Publikationen

Einblicke in aktuelle Forschungsergebnisse zu degradierbaren bioinspirierten Hybridmaterialien und neuartigen Bioreaktorbasierten Analysesystemen.

4 Publikationen filtern

Die Publikationen filtern

Hervorgehobene Autoren sind Mitglieder der Forschungsgruppe »Intelligent Hybrid Materials and Biointerface Engineering«.

  1. Numerical and Experimental Assessment of Oxygen Distribution in a Perfusion Bioreactor to Mimic the Osteochondral Niche

    Autoren
    F. Alt, E. Langner, H. Wiesmann, T. Wallmersperger, B. Kruppke
    Erscheinungsjahr
    Erschienen in:
    Biotechnology and Bioengineering
    Oxygen supply is a critical parameter in 3D cell cultivation using bioreactors. Since bioreactor designs often prioritise practical constraints, understanding the oxygen supply dynamics of the media is crucial for achieving either uniform or spatially controlled oxygen delivery. This is particularly relevant for cultivating chondrocytes in hypoxic conditions. To evaluate oxygen supply, we used a concentric bioreactor with a central flow channel (140 mm length). Phosphate-buffered saline (PBS) served as the medium, which was deoxygenated with nitrogen to create an oxygen sink. Oxygen diffusion in an 1.5% agarose gel bed was experimentally measured using fluorescence quenching oxygen detectors and compared to finite element simulation results. Additionally, two cavities in the gel were filled with collagen to mimic a cell-free osteochondral niche. Measurements showed a gradual oxygen decrease with distance from the flow channel, reaching concentrations below 0.025 mM after 150 h. Reoxygenation occurred faster, with levels exceeding 0.15 mM within 50 and 80 h in setups without and with collagen, respectively. Simulation results initially matched experimental data only during initial or late stage of de-/reoxygenation, but were improved by varying the diffusion coefficient and the mass transfer coefficient for liquid-to-gel transitions. Further refinements could include batch-specific diffusion coefficients and concentration-dependent diffusion adjustments. Understanding oxygen dynamics in bioreactors will enable precise oxygen delivery, particularly when integrating proliferating stem cells or chondrocytes as oxygen sinks. These findings pave the way for more effective bioreactor designs tailored to specific cell culture needs.
    Universitätsbibliographie Jena:
    fsu_mods_00036401Externer Link
  2. 4D degradation analysis of gelatin-modified calcium/strontium phosphate bone substitutes with µCT-flow chamber

    Autoren
    C. Guder, P. Bertram, F. Alt, R. Bernhardt, I. Kruppke, H. Wiesmann, C. Cherif, B. Kruppke
    Erscheinungsjahr
    Erschienen in:
    Journal of materials research: JMR
    This study focuses the dynamic degradation analysis of gelatin-modified calcium/strontium phosphate bone substitute composites under controlled liquid flow in a custom degradation chamber. Two flow rates (0.022 and 0.266 mL/min) were applied over seven days and analyzed by µCT, mass loss, and ion concentration measurements. The key finding was that time-resolved degradation of organic/inorganic composite materials can be identified in µCT separately for both components (gelatin and Ca/Sr phosphate). As expected, it was found that higher flow rates induced 5% greater mass loss due to shear stresses and accelerated ion release. This modular approach of degradation chamber and non-destructive continuous analysis enables systematic comparison of slowly degrading biomaterials relevant for bone regeneration and quantification of osteogenic ion release during degradation. Improved comparability under flow conditions enables predictable material evaluation, optimization of implant performance, prediction of tissue reactions and may lead to a reduction in animal testing in the long term.
    Universitätsbibliographie Jena:
    fsu_mods_00035633Externer Link
  3. Sustainable Fabrication of Tailored Bone Substitutes: From High-Throughput Scaffold Manufacturing, Scaled-Up HMSC Expansion to Dynamic Cultivation in a Perfusion Bioreactor

    Autoren
    F. Braun, A. Paříková, S. Rother, M. Kantor, S. Ilyas, R. Bernhardt, P. Yomi, J. Havlica, R. Appali, B. Kruppke, P. Lee
    Erscheinungsjahr
    Status
    Prüfung ausstehend
    Erschienen in:
    Advanced Science
    The demand for off-the-shelf biocompatible bone substitutes has driven the development of numerous independent in vitro technologies to generate products resembling physiological tissues. Due to technical challenges and overly simplified cultivation approaches/niches, the end-products are often uniformly shaped and inferior to native bone tissue. In this report, three major technologies are implemented cohesively to address these shortfalls: (1) Spinner flasks for scaled-up stem cell expansion, (2) Manufacturing via 3D-printing and cast-molding processes, large modular collagen-based (COL) scaffolds +/− chondroitin sulfate A (CSA) of tailored dimensions, (3) Perfusion bioreactor with controlled oxygen tension (pO ₂ ) to support high cell density and osteochondral differentiation. We report an oxygenated in vitro niche within the bioreactor that supports high cell density and self-induced osteogenic differentiation for 60 days. Enhanced mineralization and osteogenic gene expression in COL scaffolds were observed, while COL + CSA scaffolds exhibited elevated Col10a gene expression for hypertrophic chondrocytes, a representative indicator of active endochondral ossification. In summary, this report describes an integral approach to consistently and rapidly achieve physiologically relevant bone substitutes of tailored dimensions. Furthermore, the pivotal effect of recapitulating endochondral ossification in vitro through dynamic bioreactor culture is demonstrated, paving the way to generate complex tissue structures in the future.
    Universitätsbibliographie Jena:
    fsu_mods_00038459Externer Link
  4. Dual-component nanofiber scaffolds of silica and collagen for enhanced mechanical integrity and osteogenic bioactivity

    Autoren
    S. Jalali, M. Khiabani, I. Kruppke, C. Heinemann, P. Lee, H. Wiesmann, O. Varghese, B. Kruppke
    Erscheinungsjahr
    Erschienen in:
    Materials and Design
    Nanofiber scaffolds have gained significant attention as bone substitutes due to the high surface area and interconnected pore structure closely resembling the extracellular matrix (ECM), thereby supporting cell growth and promoting tissue regeneration. This study specifically focused on developing new electrospun scaffolds using silica and fibrillated collagen (SifCo), a key biopolymer in the natural bone matrix, targeting bone tissue engineering applications. The hybrid scaffolds were fabricated using a dual-nozzle electrospinning device equipped with two syringes, each separately filled with silica and collagen. Our findings demonstrated that the involvement of collagen nanofibers (NFs) within silica NFs significantly modifies silica-based scaffold characteristics, thus enhancing Young’s modulus from 13 ± 1 MPa for silica to 69 ± 25 MPa for SifCo NFs and improving cell proliferation compared to pure silica scaffolds. Besides, these hybrid NFs showed a lower degradation rate (15.24 ± 4.75 %) than their pure collagen NFs (83.44 ± 12.95 %) after 14 days, providing more sustained support for tissue growth. This combination of silica and collagen in the hybrid scaffolds benefited both materials’ strengths while modifying their limitations. This balanced approach can offer an effective strategy for bone tissue replacements, potentially addressing the need for scaffolds that can provide both adequate stability and favorable biological properties.
    Universitätsbibliographie Jena:
    fsu_mods_00029320Externer Link
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Information

Publikationen von Prof. Dr. Benjamin Kruppke vor 2025 finden Sie hierExterner Link. Weitere Publikationen des Fachbereichs Biowerkstoffe des Instituts für Bioprozess- und Analysenmesstechnik e.V. (IBA) finden sie hierExterner Link.