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Biomedical subjects

W K Murphy

Publications and source records attributed to W K Murphy.

At least 55 records · Page 3Linked to original sources

Timing of elective brain irradiation: a critical factor for brain metastasis-free survival in small cell lung cancer.

Risk factors for brain metastasis in small cell lung cancer were studied in 260 patients without brain metastasis at presentation who were treated on 5 protocols. The first three protocols offered elective brain irradiation (EBI) to all available patients after 2 or 3 courses of chemotherapy (early EBI), whereas the other two offered it after 5 or 6 courses of chemotherapy (late EBI). The overall incidence of brain metastasis was higher in the late EBI group than in the early EBI group (23.6% vs. 14.3%, p = 0.08), primarily due to higher incidence of brain metastasis developing before EBI in the former. There was a higher incidence of brain metastasis in patients without than in patients with bone marrow metastasis (21.4% vs. 6.8%, p = 0.04), in patients less than 60 years old than in patients 60 years or older (23.4% vs. 13.4%, p = 0.06), and in patients with than in patients without bone metastasis (30.2% vs. 16.8%, p = 0.07). Major risk factors for short brain metastasis-free survival were bone metastasis (p = 0.008), late EBI (p = 0.03), and failure to achieve complete remission after induction chemotherapy (p = 0.001) or as a best response (p = 0.0001). The early EBI group had a longer brain metastasis-free survival than the late EBI group, even among patients with bone metastasis (p = 0.02) or bone marrow metastasis (p = 0.05) and those who achieved complete remission after induction chemotherapy (p = 0.06) or as a best response (p = 0.05). These results indicate that timing of EBI is a critical factor in brain metastasis in patients with small cell lung cancer. There was no difference in overall survival between the two groups, however, even among patients who achieved complete remission as a best response.

Adult↗

Phase II pilot study with cisplatin, etoposide, and continuous-infusion 5-fluorouracil in metastatic non-small cell lung cancer.

A pilot study was conducted using a combination of cisplatin (70 mg/m2 i.v., day 1), etoposide (60 mg/m2 i.v., days 1 through 5), continuous-infusion 5-fluorouracil (800 mg/m2 i.v., days 1 through 5), and allopurinol (600 mg p.o., days 1 through 7). Treatment was repeated every 3-4 weeks. Ten patients with metastatic non-small cell lung cancer were treated. Significant toxicities were observed, including electrocardiographic changes simulating acute myocardial infarction in three patients. There was no objective response, therefore the study was closed early according to its design.

Antineoplastic Combined Chemotherapy Protocols↗

Neurotoxicity in long-term survivors of small cell lung cancer.

Chronic central nervous system neurotoxicity was studied in 38 long-term survivors (greater than or equal to 3 years) of small cell lung cancer who were treated at the University of Texas M. D. Anderson Hospital and Tumor Institute at Houston between 1971 and 1980. All but one patient received combination chemotherapy with or without chest irradiation. Twenty-four patients received whole brain irradiation (Group I), 22 for "elective" and two for therapeutic purposes, while 14 did not (Group II). Abnormalities in computed tomographic (CT) scans of the brain were more frequently observed in Group I than in Group II (70% vs. 0%, p less than 0.01). Clinical central nervous system neurotoxicity developed in three patients in Group I, while none developed in patients in Group II (p less than 0.05). Patients who received methotrexate and procarbazine after whole brain irradiation were at a higher risk for clinical central nervous system neurotoxicity (p less than 0.05), and for development of periventricular white matter changes in CT brain scans (p less than 0.05) than were patients in Group II. Impaired methylation of the myelin sheath is proposed as a possible underlying pathogenic mechanism.

Antineoplastic Combined Chemotherapy Protocols↗

High-dose intensification therapy with autologous bone marrow support for limited small-cell bronchogenic carcinoma.

