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A microphysiological system for studying human bone biology under simultaneous control of oxygen tension and mechanical loading

ORCID
0009-0004-2152-1654
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Scheinpflug, Julia;
ORCID
0000-0002-1884-993X
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Höfer, Chris Tina;
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Schmerbeck, Sarah S.;
ORCID
0009-0007-0525-6362
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Steinfath, Matthias;
ORCID
0009-0001-5027-3950
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Doka, Jennifer;
ORCID
0000-0002-1291-6740
Affiliation
Reykjavik University, Reykjavik, Iceland
Tesfahunegn, Yonatan Afework;
ORCID
0000-0002-5830-5160
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Violet, Norman;
ORCID
0000-0003-2050-0961
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Renko, Kostja;
ORCID
0009-0000-0278-0504
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Gulich, Konrad;
ORCID
0000-0001-7133-7178
Affiliation
DRK Kliniken Westend, Berlin, Germany
John, Thilo;
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Schneider, Marlon R.;
ORCID
0000-0002-5592-5743
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Wistorf, Elisa;
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Schönfelder, Gilbert;
ORCID
0000-0003-1137-7148
Affiliation
German Federal Institute for Risk Assessment, German Centre for the Protection of Laboratory Animals (Bf3R), Berlin, Germany
Schulze, Frank

Throughout life, continuous remodelling is part of human bone biology and depends on the simultaneous action of physicochemical parameters such as oxygen tension and varying mechanical load. Thus, suitable model systems are needed, which allow concomitant modulation of these factors to recapitulate in vivo bone formation. Here, we report on the development of a first microphysiological system (MPS) that enables perfusion, environment-independent regulation of the oxygen tension as well as precise quantification and control of mechanical load. To demonstrate the use of the MPS for future studies on the (patho-)biology of bone, we built a simplified 3D model for early de novo bone formation. Primary human osteoblasts (OBs), which are the key players during this process, were seeded onto type I collagen scaffolds and cultured in the MPS. We could not only monitor cell viability and metabolism of OBs under varied physicochemical conditions, but also visualise the mineralisation of the extracellular matrix. In summary, we present a MPS that uniquely combines the independent control of physicochemical parameters and allows investigation of their influence on bone biology. We consider our MPS highly valuable to gain deeper insights into (patho-)physiological processes of bone formation in the future.

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