Scinovex
articleTop 1% cited

Pathophysiology and treatment of focal cerebral ischemia

Journal of neurosurgery · 1992 · Vol. 77(2) · pp. 169–184
Bo K. Siesjö

Abstract

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++.

Neuroscience and Neuropharmacology ResearchTraumatic Brain Injury and Neurovascular DisturbancesNeuroinflammation and Neurodegeneration MechanismsPenumbraIschemiaMedicineCalciumPathophysiologyExtracellularExcitotoxicityCalcium metabolismGlutamate receptorCalcium in biology

MeSH terms

AcidosisAdenosine TriphosphateAmino AcidsBrain InjuriesCalciumBrain IschemiaCerebrovascular CirculationEnergy MetabolismHumansIntracellular FluidIonsPotassiumSodium
Citations
1,303
FWCI
21.69
field-weighted impact
References
314
Percentile
100%
vs. same field & year
Citations per year
Cited by
Brain ischemia and reperfusion: molecular mechanisms of neuronal injury
Journal of the Neurological Sciences · 2000 · 795 citations
Ischemic Cell Death in Brain Neurons
Physiological Reviews · 1999 · 3,021 citations
Magnetic Resonance Imaging of Acute Stroke
Journal of Cerebral Blood Flow & Metabolism · 1998 · 547 citations
Pathophysiology and treatment of focal cerebral ischemia
Journal of neurosurgery · 1992 · 1,303 citations
Pathophysiology and treatment of focal cerebral ischemia
Journal of neurosurgery · 1992 · 664 citations
The New Neurometabolic Cascade of Concussion
Neurosurgery · 2014 · 1,294 citations
Inflammatory Mediators and Stroke: New Opportunities for Novel Therapeutics
Journal of Cerebral Blood Flow & Metabolism · 1999 · 931 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.