The efficacy and toxicity of high-dose chemotherapy with autologous bone marrow transplantation (ABMT) was studied in 32 patients with untreated limited small-cell bronchogenic carcinoma (SCBC). Ten patients received three courses of induction therapy consisting of vincristine (VCR) (1.5 mg X 2), ifosfamide (5 g/m2), and Adriamycin (Ad; Adria Laboratories, Columbus, Ohio) (60 mg/m2). Patients then received two courses of intensification therapy with cyclophosphamide (CYT) (4.5 g/m2), 4' demethyl-epipodophyllotoxin-d-D-ethylidene glucoside (VP-16-213) (600 mg/m2) and VCR (2 mg) with ABMT. Another 22 patients received induction therapy with VCR, CYT (600 mg/m2), Ad (50 mg/m2), and VP-16-213 (180 mg/m2). All 22 patients also received intensification therapy of the same dose of CYT (4.5 g/m2) and VP-16-213 (600 mg/m2). Nine patients also received high-dose methotrexate (MTX), four patients received Ad (40 to 60 mg/m2), and two patients received both Ad and MTX. After intensification, patients received elective prophylactic brain irradiation (3,000 rad) and chest irradiation (5,000 rad). After induction therapy, there were 13 (41%) complete remissions (CR) and 17 (53%) partial remissions (PR). After intensification therapy, there were 22 CRs (69%) and 10 PRs (31%). Median survival for all patients was 14 months (range, 5 to 59+). Of the 13 patients who received intensification therapy in CR, five remain disease free (DF), four for 4 years or longer. Of the nine patients to achieve CR with intensification, only one is DF. No patient died during intensification. In conclusion, intensification with high-dose chemotherapy can increase the CR rate, and this approach is most likely to show long-term benefits in patients with minimal disease (CR) at the beginning of intensification therapy.

Adult↗

Effects of brain irradiation and chemotherapy on myelosuppression in small-cell lung cancer.

The effect of brain irradiation on myelosuppression was studied in patients with untreated small-cell lung cancer (SCLC) by comparing 24 patients who received brain irradiation for brain metastasis at presentation (irradiated patients) with 24 control patients who were selected by matching ages and non-CNS metastatic sites with those of irradiated patients. All patients were evaluated during the first three courses of chemotherapy. More irradiated patients than control patients had chemotherapy dose reductions from the starting dose level for the second (nine of 22 v two of 24; P = .03) and the third (nine of 18 v three of 20; P = .05) courses of chemotherapy. Overall, more irradiated patients had chemotherapy dose reductions than did control patients (11 of 22 v three of 24; P = .01). The difference was highly significant even after other variables were considered in a multivariate analysis (P less than .001). Myelosuppression was more severe in irradiated patients for WBCs (P = .01) and for platelets (P = .05). When the second course of chemotherapy was administered at the same dose levels as in the first course, irradiated patients had greater decreases in nadir counts after the second course compared with the first course than did control patients. Irradiated patients had a higher incidence of infectious complications than did control patients (14 of 24 v six of 24; P = .02), particularly after the second course of chemotherapy (seven of 22 v one of 24; P = .04). There were four treatment-related deaths due to sepsis in irradiated patients. Following brain irradiation given concurrently with intensive chemotherapy, close monitoring of myelosuppression and adjustments of chemotherapy doses are advised.

Adult↗

I.v. melphalan in carcinoma of the lung: effect of cyclophosphamide priming on hematopoietic toxicity.

Thirty-six patients with lung cancer, 24 with prior chemotherapy and 12 without prior chemotherapy, received iv melphalan at doses ranging from 20 to 40 mg/m2 of body surface area. Patients who showed moderate myelosuppression and remained in the study were also investigated to determine if cyclophosphamide (300 mg/m2) administered 1 week before the identical dose of i.v. melphalan modified the hematopoietic toxicity of melphalan (cyclophosphamide priming). In this study, the activity of melphalan was minimal, four minor responses with no partial or complete responses. Three of these minor responses were in previously untreated patients. The major toxicity was hematopoietic and the maximum tolerated i.v. dose was 20 mg/m2 in the patients previously treated with chemotherapy and 30 mg/m2 in those without prior chemotherapy. Cyclophosphamide priming did not reduce the myeloid toxicity. Myelosuppression was more severe in the course that included cyclophosphamide. Recovery, however, appeared to be similar in both courses. I.v. melphalan at these doses has minimal activity in lung cancer. Cyclophosphamide administered 1 week before i.v. melphalan does not decrease the myelosuppression but should be investigated further for its effect on the rate of wbc and neutrophil count recovery.

