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Pathophysiology and treatment of focal cerebral ischemia. Part I: Pathophysiology.

This article examines the pathophysiology of lesions caused by focal cerebral ischemia. Ischemia due to middle cerebral artery occlusion encompasses a densely ischemic focus and a less densely ischemic penumbral zone. Cells in the focus are usually doomed unless reperfusion is quickly instituted. In contrast, although the penumbra contains cells "at risk," these may remain viable for at least 4 to 8 hours. Cells in the penumbra may be salvaged by reperfusion or by drugs that prevent an extension of the infarction into the penumbral zone. Factors responsible for such an extension probably include acidosis, edema, K+/Ca++ transients, and inhibition of protein synthesis. Central to any discussion of the pathophysiology of ischemic lesions is energy depletion. This is because failure to maintain cellular adenosine triphosphate (ATP) levels leads to degradation of macromolecules of key importance to membrane and cytoskeletal integrity, to loss of ion homeostasis, involving cellular accumulation of Ca++, Na+, and Cl-, with osmotically obligated water, and to production of metabolic acids with a resulting decrease in intra- and extracellular pH. In all probability, loss of cellular calcium homeostasis plays an important role in the pathogenesis of ischemic cell damage. The resulting rise in the free cytosolic intracellular calcium concentration (Ca++) depends on both the loss of calcium pump function (due to ATP depletion), and the rise in membrane permeability to calcium. In ischemia, calcium influx occurs via multiple pathways. Some of the most important routes depend on activation of receptors by glutamate and associated excitatory amino acids released from depolarized presynaptic endings. However, ischemia also interfers with the intracellular sequestration and binding of calcium, thereby contributing to the rise in intracellular Ca++. A second key event in the ischemic tissue is activation of anaerobic glucolysis. The main reason for this activation is inhibition of mitochondrial metabolism by lack of oxygen; however, other factors probably contribute. For example, there is a complex interplay between loss of cellular calcium homeostasis and acidosis. On the one hand, a rise in intracellular Ca++ is apt to cause mitochondrial accumulation of calcium. This must interfere with ATP production and enhance anaerobic glucolysis. On the other hand, acidosis must interfere with calcium binding, thereby contributing to the rise in intracellular Ca++.

Acidosis

[Physiology and pathophysiology of postnatal pulmonary adaptation. 2: Pathophysiology].

Subject of this review is the pathophysiology of the respiratory distress syndrome (RDS), the apnea, and the sudden-death infant syndrome (SIDS). The fatality rate of the RDS yet amounts to 24%. Preterm infants are preferably involved because of their deficient surfactant synthesis. The lack of surfactant causes atelectases, hyaline membranes, lung oedema, and augmentation of respiration work. Only towards the very end of gestation the amount of surfactant of the fetal lung increases rapidly so that the normal postnatal respiration is guaranteed. RDS produces a pathological circulatory situation with insufficiency of the right heart and congestion. The atrial natriuretic hormone is increased about tenfold in the serum of RDS-infants. Modern treatment of the RDS uses instillations of exogenous surfactants before the first breath. Apneic attacks are observed predominantly during REM-sleep. They seem to have pathological value only if they exceed 15 seconds. Infants with recurrent apnoea breathe periodically, they were mostly preterm newborns. Probably, the cause of recurrent apneic attacks are central regulatory deficits and adenosine may play an important pathological role as neurotransmitter. Arrhythmias of the heart including the QT-syndrome observed in SIDS-infants at risk may have the same central pathophysiological source.

Apnea

[Studies on the pathophysiology of paraneoplastic syndromes: both cancer cells and host immune cells are responsible for the pathophysiology of leukocytosis associated with oral cancer].

