16 research outputs found

    Murine Metatarsus Bone and Joint Collagen-I Fiber Morphologies and Networks Studied With SHG Multiphoton Imaging

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    Chronic inflammatory disease of bones and joints (e.g., rheumatoid arthritis, gout, etc.), but also acute bone injury and healing, or degenerative resorptive processes inducing osteoporosis, are associated with structural remodeling that ultimately have impact on function. For instance, bone stability is predominantly orchestrated by the structural arrangement of extracellular matrix fibrillar networks, i.e., collagen-I, -IV, elastin, and other proteins. These components may undergo distinct network density and orientation alterations that may be causative for decreased toughness, resilience and load bearing capacity or even increased brittleness. Diagnostic approaches are usually confined to coarse imaging modalities of X-ray or computer tomography that only provide limited optical resolution and lack specificity to visualize the fibrillary collagen network. However, studying collagen structure at the microscopic scale is of considerable interest to understand the mechanisms of tissue pathologies. Multiphoton Second Harmonic Generation (SHG) microscopy, is able to visualize the sterical topology of the collagen-I fibrillar network in 3D, in a minimally invasive and label-free manner. Penetration depths exceed those of conventional visible light imaging and can be further optimized through employing decalcification or optical clearing processing ex vivo. The goal of this proof-of-concept study was to use SHG and two-photon excited fluorescence (2-PEF) imaging to mainly characterize the fibrillary collagen organization within ex vivo decalcified normal mouse metatarsus bone and joint. The results show that the technique resolved the fibrillar collagen network of complete bones and joints with almost no artifacts and enabled to study the complex collagen-I networks with various fiber types (straight, crimped) and network arrangements of mature and woven bone with high degree of detail. Our imaging approach enabled to identify cavities within both cortical and trabecular bone architecture as well as interfaces with sharply changing fiber morphology and network structure both within bone, in tendon and ligament and within joint areas. These possibilities are highly advantageous since the technology can easily be applied to animal models, e.g., of rheumatoid arthritis to study structural effects of chronic joint inflammation, and to many others and to compare to the structure of human bone

    A Novel Bone Substitute with High Bioactivity, Strength, and Porosity for Repairing Large and Load-Bearing Bone Defects.

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    Achieving adequate healing in large or load-bearing bone defects is highly challenging even with surgical intervention. The clinical standard of repairing bone defects using autografts or allografts has many drawbacks. A bioactive ceramic scaffold, strontium-hardystonite-gahnite or "Sr-HT-Gahnite" (a multi-component, calcium silicate-based ceramic) is developed, which when 3D-printed combines high strength with outstanding bone regeneration ability. In this study, the performance of purely synthetic, 3D-printed Sr-HT-Gahnite scaffolds is assessed in repairing large and load-bearing bone defects. The scaffolds are implanted into critical-sized segmental defects in sheep tibia for 3 and 12 months, with bone autografts used for comparison. The scaffolds induce substantial bone formation and defect bridging after 12 months, as indicated by X-ray, micro-computed tomography, and histological and biomechanical analyses. Detailed analysis of the bone-scaffold interface using focused ion beam scanning electron microscopy and multiphoton microscopy shows scaffold degradation and maturation of the newly formed bone. In silico modeling of strain energy distribution in the scaffolds reveal the importance of surgical fixation and mechanical loading on long-term bone regeneration. The clinical application of 3D-printed Sr-HT-Gahnite scaffolds as a synthetic bone substitute can potentially improve the repair of challenging bone defects and overcome the limitations of bone graft transplantation

    Studies on the inactivation process of the tyrosine kinase Src in the integrin alphaIIb-beta3 signaling pathway by fluorescence microscopy