Adult↗

Esophageal complications from combined chemoradiotherapy (cyclophosphamide + Adriamycin + cisplatin + XRT) in the treatment of non-small cell lung cancer.

Esophageal complications from combined chemoradiotherapy (CCRT) were analyzed in 55 patients with limited non-small cell lung cancer. CCRT consisted of chemotherapy (cyclophosphamide, doxorubicin (Adriamycin), and cisplatin: CAP) and chest irradiation (5000 rad in 25 fractions/5 weeks). Forty-five patients received two courses of CAP, followed by five weekly courses of low dose CAP and irradiation followed by maintenance courses of CAP (Group 1). Ten patients received concomitant CCRT from the onset of treatment (Group 2). Esophagitis occurred in 80% of all patients. Severe esophagitis occurred in 27% of patients of Group 1 and 40% of patients of Group 2. Esophageal stricture or fistula developed in 1 of 45 (2%) patients in Group 1, and 3 of 10 (30%) patients in Group 2 (p less than 0.025). Weekly low-dose chemotherapy administered concomitantly with chest irradiation (R) at the onset of treatment significantly increases esophageal complications. A review of the literature suggests that CCRT may be used safely with split courses of R. The duration between onset of chemotherapy either before or after R should be greater than one week.

Adenocarcinoma↗

Randomized trial of three combinations of cisplatin with vindesine and/or VP-16-213 in the treatment of advanced non-small-cell lung cancer.

One hundred sixty-seven evaluable patients with non-small-cell lung cancer were randomized to receive high-dose cisplatin and vindesine (PVD), or cisplatin and VP-16-213 (etoposide epipodophyllotoxin) (PVP), or cisplatin with VP-16-213 and vindesine (PVPVD). The patient distribution and characteristics were similar in all the treatment arms. The response rate differences (35% in PVD arm, 30% in PVP arm, and 22% in PVPVD arm) were not statistically significant (P = .33). Response durations were 43 weeks in the PVD arm, 20 weeks in the PVP arm, and 27 weeks in the PVPVD arm. Median survival was 29 weeks in the PVD and PVP arms and 28 weeks in the PVPVD arm. Median survival time of responding patients was 76 weeks in the PVD arm and 65 weeks in the PVP arm; 78% of patients were alive at 22+ to 87+ weeks follow-up in the PVPVD arm. Myelosuppression was similar in all three treatment arms. Significantly more azotemia occurred in the PVD arm than in the PVP and PVPVD arms (P = .002), and significantly more neuropathy in the PVD and PVPVD arms than in the PVP arm (P = .003 and .005). All the treatment arms have similar antitumor activity in non-small-cell lung cancer, but the PVP combination is slightly less toxic than the PVD and PVPVD treatment arms.

Adenocarcinoma↗

Role of elective brain irradiation during combined chemoradiotherapy for limited disease non-small cell lung cancer.

We have studied the clinical impact of elective brain irradiation (EBI) in patients with locally advanced, non-small cell lung cancer (LA-NSC). All patients received combination chemotherapy (cyclophosphamide + doxorubicin (Adriamycin) + cisplatin = CAP) or CAP plus radiotherapy as the initial treatment for their active tumor or as an adjuvant therapy. Of 97 evaluable patients, 46 were randomized to receive EBI (3 000 rad in 10 fractions given over two weeks). The characteristics of both groups were comparable by sex, age, performance status, pretherapy weight loss, histologic cell type, clinical staging, and type of prior therapy. EBI significantly decreased the incidence of central nervous system (CNS) metastasis in the treated group compared to the control group (4% vs 27%, p = .002). CNS involvement occurred in the treated group after failure at other sites whereas 12 of 14 control patients had CNS metastases as the first site of relapse. EBI decreased the incidence of CNS metastasis in all prognostic categories. Using multivariate analysis, the beneficial effect was shown to be significant in females, patients with good performance status, weight loss less than 6%, squamous cell histology, state III disease or no prior therapy. EBI significantly increased CNS metastasis-free interval with a beneficial effect that was significant in males, patients with weight loss less than 6%, squamous cell histology or responders. Although no survival benefit was observed for the treated group because of the adverse effect from other relapses, EBI will become more important as better treatment programs are developed.(ABSTRACT TRUNCATED AT 250 WORDS)

Antineoplastic Combined Chemotherapy Protocols↗

Effects of intensive induction chemotherapy for extensive-disease small cell bronchogenic carcinoma in protected environment-prophylactic antibiotic units.

