted the hippocampus of the galanin- and dynorphin-immunoreactive (IR) fibers, which normally function as endogenous anticonvulsants; whereas it induced overexpression of the proconvulsant neuropeptides substance P and neurokinin B; however, late in the course of SSSE, galanin-IR interneurons appeared in the dentate hilus. CONCLUSIONS: Initiation of SSSE seems to involve a circuit with many points of entry, and blockage of any point along this circuit inhibits the development of SSSE. Far fewer agents alter the maintenance phase of SSSE. Galanin, dynorphin, somatostatin, and neuropeptide Y have anticonvulsant roles, matching the previous described convulsant role of substance P and neurokinin B. Galanin and dynorphin seem to undergo maladaptive changes, which appear to play an important role of the maintenance phase of SSSE. Later, the de novo expression of inhibitory neuropeptides in novel cells in hippocampus coincides with the waning of seizures and may play a role in their termination.
PURPOSE: To describe the natural history of chronic epilepsy after experimental self-sustaining status epilepticus (SSSE) and to correlate patterns of SSSE with ictal, interictal, and plastic changes that characterize chronic epilepsy. METHODS: SSSE was induced in adult Wistar rats by 30-min intermittent electrical stimulation of the perforant path. In some animals, SSSE was treated by short-term administration of antiepileptic drugs (AEDs). After SSSE, EEG and animal behavior were monitored for </=1 year. Some animals were killed to study mossy fiber sprouting in the dentate gyrus. RESULTS: Despite the high reproducibility of the electrographic and behavioral manifestations of SSSE, patterns of chronic epilepsy varied considerably among animals in terms of seizure frequency, initial seizure pattern at the onset of chronic epilepsy, and frequency of interictal spikes. Statistically significant correlations were found between spike frequency during SSSE and interictal spike frequency, as well as between the frequency of spontaneous seizures and degree of mossy fiber sprouting. Early treatment of SSSE prevented the occurrence of spontaneous seizures and significantly decreased frequency of interictal spikes. Late treatment of SSSE did not prevent spontaneous seizures, but significantly decreased their frequency, and eventually may lead to remission of epilepsy. CONCLUSIONS: SSSE leads after a "silent" period to chronic epilepsy, which is maintained for > or =1 year in the rat. The silence is only behavioral, because EEG paroxysmal activity is seen in every animal. In this model of SSSE, the timing of treatment is a major determinant of outcome. Early treatment reduces the incidence of chronic epilepsy, whereas late treatment only reduces its severity. The possibility that this reduction of the severity of epilepsy may led to spontaneous remissions merits further study.
PURPOSE: To study acute and chronic physiological effects of perforant path stimulation using paired-pulse and nonlinear signal analysis techniques (Wiener kernel analysis). METHODS: Two to 3-month-old Wistar rats were implanted with stimulating electrodes in the perforant path and recording electrodes in the granule cell layer. Loss of paired-pulse inhibition was produced with 2 Hz continuous and 20 Hz (10 s/min) intermittent stimulation for periods of 1-15 min (0.1 ms, 20 v pulses). Some animals received 30-60 min of stimulation, a model for status epilepticus/epileptogenesis. Responses to paired-pulse or white noise inputs were recorded sequentially. RESULTS: Loss of inhibition with brief 1-3 min of stimulation, measured by increase paired-pulse ratio (P2/P1 ISI 40 ms) from 0.25 (+/-0.27) pre- to 1.02 (+/-0.18) post-stimulation (p < 0.001), lasted 43 (+/-15) min. For 30-60 min of stimulation, the paired-pulse ratios were 0.088 (+/-0.11), 1.59 (+/-0.036), 0.06 (+/-0.11), 0.82 (+/-0.22) for pre-, immediate post-, 1 week post-, and 1 month poststimulation, respectively (p < 0.025). Compared to prestimulation values, Wiener kernel amplitudes for immediate, 1 week, and 1 month poststimulation were 24% (+/-13%), 72% (+/-17%), and 31% (+/-21%), respectively (p < 0.05). Wiener kernels 1 month poststimulation showed response prolongation with increased opportunity for excitatory interactions of inputs (particularly those separated by 4 ms). CONCLUSIONS: Brief perforant path stimulation causes sustained loss of inhibition in the dentate, possibly an early event in the transition to status epilepticus. Stimulation for 30-60 min causes chronic changes in paired-pulse and white noise (Wiener kernel) responses. Transient recovery occurs by 1 week, but later new features appear (including delayed/late inhibition and potential excitatory cross-talk) that might favor epileptic seizures.