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    Essentiell für die Blutstillung (Haemostase) ist die Thrombozyten- oder Blutplaettchen-Adhaesion und die Thrombus-Bildung. Beide Vorgaenge werden hauptsaechlich durch den Thrombozyten-Rezeptor Integrin alphaIIb-beta3 vermittelt. Nach Bindung des Liganden Fibrinogen aendert sich die Rezeptor-Konformation, Integrine assoziieren und ein intrazellulaeres Signalnetzwerk wird aktiviert, welches die Organisation des Aktin-Zytoskeletts steuert. Diese Zytoskelett-Reorganisationen sind Grundlage für zellulaere Adhaesions- und Aggregations-Prozesse. Die Signalvermittlung vom Integrin zum Zytoskelett wird durch die Protein-Tyrosinkinase Src eingeleitet, deren Aktivitaetszustand den Signalweg reguliert. Bei der Src-Aktivierung wird Tyrosin 418 durch Autokatalyse phosphoryliert. Die Kinase muss jedoch wieder inaktiviert werden. Dies übernimmt in Plaettchen ausschliesslich die Tyrosinkinase Csk (C-terminale Src Kinase) durch Phosphorylierung von Tyrosin 529 im C-terminalen Ende des Proteins. Die Csk-vermittelte Inaktivierung von Src stellt den entscheidenden Kontrollschritt des alphaIIb-beta3-vermittelten Signalwegs dar. Obwohl bekannt ist, dass die Src-Aktivierung bei der Zelladhaesion an den Zellraendern der Lamellipodien geschieht und man den Mechanismus und die Kinetik der Src-Csk Interaktion genauer versteht, ist bislang immer noch unbekannt, wo und wie Src inaktiviert wird bzw. welche Rolle der Src-Inaktivierung genau zukommt. FRET (Fluoreszenz-Resonanz-Energie-Transfer) ist ein physikalischer Effekt, mit dem Interaktionen beliebiger fluoreszenzmarkierter Proteine mikroskopisch detektiert werden koennen. Diese Technik wurde genutzt, um die Src-Csk-Interaktion waehrend der alphaIIb-beta3-vermittelten Fibrinogen-Adhaesion in einer etablierten Thrombozyten-Modellzelllinie (A5-CHO) direkt visualisierbar zu machen. Es zeigten sich starke Src-Csk Interaktionen (FRET-Signale) an den Zellraendern aktiver Lamellipodien und zusaetzlich in Fokalkontakten, wo beide Proteine mit Vinculin, einem Fokalkontakte-Marker, co-lokalisierten. Die Proteininteraktionen folgten einem hochdynamischen Ablauf. Nach der Akkumulation der Src-Csk Komplexe an den Zellraendern wanderten sie in Abstaenden von 2-3 Minuten nach innen, fragmentierten und bildeten schliesslich stabile Fokal-Adhaesionen. FRET-Signale an den Zellraendern fanden sich vor allem in ruhenden Lamellipodien bzw., waehrend des Lamellipodien-Rückzugs, in wachsenden Lamellipodien traten die FRET-Signale dort dagegen nicht auf. In unabhaengigen biochemischen Tests im Zeitfenster der FRET-Beobachtungen wurde ein spezifischer Anstieg der Src-Tyr529-Phosphorylierung (Inaktivierung) und eine parallele Abnahme der Src-Tyr418-Phosphorylierung (Aktivierung) gemessen. Weiterführende Ergebnisse lieferten Versuche mit Src- und Csk-Mutanten. Die Co-Expression von Wildtyp-Src mit Kinase-inaktivem CskK222R hatte weder einen Effekt auf die Adhaesion und Ausbreitung der Zellen noch auf die Praesenz von FRET, es aenderte sich jedoch drastisch die zellulaere Verteilung der FRET-Signale sowie das Wachstum und die Form der Lamellipodien. Die Co-Expression von Wildtyp-Csk mit konstitutiv aktivem SrcY529F verursachte dagegen eine stark verringerte Adhaesionsfaehigkeit und Hemmung der Lamellipodien-Bildung. Die Fokal-Adhaesionspunkte in diesen Zellen waren sehr schwach und ueberdimensioniert und lagen ungeordnet verteilt in der Adhaesionsebene. Zusaetzlich verursachte SrcY529F eine starke Ueberaktivierung des Zytoskeletts und das fast vollstaendige Verschwinden der FRET-Signale. Die ermittelten Daten zeigen, dass die enge Kontrolle der Src-Aktivitaet durch Csk eine bedeutende Rolle für die funktionelle Zell-Adhaesion and -Ausbreitung spielt. Co-Immunpraezipitations-Resultate und Messungen der Menge an markiertem Protein in Zellen, in welchen FRET detektierbar war, untermauern zusaetzlich unsere These, zum ersten Mal die Src-Regulation durch Csk in lebenden Zellen direkt beobachtbar gemacht zu haben. Dieser neue FRET-Ansatz kann auch als Reporter-System für Prozesse der Src-Inaktivierung in anderen Signalwegen und Zellen angewendet werden. Das Messprinzip kann weiterhin auf das Studium der Inaktivierung weiterer Mitglieder der Familie der Src-Kinasen (in verschiedensten Signalwegen) erweitert werden.Platelet adhesion and thrombus formation required for functional hemostasis depends on integrin receptor mediated “outside-in” signaling to the cytoskeleton. Integrin alphaIIb-beta3 is the major integrin on the platelet surface and acts as a specific receptor for the plasma protein fibrinogen. Fibrinogen binding causes clustering of integrins within the plasma membrane activating the protein tyrosine kinase Src (signal initiation) by phosphorylation of tyrosine 418. Src, however, is negatively regulated by another tyrosine kinase, Csk (C-terminal Src kinase), which phosphorylates tyrosine 529. Although, in adhering cells, it is believed that Src is getting activated at lamellipodia leading edges, neither the cellular location nor the dynamics and exact role of Src inactivation is known to date. Here, we studied Src inactivation during alphaIIb-beta3-dependent adhesion to fibrinogen in the established platelet model cell line A5-CHO. Using a live cell FRET (fluorescence resonance energy transfer) microscopy technique with CFP and YFP label molecules (cyan and yellow fluorescent protein), we were able to image highly dynamic Src-Csk interactions at the leading edges of active lamellipodia. Every 2-3 minutes, signals detecting Src-Csk interactions (complexes) appeared at the cell periphery before they begin to move inward in the cell and reorganize while lamellipodia start to protrude (grow). FRET signals were also found in small accumulations at the fringe and also further to the centre of the adhesion plane (focal complexes and adhesions). Src and Csk co-localize with vinculin (a focal adhesion marker) within these regions. During the runtime of FRET observation a specific increase in Src-Tyr529 phosphorylation with a parallel decrease in Src-Tyr418 phosphorylation was observed supporting the idea that Src inactivation occurs within the cells. The role of Src-Csk interaction was studied in further detail using Src and Csk mutants. The data revealed that co-expression of inactive CskK222R did not alter the presence of FRET signals, but fundamentally changed its distribution within the cell. Furthermore it caused lamellipodia shape changes and a tendency of constant lamellipodia protrusion. Co-expression of constitutively active SrcY529F in turn caused a severe adhesion and spreading dysfunction. Adherent cells showed very weak, disorganized and oversized focal adhesions, a hyper-activated cytoskeleton (visible in fast-changing membrane blebs) and absence of FRET signals. Results from immunoprecipitation analyses and protein level determination within cells, in which FRET was detectable, further supported that we were able, for the first time, to directly visualize Src (and integrin) regulation by Csk control in live cells. The results show that Src control by Csk is ultimately required for lamellipodia and focal adhesion function and thus for cell anchorage and spreading. The novel FRET-approach reported here can be readily applied to other integrin and signaling pathways including the study of closely related Src family kinases (SFKs). Results may also contribute to a better understanding of the processes of tumor formation

