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Renkawitz, T.

Publications and source records attributed to Renkawitz, T..

3 recordsLinked to original sources

Load activated FGFR and beta1 integrins target distinct chondrocyte mechano-response genes

In response to mechanical stimuli, chondrocytes adapt their transcriptional activity, thereby shaping the cellular mechano-response; however, it remains unclear whether the activation of cell surface receptors during mechanical loading converge in the activation of the same mechano-response genes, or whether pathway-specific genes can be defined. We aimed to determine whether load-activated FGF/FGFR signalling and {beta}1 integrin jointly activate ERK and control the same or distinct subsets of mechano-regulated genes. To this end, tissue-engineered neocartilage was generated from murine costal chondrocytes or human articular chondrocytes and subjected to dynamic unconfined compression with or without FGFR inhibition. To assess the role of {beta}1 integrins, neocartilage was generated from embryonic {beta}1 integrin-deficient or wild type costal chondrocytes. Load-activated FGFR signalling drove ERK activation in murine chondrocytes, and partially also in human chondrocytes, and mechano-response genes could be classified according to their regulation: Fosl1, Itga5, Ngf and Timp1 were regulated by load-activated FGFR depending on the developmental stage, whereas {beta}1 integrins controlled Inhba expression. In human chondrocytes, load-activated FGFR controlled expression of BMP2, PTGS2 and DUSP5, but not FOSB. We show here that the chondrocyte loading response is coordinated by concurrent activation of multiple receptors, and identified for the first time distinct target genes of activated receptors. These insights open up the opportunity to pharmacologically shape the mechano-response of chondrocytes in future studies with promising implications for the management of osteoarthritis and the development of novel therapeutic strategies.

cell biology↗

Cause and chondroprotective effects of prostaglandin E2 secretion during mesenchymal stromal cell chondrogenesis

Mesenchymal stromal cells (MSCs) that are promising for cartilage tissue engineering secrete high amounts of prostaglandin E2 (PGE2), an immunoactive mediator involved in endochondral bone development. This study aimed to identify drivers of PGE2 and its role in the inadvertent MSC misdifferentiation into hypertrophic chondrocytes. PGE2 release which rose in the first three weeks of MSC chondrogenesis was jointly stimulated by endogenous BMP, WNT, and hedgehog activity that supported the exogenous stimulation by TGF-{beta}1 and insulin, and overcame the PGE2 inhibition by dexamethasone. Experiments with PGE2 treatment or the inhibitor celecoxib or specific receptor antagonists demonstrated that although driven by prohypertrophic signals, PGE2 exerted broad autocrine antihypertrophic effects. This chondroprotective effect makes PGE2 not only a promising option for future combinatorial approaches to direct MSC tissue engineering approaches into chondral instead of endochondral development, but could potentially have implications for the use of COX-2-selective inhibitors in osteoarthritis pain management.

cell biology↗

Distinct Functional States of Neutrophils by Actin Disassembly and NF-kB/STAT3 Signaling

Polymorphonuclear neutrophils (PMNs) can differentiate into distinct states, which can either exacerbate or resolve inflammation. Our study shows that mice challenged with TLR agonists exhibited PMN differentiation along two major paths characterized by the expression of CCR5 or PD-L1. Similar differentiation was observed in the blood of severe COVID-19 patients and the synovial fluid of osteoarthritis patients. Prolonged in vitro priming of human PMNs modeled the differentiation paths. Actin disassembly favored CCR5 upregulation, while NF-kB activation stabilized the actin cytoskeleton and suppressed the development of CCR5+ PMNs. Additionally, PD-L1 upregulation was triggered by STAT3 signaling and NF-kB activation. Functionally, CCR5 expressing PMNs were pro-NETotic, while PD-L1+ PMNs showed immunosuppressive functions by inhibiting T cell proliferation via PD1. Together, PMN differentiation depended on the priming conditions, and the balance between actin disassembly and NF-kB/STAT3 activation translated the present micro-milieu into phenotypic and functional diversification of PMNs. SynopsisNeutrophils underwent phenotypical and functional diversification both in vivo and in vitro. Actin disassembly led to the generation of CCR5high neutrophils with increased spontaneous NETosis, whereas NF-kB and STAT3 induced PD-L1 expression with T-cell suppressive properties as a deviation from the default pathway. O_LIPMN of mice challenged with TLR agonists develop two distinct phenotypes, CCR5high and PD-L1high. C_LIO_LICCR5 and PD-L1-defined neutrophil phenotypes were found in blood of patients with severe COVID-19 and in the synovial fluid of osteoarthritis patients. C_LIO_LIIn vitro priming induced a similar bifurcation of PMN phenotypes marked by either CCR5 or PD-L1. C_LIO_LIActin disassembly preceded canonical development of CCR5+ PMN. C_LIO_LINF-kB halted actin disassembly by LPL regulation. C_LIO_LIDuring neutrophil priming, STAT3 aided NF-kB in the expression of PD-L1. C_LI Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=159 HEIGHT=200 SRC="FIGDIR/small/548975v1_ufig1.gif" ALT="Figure 1"> View larger version (29K): org.highwire.dtl.DTLVardef@10305f3org.highwire.dtl.DTLVardef@17bada8org.highwire.dtl.DTLVardef@c61021org.highwire.dtl.DTLVardef@14ce7f3_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