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1.
Cells ; 10(11)2021 10 21.
Article in English | MEDLINE | ID: mdl-34831046

ABSTRACT

T cells are an essential part of the immune system. They determine the specificity of the immune response to foreign substances and, thus, help to protect the body from infections and cancer. Recently, T cells have gained much attention as promising tools in adoptive T cell transfer for cancer treatment. However, it is crucial not only for medical purposes but also for research to obtain T cells in large quantities, of high purity and functionality. To fulfill these criteria, efficient and robust isolation methods are needed. We used three different isolation methods to separate CD3-specific T cells from leukocyte concentrates (buffy coats) and Ficoll purified PBMCs. To catch the target cells, the Traceless Affinity Cell Selection (TACS®) method, based on immune affinity chromatography, uses CD-specific low affinity Fab-fragments; while the classical Magnetic Activated Cell Sorting (MACS®) method relies on magnetic beads coated with specific high affinity monoclonal antibodies. The REAlease® system also works with magnetic beads but, in contrast to MACS®, low-affinity antibody fragments are used. The target cells separated by TACS® and REAlease® are "label-free", while cells isolated by MACS® still carry the cell specific label. The time required to isolate T cells from buffy coat by TACS® and MACS® amounted to 90 min and 50 min, respectively, while it took 150 min to isolate T cells from PBMCs by TACS® and 110 min by REAlease®. All methods used are well suited to obtain T cells in large quantities of high viability (>92%) and purity (>98%). Only the median CD4:CD8 ratio of approximately 6.8 after REAlease® separation differed greatly from the physiological conditions. MACS® separation was found to induce proliferation and cytokine secretion. However, independent of the isolation methods used, stimulation of T cells by anti CD3/CD28 resulted in similar rates of proliferation and cytokine production, verifying the functional activity of the isolated cells.


Subject(s)
CD3 Complex/metabolism , Cell Separation/methods , Staining and Labeling , T-Lymphocytes/cytology , Cell Count , Cell Proliferation , Cell Shape , Cell Survival , Cytokines/biosynthesis , Erythrocytes/cytology , Humans
2.
Carbohydr Polym ; 263: 117970, 2021 Jul 01.
Article in English | MEDLINE | ID: mdl-33858571

ABSTRACT

Due to their excellent biocompatibility and biodegradability, natural hydrogels are highly demanded biomaterials for biomedical applications such as wound dressing, tissue engineering, drug delivery or three dimensional cell culture. Highly energetic electron irradiation up to 10 MeV is a powerful and fast tool to sterilize and tailor the material's properties. In this study, electron radiation treatment of agarose hydrogels was investigated to evaluate radiation effects on physical, structural and chemical properties. The viscoelastic behavior, surface hydrophilicity and swelling behavior in a range of typical sterilization doses of 0 kGy to 30 kGy was analyzed. The mechanical properties were determined by rheology measurements and decreased by more than 20% compared to the initial moduli. The number average molecular weight between crosslinks was estimated based on rubber elasticity theory to judge on the radiation degradation. In this dose range, the number average molecular weight between crosslinks increased by more than 6%. Chemical structure was investigated by FTIR spectroscopy to evaluate the radiation resistance of agarose hydrogels. With increasing electron dose, an increasing amount of carbonyl containing species was observed. In addition, irradiation was accompanied by formation of gas cavities in the hydrogels. The gas products were specified for CO2, CO and H2O. Based on the radiolytic products, a radiolysis mechanism was proposed. Electron beam treatment under high pressure conditions was found to reduce gas cavity formation in the hydrogels.


Subject(s)
Hydrogels/chemistry , Hydrogels/radiation effects , Sepharose/chemistry , Sepharose/radiation effects , Elasticity , Electrons , Hydrophobic and Hydrophilic Interactions/radiation effects , Pulse Radiolysis , Rheology , Sterilization/methods , Water/chemistry
3.
Cytometry A ; 95(2): 234-241, 2019 02.
Article in English | MEDLINE | ID: mdl-30378734

ABSTRACT

Separation of specific blood cells is necessary for a deeper insight into their role in health and disease. To obtain such cells, efficient and robust isolation methods are needed. We compare here the Fab-based Traceless Affinity Cell Selection (TACS®) technology and the Magnetic Activated Cell Sorting (MACS®) technology to isolate human monocytes from whole blood and buffy coats as well as the differentiation of the isolated monocytes to dendritic cells (DCs). TACS® is a positive selection technology using immune affinity chromatography based on CD-specific low affinity Fab-fragments for the reversible capture and release of target cells. The positive selection by MACS® is based on magnetic beads coated with specific high affinity monoclonal antibodies to catch the target cells. The target cells separated by TACS® are "label-free" while cells positively isolated by MACS® will carry the cell specific label. Our data show that the separation methods described here are well suited to obtain functional monocytes of high quality and purity. A differentiation of the cells into DCs leads to comparable results with the exception that CD1a expression levels on immature and mature DCs are elevated when monocytes are isolated using the TACS® technology. Taken together, our results suggest that the TACS® method may be of advantage when preparing monocytes and monocyte-derived DCs for functional analyses, while the MACS® method seems to be capable of higher monocyte recoveries. © 2018 International Society for Advancement of Cytometry.


Subject(s)
Cell Separation/methods , Flow Cytometry/methods , Immunomagnetic Separation/methods , Monocytes/cytology , Antigens, CD/metabolism , Cell Culture Techniques/methods , Cell Differentiation/physiology , Cells, Cultured , Dendritic Cells/cytology , Dendritic Cells/metabolism , Humans , Monocytes/metabolism
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