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Despite recent therapeutic advances the prognosis of heart failure remains poor. Recent research suggests that heart failure is a heterogeneous syndrome and that many patients have stimulating auto-antibodies directed against the second extracellular loop of the \(β_1\) adrenergic receptor \((β_1EC2)\). In a human-analogous rat model such antibodies cause myocyte damage and heart failure. Here we used this model to test a novel antibody-directed strategy aiming to prevent and/or treat antibody-induced cardiomyopathy. To generate heart failure, we immunised n = 76/114 rats with a fusion protein containing the human β1EC2 (amino-acids 195–225) every 4 weeks; n = 38/114 rats were control-injected with 0.9% NaCl. Intravenous application of a novel cyclic peptide mimicking \(β_1EC2\) (\(β_1EC2-CP\), 1.0 mg/kg every 4 weeks) or administration of the \(β_1-blocker\) bisoprolol (15 mg/kg/day orally) was initiated either 6 weeks (cardiac function still normal, prevention-study, n = 24 (16 treated vs. 8 untreated)) or 8.5 months after the 1st immunisation (onset of cardiomyopathy, therapy-study, n = 52 (40 treated vs. 12 untreated)); n = 8/52 rats from the therapy-study received \(β_1EC2-CP/bisoprolol\) co-treatment. We found that \(β_1EC2-CP\) prevented and (alone or as add-on drug) treated antibody-induced cardiac damage in the rat, and that its efficacy was superior to mono-treatment with bisoprolol, a standard drug in heart failure. While bisoprolol mono-therapy was able to stop disease-progression, \(β_1EC2-CP\) mono-therapy -or as an add-on to bisoprolol- almost fully reversed antibody-induced cardiac damage. The cyclo¬peptide acted both by scavenging free \(anti-β_1EC2-antibodies\) and by targeting \(β_1EC2\)-specific memory B-cells involved in antibody-production. Our model provides the basis for the clinical translation of a novel double-acting therapeutic strategy that scavenges harmful \(anti-β_1EC2-antibodies\) and also selectively depletes memory B-cells involved in the production of such antibodies. Treatment with immuno-modulating cyclopeptides alone or as an add-on to \(β_1\)-blockade represents a promising new therapeutic option in immune-mediated heart failure.
Blimp-1 (B lymphocyte induced maturation protein-1) kontrolliert die Regulation der terminalen B-Zelldifferenzierung. So ist die ektopische Expression von Blimp-1 ausreichend, damit naive B-Zellen zu antikörpersezernierenden Zellen differenzieren können. Dabei wirkt Blimp-1 als transkriptioneller Repressor, der zusammen mit Kofaktoren die Chromatinstruktur in der Promotorregion der Zielgene modifiziert und so deren Expression steuert. Neben der ursprünglich beschriebnen Blimp-1 mRNA existiert eine weitere mRNA, welcher das Exon 7 fehlt (Blimp-1?exon7). In diesem Exon sind die ersten zwei von insgesamt fünf Zinkfingern kodiert, welche nachweislich essentiell für die sequenzspezifische DNA-Interaktion von Blimp-1 sind. In dieser Arbeit konnte gezeigt werden, dass die Blimp-1?exon7 Deletionsmutante vorwiegend in ruhenden CD19+ B-Zellen der Maus und in unstimulierten humanen B-Zellen exprimiert wird. Obwohl die Blimp-1 sequenzspezifische DNA-Bindung des Proteins (Blimp-1?Ex7) nicht mehr gegeben ist, lokalisiert es teilweise in den Kern, interagiert ebenfalls mit Korepressoren wie Histondeacetylase-2, und assoziiert mit heterochromatischen Bereichen der DNA. Die ektopische Expression von Blimp-1?Ex7 in einer murinen B-Zell-Lymphomlinie, führt zu Zellzyklusarrest und Apoptose, ohne jedoch die Differenzierung zur Plasmazelle zu ermöglichen. Darüber hinaus ist in Gegenwart von Blimp-1?Ex7 die LPS-induzierte B-Zelldifferenzierung blockiert. Die Unterdrückung der Differenzierung korreliert mit einer verminderten Blimp-1 Expression. Zusammenfassend legen die Ergebnisse den Schluss nahe, dass Blimp-1?Ex7 in naiven B-Zellen exprimiert wird und eine vorzeitige Differenzierung verhindert, indem es autoregulativ die Promotoraktivität herabsetzt und damit Blimp-1 kontrolliert.
Clinical and biological characteristics of medullary and extramedullary plasma cell dyscrasias
(2021)
Background: Extramedullary plasma cell (PC) disorders may occur as extramedullary disease in multiple myeloma (MM-EMD) or as primary extramedullary plasmocytoma (pEMP)/solitary osseous plasmocytoma (SOP). In this study, we aimed to obtain insights into the molecular mechanisms of extramedullary spread of clonal PC. Methods: Clinical and biological characteristics of 87 patients with MM-EMD (n = 49), pEMP/SOP (n = 20) and classical MM (n = 18) were analyzed by using immunohistochemistry (CXCR4, CD31, CD44 and CD81 staining) and cytoplasmic immunoglobulin staining combined with fluorescence in situ hybridization (cIg-FISH). Results: High expression of CD44, a cell-surface glycoprotein involved in cell-cell interactions, was significantly enriched in MM-EMD (90%) vs. pEMP/SOP (27%) or classical MM (33%) (p < 0.001). In addition, 1q21 amplification by clonal PC occurred at a similar frequency of MM-EMD (33%), pEMP/SOP (57%) and classical MM (44%). Conversely, del(17p13), t(4;14) and t(14;16) were completely absent in pEMP/SOP. Besides this, 1q21 amplification was identified in 64% of not paraskeletal samples from MM-EMD or pEMP compared to 9% of SOP or paraskeletal MM-EMD/pEMP and 44% of classical MM samples, respectively (p = 0.02). Conclusion: Expression of molecules involved in homing and cytogenetic aberrations differ between MM with or without EMD and pEMP/SOP.