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Biomedical subjects

Caroline Ospelt

Publications and source records attributed to Caroline Ospelt.

8 recordsLinked to original sources

Technology insight: gene transfer and the design of novel treatments for rheumatoid arthritis.

Rheumatoid arthritis (RA) is a chronic inflammatory disease characterized by systemic inflammation and joint destruction. Novel therapies have emerged during the past decade, marking a new era in the treatment of RA. Meanwhile, in vivo and in vitro gene-transfer studies have provided valuable insights into mechanisms of disease pathogenesis. Advanced gene-delivery techniques and animal models promise further progress in RA research and the development of novel therapeutic strategies for this disease. In this article we provide an overview of the wide spectrum of potential targets that have been identified so far, discuss currently available gene-transfer methods, and outline the barriers that need to be overcome for these approaches to be successfully applied in daily practice.

Animals↗

Synovial cell activation.

PURPOSE OF REVIEW: Modern molecular biology offers a unique opportunity to gain a comprehensive picture of gene expression in a disease state. This review presents recent findings in the field of synovial fibroblast biology contributing to knowledge of the pathogenesis of rheumatoid arthritis. RECENT FINDINGS: Recently it has become apparent that innate immune response pathways play a critical role in driving synovial activation and contribute significantly to the turnover of leukocytes in the synovial compartment. In addition, microparticles have been identified as a new class of potent mediators, broadening the known spectrum of cell-derived modulators in the joint. Numerous research groups gained new insights into detailed molecular mechanisms leading to the invasiveness of rheumatoid arthritis synovial fibroblasts, the disturbance in the regulation of apoptosis, and synovial cell-cell and cell-matrix interactions. SUMMARY: The key role of synovial fibroblasts in the pathogenesis of rheumatoid arthritis has been highlighted by the fact that these cells not only are the main executors of cartilage and bone destruction but also modulate numerous interactions in rheumatoid joints. Moreover, it has become evident that integration of a large body of information is indispensable to get a comprehensive outlook on synovial activation in the pathology of rheumatoid arthritis.

Arthritis, Rheumatoid↗

Safety concerns on the development of novel therapeutic drugs.

Along with recent innovative approaches resulting in the development of new therapies such as small molecular inhibitors, therapeutic antibodies, recombinant proteins and gene therapy, there is increasing need for improved understanding of the basic molecular mechanisms that are exploited by such treatments. Helpful tools in the analysis of drug effects include high-throughput screening techniques such as microarrays, which are used in transcriptomics and pharmacogenomics. Although we are far from using these extensive and costly tests in our daily clinical routine, their application in basic research nevertheless takes us closer to individualized therapeutic strategies, in which the optimal therapeutic regimen is identified for each individual patient.

Drug Design↗

Somatic mutations in mitochondria: the chicken or the egg?

Somatic mutations of mitochondrial DNA have been detected in various pathologies such as cancer, neurodegenerative diseases, cardiac disorders and aging in general. Now it has been found that patients with rheumatoid arthritis also have a higher incidence of mitochondrial mutations in synoviocytes and synovial tissue compared with patients with osteoarthritis. Furthermore, it has been shown that these mutations possibly result in changed peptides that are presented by major histocompatibility complex II and thus might be recognized as non-self by the immune system. Further studies will show whether these mutations are actually able to trigger autoimmune inflammation in rheumatoid arthritis or whether they must be considered epiphenomena of cellular damage in chronic inflammation.

Amino Acid Substitution↗

Synovial activation in rheumatoid arthritis.

Rheumatoid arthritis (RA) is a chronic inflammatory disease with progressive articular damage. Activated cells of the synovium produce pro-inflammatory and matrix-degrading effector molecules, which maintain the inflammation and lead to the destruction of the involved joints. In addition to macrophages and T- and B-cells, fibroblast-like synoviocytes must be considered key cells in driving the pathological processes. They can be distinguished by their transformed-appearing phenotype and their invasion into adjacent cartilage and bone. Synovial activation is driven by pro-inflammatory cytokines as well as cytokine independent pathways including endogenous retroviral elements and Toll-like receptors (TLR). These pathways are connected by a complex network of autocrine and paracrine acting factors. Another feature of RA synovium is hyperplasia of the lining layer, which results from increased proliferation and decreased apoptosis of synovial fibroblasts. Thanks to new techniques in basic research, novel insights into the cellular and molecular mechanisms of the pathogenesis of RA were gained and led to the development of new, specific therapeutic strategies.

Animals↗

Time course of coagulation parameters, cytokines and adhesion molecules in Plasmodium falciparum malaria.

We studied 38 patients with malaria tropica over a period of 5 days during antiparasitic therapy. Serum or plasma levels of interleukin (IL) 1beta, IL-6, IL-10, tumour necrosis factor-alpha (TNF-alpha), the soluble vascular adhesion molecule (sVCAM) and the soluble intracellular adhesion molecule (sICAM) were determined by enzyme-linked immunosorbent assay. Protein C and antithrombin III activity were analysed by chromogenic tests and protein S activity by a clotting test. Antithrombin III, protein C and protein S activity was significantly lower in patients with severe malaria and displayed a highly significant increase in activity over the time of evaluation. Levels of sVCAM and sICAM were increased for the whole study period, but no significant differences were found between severe and mild malaria cases. Serum IL-1beta, IL-6 and IL-10 levels were significantly higher in patients with severe malaria, whereas no significant differences were found for TNF-alpha. IL-6 and IL-10 decreased significantly over 5 days during schizontocidal therapy. Our data show an impairment of the coagulation system which correlates with pro-inflammatory cytokines and therefore with the severity of the disease.

Adolescent↗