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1.
BMC Vet Res ; 9: 144, 2013 Jul 17.
Artículo en Inglés | MEDLINE | ID: mdl-23866028

RESUMEN

BACKGROUND: Several research applications involving platelets, such as proteomic and transcriptomic analysis, require samples with very low numbers of contaminating leukocytes, which have considerably higher RNA and protein content than platelets. We sought to develop a platelet purification protocol that would minimize contamination, involve minimal centrifugation steps, and yield highly pure platelet samples derived from low volume whole blood samples from healthy dogs. RESULTS: Using an optimized OptiPrep density gradient technique, platelet recovery was 51.56% with 99.99% platelet purity and leukocyte contamination of 100 leukocytes per 108 platelets, on average. Platelet samples were subjected to additional purification with CD45-labeled Dynabeads after density barrier centrifugation resulting in a 95-fold depletion of residual leukocytes. Platelets purified using these methods remained inactivated as assessed by Annexin V and P-selectin labeling with flow cytometry. CONCLUSIONS: The use of OptiPrep density gradient is a quick method for obtaining highly purified platelet samples from low volumes of canine whole blood with minimal contamination. Additional depletion of residual leukocytes can be achieved using CD45-labeled beads. These platelet samples can then be used for many downstream applications that require ultra-pure platelet samples such as RNA and protein analysis.


Asunto(s)
Plaquetas/metabolismo , Perros/sangre , Animales , Separación Celular/métodos , Separación Celular/veterinaria , Centrifugación por Gradiente de Densidad/métodos , Centrifugación por Gradiente de Densidad/veterinaria , Citometría de Flujo/métodos , Citometría de Flujo/veterinaria , Hematología/métodos , Leucocitos/metabolismo , Activación Plaquetaria
2.
J Comp Pathol ; 192: 41-49, 2022 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-35305713

RESUMEN

In addition to their well-known functions in haemostasis, anucleated platelets have a critical role in cancer biology. Many human and non-human cancer types can directly interact with and activate platelets, promoting cancer malignancy and progression. Although naturally occurring canine neoplastic diseases mimic the biologically complex conditions of human cancers more closely than laboratory-bred mice, studies evaluating the relationship between cancer cells and platelets in dogs are scarce, and the effects of tumour cells on platelets in these animals are unknown. To evaluate whether cancer cells could activate canine platelets, we assessed the response of platelet-rich plasma to cultured canine cancer cells using light transmittance aggregometry. Similar to human and murine cancer cell research, we demonstrated that both canine osteosarcoma and mammary carcinoma cells activated canine platelets in vitro, resulting in platelet aggregation. The degree of aggregation was most pronounced at a cancer cell to platelet ratio of 1:200 for most cell lines. Mechanistic studies revealed that the platelet adenosine diphosphate (ADP) receptor P2Y12 is essential for canine platelet aggregation induced by canine cancer. ADP receptor blockage on platelets inhibited >50% of cancer cell-induced maximum platelet aggregation in all cell lines evaluated. As in other species, our results suggest that canine cancers may activate canine platelets in vivo. This mechanism is likely relevant for the biology and progression of cancer in the dog.


Asunto(s)
Enfermedades de los Perros , Neoplasias , Enfermedades de los Roedores , Adenosina Difosfato/metabolismo , Adenosina Difosfato/farmacología , Animales , Plaquetas/metabolismo , Enfermedades de los Perros/metabolismo , Perros , Ratones , Neoplasias/veterinaria , Agregación Plaquetaria/fisiología , Antagonistas del Receptor Purinérgico P2Y/metabolismo , Antagonistas del Receptor Purinérgico P2Y/farmacología
3.
Vet Med (Auckl) ; 5: 1-9, 2014.
Artículo en Inglés | MEDLINE | ID: mdl-32670841

RESUMEN

During platelet development, proteins necessary for the many functional roles of the platelet are stored within cytoplasmic granules. Platelets have also been shown to take up and store many plasma proteins into granules. This makes the platelet a potential novel source of biomarkers for many disease states. Approaches to sample preparation for proteomic studies for biomarkers search vary. Compared with traditional two-dimensional polyacrylamide gel electrophoresis systems, nonelectrophoretic proteomics methods that employ offline protein fractionation methods such as the differential detergent fractionation method have clear advantages. Here we report a proteomic survey of the canine platelet proteome using differential detergent fractionation coupled with mass spectrometry and functional modeling of the canine platelet proteins identified. A total of 5,974 unique proteins were identified from platelets, of which only 298 (5%) had previous experimental evidence of in vivo expression. The use of offline prefractionation of canine proteins by differential detergent fractionation resulted in greater proteome coverage as compared with previous reports. This initial study contributes to a broader understanding of canine platelet biology and aids functional research, identification of potential treatment targets and biomarkers, and sets a new standard for the resting platelet proteome.

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