    Protocol for Cell Colonization and Comprehensive Monitoring of Osteogenic Differentiation in 3D Scaffolds Using Biochemical Assays and Multiphoton Imaging

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    The goal of bone tissue engineering is to build artificial bone tissue with properties that closely resemble human bone and thereby support the optimal integration of the constructs (biografts) into the body. The development of tissues in 3D scaffolds includes several complex steps that need to be optimized and monitored. In particular, cell–material interaction during seeding, cell proliferation and cell differentiation within the scaffold pores play a key role. In this work, we seeded two types of 3D-printed scaffolds with pre-osteoblastic MC3T3-E1 cells, proliferated and differentiated the cells, before testing and adapting different assays and imaging methods to monitor these processes. Alpha-TCP/HA (α-TCP with low calcium hydroxyapatite) and baghdadite (Ca3ZrSi2O9) scaffolds were used, which had comparable porosity (~50%) and pore sizes (~300–400 µm). Cell adhesion to both scaffolds showed ~95% seeding efficiency. Cell proliferation tests provided characteristic progression curves over time and increased values for α-TCP/HA. Transmitted light imaging displayed a homogeneous population of scaffold pores and allowed us to track their opening state for the supply of the inner scaffold regions by diffusion. Fluorescence labeling enabled us to image the arrangement and morphology of the cells within the pores. During three weeks of osteogenesis, ALP activity increased sharply in both scaffolds, but was again markedly increased in α-TCP/HA scaffolds. Multiphoton SHG and autofluorescence imaging were used to investigate the distribution, morphology, and arrangement of cells; collagen-I fiber networks; and hydroxyapatite crystals. The collagen-I networks became denser and more structured during osteogenic differentiation and appeared comparable in both scaffolds. However, imaging of the HA crystals showed a different morphology between the two scaffolds and appeared to arrange in the α-TCP/HA scaffolds along collagen-I fibers. ALP activity and SHG imaging indicated a pronounced osteo-inductive effect of baghdadite. This study describes a series of methods, in particular multiphoton imaging and complementary biochemical assays, to validly measure and track the development of bone tissue in 3D scaffolds. The results contribute to the understanding of cell colonization, growth, and differentiation, emphasizing the importance of optimal media supply of the inner scaffold regions
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