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Biomedical subjects

C M Russo

Publications and source records attributed to C M Russo.

3 recordsLinked to original sources

Effect of the E200K mutation on prion protein metabolism. Comparative study of a cell model and human brain.

The hallmark of prion diseases is the cerebral accumulation of a conformationally altered isoform (PrP(Sc)) of a normal cellular protein, the prion protein (PrP(C)). In the inherited form, mutations in the prion protein gene are thought to cause the disease by altering the metabolism of the mutant PrP (PrP(M)) engendering its conversion into PrP(Sc). We used a cell model to study biosynthesis and processing of PrP(M) carrying the glutamic acid to lysine substitution at residue 200 (E200K), which is linked to the most common inherited human prion disease. PrP(M) contained an aberrant glycan at residue 197 and generated an increased quantity of truncated fragments. In addition, PrP(M) showed impaired transport of the unglycosylated isoform to the cell surface. Similar changes were found in the PrP isolated from brains of patients affected by the E200K variant of Creutzfeldt-Jakob disease. Although the cellular PrP(M) displayed some characteristics of PrP(Sc), the PrP(Sc) found in the E200K brains was quantitatively and qualitatively different. We propose that the E200K mutation cause the same metabolic changes of PrP(M) in the cell model and in the brain. However, in the brain, PrP(M) undergoes additional modifications, by an age-dependent mechanism that leads to the formation of PrP(Sc) and the development of the disease.

Amino Acid Substitution↗

Chronic pain.

Chronic pain is an emotional experience and is defined as pain lasting greater than six months. It is important to understand the neurophysiology of pain in order to treat it. Nociceptors in the periphery travel to the substantia gelatinosa of the spinal cord while secondary and tertiary afferents transmit information from the dorsal horn to the brain. Modification of pain information may take place in these ascending pathways or in descending pathways. Treatment of chronic pain is most successful when it is approached in a multidisciplinary fashion with the focus not only on treatment of underlying etiology, but also on the secondary impacts of pain on the patient's life. The management of chronic pain requires special expertise. Most of the experts in chronic pain assessment and management organize themselves into pain treatment centers. These centers vary widely in their approach to the problem. The most sophisticated is a multidisciplinary center that is university-based and includes teaching and research. Treatment of chronic pain includes a variety of medications, psychological support, and rehabilitation. Multidisciplinary pain management is also an integral part of the palliative care and hospice concept used to treat cancer pain.

Academic Medical Centers↗

Antigen-stimulated human interferon-gamma generation: role of accessory cells and their expressed or secreted products.

In response to cytomegalovirus (CMV) and Toxoplasma gondii antigens, T4+ cells from seropositive donors produce interferon-gamma (IFN-gamma) by different mechanisms; one (T. gondii) dependent upon and the other (CMV) largely independent of interleukin-2 (IL-2) and its receptor. To determine whether IFN-gamma-generating mechanisms unrelated to IL-2 also differ, we examined the requirement for accessory cells and their expressed or secreted products. In response to both specific antigens, IFN-gamma secretion was strictly dependent upon the presence of accessory cells (monocytes), and was largely inhibited by monoclonal antibodies to class II (HLA-DR and -DQ) but not class I MHC antigens. Both CMV and T. gondii antigens stimulated monocytes to release interleukin-1 (IL-1), and IFN-gamma production in response to both antigens was abolished by pretreatment with anti-IL-1 antibody. In contrast, the secretion of tumour necrosis factor (TNF) was not stimulated by either antigen, and IFN-gamma production was not diminished by antisera directed at TNF-alpha or TNF-beta. We conclude that CMV and T. gondii antigen-induced IFN-gamma production requires a similar accessory cell mechanism, and that soluble antigen-stimulated IFN-gamma secretion by human T4+ cells is dependent on monocytes, expression of class II MHC antigens, and the presence of IL-1.

Animals↗