| Literature DB >> 31861073 |
Matthias Kieslinger1, Alexander Swoboda1, Nina Kramer1, Barbara Pratscher1, Birgitt Wolfesberger1, Iwan A Burgener1.
Abstract
The use of transgenic mouse models has revolutionized the study of manyEntities:
Keywords: STAT3; STAT5; cancer models; companion animals; comparative oncology
Year: 2019 PMID: 31861073 PMCID: PMC6966487 DOI: 10.3390/cancers11122035
Source DB: PubMed Journal: Cancers (Basel) ISSN: 2072-6694 Impact factor: 6.639
Incidence rates of various tumor types from human, dog and cat.
| Tissue | Human | Dog | Cat |
|---|---|---|---|
| Mammary | 127.5 [ | 250 [ | 13–25 [ |
| Melanoma | 22.2 [ | 19.8 [ | ND |
| Testes | 5.9 [ | 16.7 [ | ND |
| Connective Tissue | 3.5 [ | 40.1 [ | 17.0 [ |
| Skin | 98.85 [ | 103.3 [ | 34.7 [ |
| Oral | 11.3 [ | 20.4 [ | 11.6 [ |
| NHL/Leukemia | 33.7 [ | 76.3 [ | 41 [ |
| Bone | 1.0 [ | 27.2 [ | 3.1–4.9 [ |
Numbers represent cases per 100,000. ND = not determined.
Oncological disposition of various dog breeds.
| Breeds | Most Frequent Tumor Types |
|---|---|
| Bernese Mountain Dog | Histiocytic sarcoma [ |
| Boxer | Glioma [ |
| Flat-Coated Retriever | Soft tissue sarcoma, Histiocytic sarcoma, Hemangiosarcoma [ |
| Golden Retriever | Mast cell tumor, Lymphoma, Oral Melanoma, Fibrosarcoma [ |
| Magyar Viszla | Mast cell tumor, Hemangiosarcoma, Lymphoma [ |
| Giant Schnauzer | Epidermal tumor, Hair follicle tumor, Melanocytic tumor [ |
| Airedale Terrier | Melanoma [ |
| Bullmastiff | Mast cell tumor, Lymphoma [ |
| St. Bernard | Lymphoma [ |
| Irish Wolfhound | Osteosarcoma [ |
The most frequent tumor types of dog breeds with high tumor incidence.
Figure 1Advantages and disadvantages of different models during drug discovery. (A) Companion animals can be used as an intermediate step between the mechanistic work in murine models and clinical studies in humans, particularly with regard to comparative aspects of tumor biology. (B) Advantages and disadvantages of the individual models for translation into human clinical studies.
Figure 2Cross-species conservation of STAT protein domains. (A) STAT1, STAT3, STAT5a and STAT5b from dog, cat and mouse are analyzed for their overall homology compared to the respective human protein (grey boxes, left). In the schematic representation of STAT protein domains, the amino acid positions are indicated above. All proteins share the same domain positions, except for murine STAT1, which has a five amino acid insertion in the DNA binding domain (numbers below the scheme indicate the aa position in this case). Percentages in the domain boxes of dog, cat and mouse STAT proteins show the homology of each domain to the human counterpart. Analyses were carried out using ClustalX. (B) Comparison of key phosphorylation sites in the transactivation domain of STAT1, STAT3, STAT5a and STAT5b from dog, cat and mouse to the human sequence. Amino acid sequence is shown, with phosphorylation sites in green and position indicated; positive amino acid exchanges (conserving protein function) are indicated in yellow, other exchanges in red. (STAT1: human NP_009330.1, dog XP_848353.1, cat XP_006935505.1, mouse NP_001192242.1; STAT3: human NP_644805.1, dog XP_005624514.1, cat XP_003996930.1, mouse NP_998824.1; STAT5a: human NP_001275647.1, dog XP_548091.2, cat XP_023099834.1, mouse NP_001157534.1; STAT5b: human NP_036580.2, dog XP_548092.1, cat XP_023100377.1, mouse NP_035619.3).