Leukocytosis associated with malignant disease has been known as a paraneoplastic syndrome and occurs occasionally in patients with oral malignancies. In this study, mechanisms underlying leukocytosis associated with malignancy was investigated, using a squamous cell carcinoma of the maxilla from a patient who manifested marked leukocytosis. When the patient's tumor was inoculated into nude mice, it formed squamous cell carcinoma (MH85) and induced leukocytosis and splenomegaly. Leukocytosis and splenomegaly paralleled tumor growth. Surgical excision of MH85 tumor resulted in a dramatic reduction of leukocyte count and spleen weight, indicating an involvement of humoral mediators released by MH85. MH85 cells conditioned medium (MH85CM) were shown to contain granulocyte-colony stimulating factor (G-CSF) activity, which is a potent growth factor specific for granulocytes. These results suggest G-CSF or G-CSF like substance secreted by MH85 cells is responsible for leukocytosis in MH85 bearing nude mice (MH85 mice) and in the patient. MH85 cell growth was stimulated by G-CSF and inhibited by anti-G-CSF antibody, thus suggesting that G-CSF like substance is a autocrine growth factor for MH85 cells. Splenectomized MH85 mice developed less severe leukocytosis than did non-splenectomized mice. This finding indicated that not only G-CSF like substance secreted by MH85 cells but other humoral factors released by the hyperplastic spleen contribute to the development of leukocytosis. Splenic monocytes derived from MH85 mice and MH85CM-stimulated splenic monocytes showed increased secretion of tumor necrosis factor (TNF) and interleukin-1 (IL-1), both of which have been reported to induce neutrophilia in animals. Moreover, injection of anti-TNF-antibody into neutrophilic MH85 mice significantly, although not completely, decreased leukocyte count. Thus, it seemed likely that increased secretion of TNF and IL-1 by spleen cells that are stimulated by humoral factors released from MH85 also contributes to the progression of leukocytosis. In splenectomized mice, enlargement of MH85 tumor was retarded and metastases were impaired compared these in nonsplenectomized mice. Coculture of splenocytes from MH85 mice with normal spleen cells, inhibited blastogenesis in response to mitogen. The result suggests that splenocytes from MH85 mice played as immune suppressive cells. MH85CM conferred immune suppressive activity on normal spleen cells. This suppressor cell-inducing factor (SCIF) in MH85CM was found to have an apparent molecular weight of approximately 25kd, and its biological activity was neutralized by anti-G-CSF antibody. Therefore, SCIF secreted by MH85 cells was likely to be G-CSF like substance.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

[Constituent Congress of the International Society for Pathophysiology].

Pathophysiology began from general pathology due to a necessity of experimental analysis of pathological processes. Its origins date back to the works of Magenndie and Claude Bernard who introduced the concept of "experimental pathology". It is noteworthy that the founder of cellular pathology, Rudolph Virchow, emphasized the crucial importance of regulation disturbance for physiological processes as an essential mechanism of disease pathogenesis and used the term "pathological physiology". In Russia this term was defined by V.V. Pashutin in his lectures on pathological physiology (1878). In this country, in the thirties of this century pathophysiology acquired the significance of a medical discipline and was included in the medical education curricula. I. P. Pavlov, who designated pathophysiology as experimental pathology, greatly contributed to this end. In 1819, Galliot published a manual in general pathology and pathological physiology. But the first textbook in pathophysiology seems to have been written 200 years ago, as early as 1790, by professor A. F. Hecker, from the Erfurt University, who read lectures in "Physiologia pathologica". Thus, pathophysiology originated independently in various countries which testifies to the objective necessity for its origination due to medicine development. However, contemporary pathophysiology appreciably differs from that at its earlier stages of development, and even from that of several decades ago. Modern pathophysiology ceased to be just experimental pathology, it has acquired a new quality, having become an integrative biomedical science. This feature is due to medicine development, growing differentiation of medicine, and to an ever increasing body of diverse information about different pathological processes. All this brought about a necessity for the birth of an integrative medical science.(ABSTRACT TRUNCATED AT 250 WORDS)

History, 18th Century

[Pathophysiology of acute pancreatitis].

