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Biomedical subjects

M Wollmering

Publications and source records attributed to M Wollmering.

2 recordsLinked to original sources

Trauma primes cells.

Trauma induces many dramatic and complex changes in host cellular response. This complexity arises from the constellation of signals induced by stress, infection, and injury. Cellular priming, defined as altered response to an agonist induced by an antecedent stimulus, appears to be operative after trauma. If the interaction between two signalling pathways is such that one augments (or depresses) the other, subsequent stimulation of the second "primed" pathway can result in an exaggerated (or attenuated) response. Thus, trauma can prime cells in either a constructive or destructive fashion. Receptor stimulation by priming agents results in the activation of receptor-specific cell signalling pathways. These intracellular signalling pathways can "crosstalk" modifying each other in either a positive of negative fashion. The positive or negative character of interpathway crosstalk eventually manifests itself physiologically as constructive or destructive priming. Could the characteristics of the initial priming predict the sense of the final cellular message? Although the magnitude of both the priming stimulus and subsequent stimuli are important, the temporal relationship between the two stimuli as well as the positive or negative character of their interacting signal pathways need to be considered. It is unclear whether any one characteristic alone determines the sense of the priming effect. In general, it is the interaction of two stimuli with a cell at all three levels (magnitude, character, and temporal relationship) that dictates the final cellular response.

Animals↗

Age-related changes in beta-adrenergic neuroeffector systems in the human heart.

BACKGROUND: Aging decreases cardiac beta-adrenergic responsiveness in model systems and in humans in vivo. The purpose of this study was to comprehensively evaluate the age-related changes in the beta-receptor-G protein-adenylyl cyclase complex in nonfailing human hearts. METHODS AND RESULTS: Twenty-six nonfailing explanted human hearts aged 1 to 71 years were obtained from organ donors and subjected to pharmacological investigation of beta-adrenergic neuroeffector systems. When the population was subdivided into the 13 youngest and 13 oldest subjects, total beta-receptor density assessed by maximum [125I]ICYP binding (beta max) was reduced in older hearts by 37% in left ventricles and 31% in right ventricles (both P < .05), and the downregulation was confined to the beta 1 subtype (r = .78 left ventricle beta 1 density versus donor age). Older donor hearts exhibited a 3- to 4-fold rightward shift of ICYP-isoproterenol (ISO) competition curves and demonstrated 43% fewer receptors in a high-affinity agonist binding state (P < .05). Older hearts exhibited decreased adenylyl cyclase stimulation by ISO, by zinterol (beta 2-agonist), and by the G protein-sensitive probes forskolin, Gpp(NH)p, and NaF. In contrast, there was no change in response to manganese, a specific activator of the adenylyl cyclase catalytic subunit. Toxin-catalyzed ADP ribosylation in membranes prepared from older versus younger hearts revealed a 29% to 30% reduction (P < .05) with cholera toxin (Gs) but no difference with pertussis toxin (Gi). The systolic contractile response of isolated right ventricular trabeculae to ISO was decreased by 46%, with a 10-fold increase in ISO EC50 in older relative to younger donor hearts. CONCLUSIONS: There is a profound decrease in cardiac beta-adrenergic responsiveness with aging. This occurs by multiple mechanisms including downregulation and decreased agonist binding of beta 1-receptors, uncoupling of beta 2-receptors, and abnormal G protein-mediated signal transduction.

Adenylyl Cyclases↗