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Weidinger, G.

Publications and source records attributed to Weidinger, G..

3 recordsLinked to original sources

Biomolecular models of EPI-X4 binding to CXCR4 allow the rational optimization of peptides with therapeutic potential

The Endogenous Peptide Inhibitor of CXCR4 (EPI-X4) is a body-own fragment of albumin and specific antagonist of the CXC-motif-chemokine receptor 4 (CXCR4). CXCR4 signaling is induced by its sole chemokine ligand CXCL12 and is involved in a plethora of functions including cell homing, differentiation, survival and angiogenesis. Consequently, dysregulation of CXCR4 is involved in a variety of disorders, such as cancer or inflammatory diseases, making CXCR4 an attractive drug target. EPI-X4 and derivatives with increased CXCR4 binding affinities represent promising leads as CXCR4 antagonists and have shown therapeutic activity in mouse models of inflammatory diseases. However, it is currently unclear how EPI-X4 and its derivatives interact with CXCR4. Here, by combining biomolecular simulations with experimental mutagenesis and activity studies we investigated the binding behavior of EPI-X4 to CXCR4 at the molecular level. Our work allowed us to show that the EPI-X4 peptide interacts primarily in the minor pocket of CXCR4 through its N-terminal residues. The biomolecular interactions highlighted by the computational studies are in good agreement with the experimental mutagenesis data. Moreover, we found that the N-terminal seven amino-acids of EPI-X4 (a 16-mer) and its improved derivatives (12-mers) are sufficient for CXCR4 binding, which led to the development of shorter leads with optimized CXCR4 antagonizing properties. Collectively, we here established how EPI-X4 binds to its receptor and used this knowledge for rational drug design. The new peptide variants developed by us are more potent in terms of inhibiting CXCR4-downstream signaling and cancer cell migration, without toxic effects.

molecular biology

Is zebrafish heart regeneration complete? Lineage-restricted cardiomyocytes proliferate to pre-injury numbers but some fail to differentiate in fibrotic hearts

Adult zebrafish are frequently described to be able to "completely" regenerate the heart. Yet, the extent to which cardiomyocytes lost to injury are replaced is unknown, since only indirect or non-quantitative evidence for cardiomyocyte proliferation exists. We established stereological methods to quantify the number of cardiomyocytes at several time-points post cryoinjury. Intriguingly, after cryoinjuries that killed about 1/3 of the ventricular cardiomyocytes, pre-injury cardiomyocyte numbers were restored already within 30 days. Yet, many hearts retained small residual scars, and a subset of cardiomyocytes bordering these fibrotic areas remained smaller, lacked differentiated sarcomeric structures, and displayed defective calcium signaling. Thus, a subset of regenerated cardiomyocytes failed to fully mature. While lineage-tracing experiments have shown that regenerating cardiomyocytes are derived from differentiated cardiomyocytes, technical limitations have previously made it impossible to test whether cardiomyocyte trans-differentiation contributes to regeneration of non-myocyte cell lineages. Using Cre responder lines that are expressed in all major cell types of the heart, we found no evidence for cardiomyocyte transdifferentiation into endothelial, epicardial, fibroblast or immune cell lineages. Overall, our results imply a refined answer to the question whether zebrafish can completely regenerate the heart: in response to cryoinjury, preinjury cardiomyocyte numbers are indeed completely regenerated, while restoration of cardiomyocyte differentiation and function, as well as resorption of scar tissue, is less robustly achieved.

developmental biology

An optimized derivative of an endogenous CXCR4 antagonist prevents atopic dermatitis and airway inflammation

BackgroundAberrant CXCR4/CXCL12 signaling is involved in many pathophysiological processes including chronic inflammatory diseases. Thus, the chemokine receptor CXCR4 is a promising target for the therapy of inflammatory disorders, such as atopic dermatitis or allergic asthma. A natural fragment of serum albumin, named EPI-X4, has previous been identified as endogenous peptide antagonist and inverse agonist of CXCR4. The endogenous CXCR4 antagonist provides a promising basis for the development of improved analogues for the therapy of inflammatory diseases. ObjectiveTo increase the anti-CXCR4 activity of EPI-X4 and to evaluate the therapeutic potential of optimized analogs in mouse models of atopic dermatitis and asthma. MethodsMolecular docking analysis of the interaction of EPI-X4 with CXCR4 was performed to define critical interaction motifs and to rationally design analogs with increased activity. EPI-X4 derivatives were synthesized and CXCR4 binding and antagonizing activity determined in assays for antibody competition, inhibition of CXCR4-mediated HIV-1 infection, CXCL12-dependent Ca2+ mobilization, ERK and AKT phosphorylation and cell migration. Toxicity of peptides was evaluated in zebrafish embryos. The therapeutic efficacy of the lead peptide EPI-X4 JM#21 was determined in mouse models of atopic dermatitis and asthma. ResultsDocking analysis identified key interaction motifs of EPI-X4/CXCR4. Rational drug design allowed to increase the anti-CXCR4 activity of EPI-X4 and resulted in the generation of the lead analog JM#21, which bound CXCR4 and suppressed CXCR4-tropic HIV-1 infection more efficiently than the clinically approved small molecule CXCR4 antagonist AMD3100. JM#21 did not exert toxic effects in zebrafish embryos and efficiently prevented inflammation of the skin in a mouse model of atopic dermatitis. Moreover, EPI-X4 and its improved derivative suppressed allergen-induced infiltration of eosinophils and other immune cells into the airways of animals in an asthma mouse model. ConclusionThe rationally designed EPI-X4 derivative JM#21 is a potent antagonist of CXCR4 and the first CXCR4 inhibitor with therapeutic efficacy in atopic dermatitis. Further clinical development of this new class of CXCR4 antagonists for the therapy of atopic dermatitis, asthma and other CXCR4-associated diseases is highly warranted. Graphical Abstract O_FIG_DISPLAY_L [Figure 1] M_FIG_DISPLAY C_FIG_DISPLAY

immunology