Your browser doesn't support javascript.
loading
: 20 | 50 | 100
1 - 2 de 2
1.
Int J Mol Sci ; 22(15)2021 Jul 23.
Article En | MEDLINE | ID: mdl-34360623

Investigations in male patients with fertility disorders revealed a greater risk of osteoporosis. The rodent model of experimental autoimmune-orchitis (EAO) was established to analyze the underlying mechanisms of male infertility and causes of reduced testosterone concentration. Hence, we investigated the impact of testicular dysfunction in EAO on bone status. Male mice were immunized with testicular homogenate in adjuvant to induce EAO (n = 5). Age-matched mice were treated with adjuvant alone (adjuvant, n = 6) or remained untreated (control, n = 7). Fifty days after the first immunization specimens were harvested. Real-time reverse transcription-PCR indicated decreased bone metabolism by alkaline phosphatase and Cathepsin K as well as remodeling of cell-contacts by Connexin-43. Micro computed tomography demonstrated a loss of bone mass and mineralization. These findings were supported by histomorphometric results. Additionally, biomechanical properties of femora in a three-point bending test were significantly altered. In summary, the present study illustrates the induction of osteoporosis in the investigated mouse model. However, results suggest that the major effects on bone status were mainly caused by the complete Freund's adjuvant rather than the autoimmune-orchitis itself. Therefore, the benefit of the EAO model to transfer laboratory findings regarding bone metabolism in context with orchitis into a clinical application is limited.


Autoimmune Diseases/complications , Bone and Bones/metabolism , Orchitis/complications , Osteoporosis/immunology , Animals , Autoimmune Diseases/metabolism , Autoimmune Diseases/pathology , Autoimmune Diseases/physiopathology , Bone and Bones/diagnostic imaging , Bone and Bones/pathology , Bone and Bones/physiopathology , Disease Models, Animal , Male , Mice, Inbred C57BL , Orchitis/metabolism , Orchitis/pathology , Orchitis/physiopathology , Osteoporosis/diagnostic imaging , X-Ray Microtomography
2.
Cryobiology ; 92: 215-230, 2020 02 01.
Article En | MEDLINE | ID: mdl-31972153

Through enabling an efficient supply of cells and tissues in the health sector on demand, cryopreservation is increasingly becoming one of the mainstream technologies in rapid translation and commercialization of regenerative medicine research. Cryopreservation of tissue-engineered constructs (TECs) is an emerging trend that requires the development of practically competitive biobanking technologies. In our previous studies, we demonstrated that conventional slow-freezing using dimethyl sulfoxide (Me2SO) does not provide sufficient protection of mesenchymal stromal cells (MSCs) frozen in 3D collagen-hydroxyapatite scaffolds. After simple modifications to a cryopreservation protocol, we report on significantly improved cryopreservation of TECs. Porous 3D scaffolds were fabricated using freeze-drying of a mineralized collagen suspension and following chemical crosslinking. Amnion-derived MSCs from common marmoset monkey Callithrix jacchus were seeded onto scaffolds in static conditions. Cell-seeded scaffolds were subjected to 24 h pre-treatment with 100 mM sucrose and slow freezing in 10% Me2SO/20% FBS alone or supplemented with 300 mM sucrose. Scaffolds were frozen 'in air' and thawed using a two-step procedure. Diverse analytical methods were used for the interpretation of cryopreservation outcome for both cell-seeded and cell-free scaffolds. In both groups, cells exhibited their typical shape and well-preserved cell-cell and cell-matrix contacts after thawing. Moreover, viability test 24 h post-thaw demonstrated that application of sucrose in the cryoprotective solution preserves a significantly greater portion of sucrose-pretreated cells (more than 80%) in comparison to Me2SO alone (60%). No differences in overall protein structure and porosity of frozen scaffolds were revealed whereas their compressive stress was lower than in the control group. In conclusion, this approach holds promise for the cryopreservation of 'ready-to-use' TECs.


Collagen/pharmacology , Cryopreservation/methods , Cryoprotective Agents/pharmacology , Durapatite/pharmacology , Mesenchymal Stem Cells/cytology , Animals , Biological Specimen Banks , Callithrix , Cell Survival/drug effects , Dimethyl Sulfoxide/pharmacology , Freezing , Sucrose/pharmacology , Tissue Engineering
...