In a retrospective multiinstitutional survey of 26 dogs with primary bone tumors of the thoracic wall, 14 had osteosarcomas (OSA), nine chondrosarcomas (CSA), and three hemangiosarcomas (HSA). An accurate diagnosis was obtained from excisional or incisional biopsy when a large volume of tissue was collected, but less often when a small volume of tissue was obtained. Curative treatment was attempted by excision in 16 and by excision, radiation, and chemotherapy in one. Based on Kaplan-Meyer estimates of survival distribution, median survival time after surgery with curative intent was eight weeks overall, five weeks for OSA, and 15 weeks for CSA. Postoperative survival time was significantly longer for CSA than for OSA (p<0.05). The three with HSA survived 2, 16, and 112 weeks after surgery. From this sample, OSA appears to be the most common tumor of the thoracic wall, accounting for about 60% of the tumors, and its biological behavior is similar to OSA of appendicular origin. Chondrosarcoma appears to be the second most common, accounting for approximately 34% of rib tumors compared to 10% of appendicular bone tumors. Large-volume biopsy specimens are necessary to distinguish OSA from CSA and HSA.
Two hundred ten dogs that had primary lung tumors diagnosed between 1975 and 1985 were evaluated. The majority of the tumors were classified as adenocarcinoma (74.8%) and alveolar carcinoma (20%). The most common clinical signs of disease were cough (52%), dyspnea (23.8%), lethargy (18.1%), weight loss (12.4%), and tachypnea (4.8%). The clinical methods that were most successful in directly or indirectly leading to a diagnosis of primary lung tumor were thoracic radiography (77.1%) and cytologic examination of fine-needle aspirate specimens (24.8%).
The association of various prognostic factors with remission and survival after the excision of lung tumors was evaluated in 76 dogs. Overall, the median survival time of treated dogs was 120 days; 72% had tumor that underwent remission (median duration of remission, 120 days). Dogs with tumors that underwent remission had significantly (P = 0.001) increased survival time (median, 330 days vs 28 days for dogs with tumors that did not undergo remission). The finding of normal-sized lymph nodes at the time of therapeutic thoracotomy was significantly (P = 0.001) correlated with increased remission probability (85.4% remission rate vs 43.6% in dogs with large lymph nodes). Use of various diagnostic methods to find normal regional lymph nodes before surgery indicated that such finding was significantly (P less than or equal to 0.01) correlated with increased remission duration (median remission duration, 365 days, vs 60 days for tumors in dogs with large lymph nodes), and the finding of normal lymph nodes at the time of surgery was significantly (P less than or equal to 0.01) correlated with increased survival time (median, 345 days, vs 60 days for dogs with large lymph nodes).
One hundred eighty-five dogs with histologically confirmed, measurable malignant tumors were used in a prospective study to determine the response to 2 doses of the anthracycline antitumor antibiotic, doxorubicin. Eighty-three dogs had been refractory to one or more previous treatment modalities (surgery, n = 54; chemotherapy, n = 22; radiation, n = 10; hyperthermia, n = 1; biological response modifier, n = 1). The extent of neoplastic disease was determined immediately prior to and 3 weeks after 2 doses of doxorubicin were administered (30 mg/m2 of body surface area, iv) 21 days apart. Eighty-four percent (n = 157) of the dogs received 2 doses of doxorubicin and were evaluated. Of the 28 dogs ruled ineligible, 4 had serious side effects to the first dose of doxorubicin, and 24 others acquired complications resulting from their malignant tumors. A partial or complete remission was obtained in 41% (64/157) of all evaluable dogs: 26% (11/43) of the dogs with carcinoma, 67% (42/63) of the dogs with lymphoma, and 22% (11/51) of the dogs with sarcoma. Tumors in which there was at least a 50% volume reduction (partial or complete remission) included malignant lymphoma (42/63), fibrosarcoma (1/14), solid follicular thyroid carcinoma (3/13), mammary adenocarcinoma (2/8), hemangiosarcoma (2/8), osteosarcoma (1/6), circumanal carcinoma (3/5), synovial cell sarcoma (2/3), undifferentiated sarcoma (2/3), nasal adenocarcinoma (1/2), liposarcoma (1/2), infiltrating lipoma (1/1), malignant melanoma (1/1), sclerosing mesothelioma (1/1), and neurofibrosarcoma (1/2).(ABSTRACT TRUNCATED AT 250 WORDS)
One hundred eighty-five dogs with histologically confirmed, measurable malignant tumors were used in a study to determine the toxicity of the anthracycline antitumor antibiotic, doxorubicin, which was administered once or twice (at a 21-day interval) at the rate of 30 mg/m2 of body surface area, iv. During this study, 7 dogs died as a direct result of doxorubicin-induced toxicosis and 16 died as a direct result of the malignant neoplastic disease. Each dog was evaluated for signs of toxicosis for 3 weeks after the last dose was administered (15 dogs received 1 dose, 170 dogs received 2 doses) or until the dog died, whichever came first. The most common signs of toxicosis were vomiting, diarrhea, colitis, anorexia, and pruritus. The probability of doxorubicin-induced toxicosis decreased significantly (P less than 0.0001) in inverse relationship to body weight. Dogs with signs of toxicosis during the 21-day interval from administration of the first dose of doxorubicin were 17.2 times (P less than 0.01; 95% confidence interval; 5.5, 54.2) more likely to develop signs of toxicosis during the 21-day interval from the second dose of doxorubicin. The performance status of each dog was evaluated using a modified Karnofsky performance scheme; the only time the performance status was adversely affected to a significant extent by doxorubicin-induced toxicosis was during the 21-day period, starting with the second dose (P less than 0.0001).