Recent experiments in different animal models of acute pancreatitis have improved our understanding of the pathophysiology of this disease. The present review discusses the individual steps and mechanisms and puts them into a pathophysiologic concept for the two most important forms of acute pancreatitis (alcoholic and biliary form). In biliary acute pancreatitis a temporary occlusion of the common channel by impacted stones may be followed by a reflux into the pancreatic duct. This reflux results in an increase of ductal permeability and extravasation of cytotoxic agents into the surrounding tissue. As consequences, disturbances of compartimentation and faulty activation of enzymes occur in pancreatic cells. Long-term cellular damage, obstruction of pancreatic ducts and increase of ductal permeability with leakage of noxious agents play a substantial role in pathophysiology of alcoholic pancreatitis. Sustained abuse of alcohol usually leads to chronic pancreatitis. Additional, as yet unknown factors are necessary to induce acute alcoholic pancreatitis. Following its initiation by different etiological sources, pathophysiology of acute pancreatitis may take a similar course. Digestive enzymes are activated and set free into intracellular, intraductal and interstitial spaces. Trypsin as the trigger-enzyme of activation cascade is thought to play a major role. In addition, lipolytic enzymes may be involved in the pathophysiologic process. Phospholipase A is known to release lysolecithin which causes membrane damage. Recent studies indicate that the release of fatty acids by lipase causes acinar cell necrosis. New insights into the pathophysiology may lead to a rational and more successful therapy of acute pancreatitis.

Acute Disease

Pathophysiologic glucocorticoid elevations promote bacterial translocation after thermal injury.

Thermal injury results in transient elevations of plasma glucocorticoids and promotes translocation of bacteria from the gut to the mesenteric lymph nodes (MLN) in rats. Translocated organisms are quickly cleared following uncomplicated thermal injury. However, subsequent burn wound infection, in temporal association with sustained pathophysiologic elevations of plasma corticosterone, results in the continued presence of enteric bacteria in the MLN. To study the role of sustained pathophysiologic steroid elevations in the mediation of this prolonged bacterial translocation, Wistar rats were randomly placed in groups receiving one of the following: (i) a 30% total body surface area scald injury with placement of a subcutaneous corticosterone pellet, (ii) a 30% total body surface area scald and a sham pellet implantation, (iii) a sham burn and a corticosterone pellet implantation, or (iv) a sham burn and a sham pellet implantation. The animals were sacrificed on days 1 and 4 after injury, and cultures of the MLN, as well as the liver and spleen, were taken. Implantation of corticosterone pellets resulted in sustained elevations of plasma corticosterone compared with controls not receiving corticosterone pellets, similar to results seen in association with injury and infection. These pathophysiologic elevations were associated with the prolonged presence of organisms in the MLN (90% of burned rats with implanted corticosterone pellets versus 25% of rats with uncomplicated burns on postburn day 4; P less than 0.01), but only in the presence of burn injury. Pathophysiologic glucocorticoid elevations did not lead to progression of translocation to the viscera or blood. Thus, the pathophysiologic glucocorticoid response contributes to the translocation of enteric bacteria and their prolonged presence in the MLN after systemic injury.

Animals

The relationship of pineal calcification and melatonin secretion to the pathophysiology of tardive dyskinesia and Tourette's syndrome.

Despite current intensive research, the pathophysiology of tardive dyskinesia (TD), a serious neurological side effect of neuroleptic treatment, is poorly understood. Prompted by the observation of an increased incidence and severity of abnormal perioral movements in neuroleptic-treated pinealectomized, as compared to intact rats, we suggested that the pineal gland exerts a protective effect which mitigates against the development of TD and, by inference, that reduced melatonin secretion may be related to the pathophysiology of TD. To investigate this proposition further, we studied the association of TD with pineal calcification (PC) on CT scan in chronic schizophrenic patients. Our findings revealed a significant association between TD and PC and suggest, furthermore, that PC may be a neuroradiological marker of TD. Since PC may reflect diminished secretory activity of the gland, these findings support the hypothesis that the pathophysiology of TD is linked to disturbances of melatonin secretion. The clinical and therapeutic implications of these novel findings are discussed. In the following communication, in which we introduce the hypothesis that disturbances of 5-HT and melatonin secretion are related to the pathophysiology of TD. Subsequently, we present a series of studies which relate to the association of TD with PC. We conclude by presenting the hypothesis that disturbances in melatonin secretion may also be relevant to the pathophysiology of Tourette's syndrome.

Adult