Fifty-five patients with extensive-disease small cell bronchogenic carcinoma received three courses of intensive, inpatient, remission induction chemotherapy in (25 patients) or out (30 patients) of protected environment-prophylactic antibiotic (PEPA) units. Chemotherapy consisted of ECHO induction (E = epipodophyllotoxin VP-16-213; C = cyclophosphamide; H = hydroxydaunorubicin; O = Oncovin) and PRIME maintenance (PR = procarbazine; I = ifosfamide; ME = methotrexate). All evaluable patients (22 in the protected environment group and 26 in the control group) had a complete (50 percent in the protected environment group and 54 percent in the control group) or partial (50 percent in the protected environment group and 46 percent in the control group) remission. Median response and survival durations for both treatment groups were similar. The median survival duration of patients with a complete remission favored the protected environment group (16.5 versus 12.67 months; p = 0.20). Two patients (one from each group) are alive and disease-free for more than four years. Myelosuppression was intense and more pronounced in the protected environment group (p less than or equal to 0.01). Infectious complications were less common in patients receiving intravenous prophylactic antibiotics and in those treated with intravenous antibiotics in PEPA units (p less than or equal to 0.04). There were no treatment-related deaths, although treatment might have contributed to the death of three patients in the protected environment group and four in the control group. The administration of intensive ECHO induction chemotherapy to patients with extensive small cell bronchogenic carcinoma produced a high complete remission rate, although there was no significant long-term survival advantage over a program of less intensity. The administration of intravenous prophylactic antibiotics and the use of PEPA units significantly reduced the infectious morbidity of chemotherapy.

Adult↗

Prospective evaluation of thymosin fraction V immunotherapy in patients with non-small cell lung cancer receiving vindesine, doxorubicin, and cisplatin (VAP) chemotherapy.

One hundred five patients with advanced non-small cell lung cancer were randomized to receive thymosin fraction V immunotherapy during remission induction chemotherapy with vindesine, doxorubicin, and cisplatin (VAP). Fifty-four patients received VAP alone. Fifty-one patients received VAP + thymosin. Both groups were comparable; most patients were male, with a good performance status and with the diagnosis of adenocarcinoma. Among 99 evaluable patients, response was seen in 24 (2 CRs, 22 PRs) of 53 (45%) patients treated with VAP and 10 (all PRs) of 46 (22%) patients treated with VAP + thymosin (p = 0.03). VAP-treated patients responded better than those treated with VAP + thymosin in each tumor category: adenocarcinoma, 50% of 36 patients versus 22% of 27 patients; squamous cell carcinoma, 29% of 14 patients versus 21% of 13 patients; undifferentiated carcinoma, 67% of three patients versus 17% of six patients. Median survival duration was 34 weeks versus 25 weeks in favor of the VAP-treated group (p = 0.14). Thymosin treatment resulted in decreased graft-vs.-host reaction (p = 0.01) and increased suppressor effect on normal mitogen response to Con-A (p = 0.17). The activity of VAP chemotherapy is comparable with the most effective multidrug regimens of the present time in patients with advanced non-small cell tumors. The addition of thymosin immunotherapy appeared to have a negative effect on the activity of VAP.

Adenocarcinoma↗

Systemic combination chemotherapy as primary treatment of brain metastasis from lung cancer.

Five patients with primary lung cancer metastatic to the brain were treated with systemic combination therapy alone. One patient had had unsuccessful radiation therapy, while the other four received chemotherapy as the primary modality of treatment. Response was observed in all five patients. The concept of the blood-brain barrier and the role of systemic chemotherapy in metastatic cancer to the brain are discussed.

Adenocarcinoma↗