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Biomedical subjects

L Milas

Publications and source records attributed to L Milas.

At least 55 records · Page 3Linked to original sources

Chemopreventive doses of amifostine confer no cytoprotection to tumor nodules growing in the lungs of mice treated with cyclophosphamide.

In addition to the cytoprotective benefits of amifostine (Ethyol; Alza Pharmaceuticals, Palo Alto, CA/US Bioscience, West Conshohocken, PA) to normal cells, it also prevents the induction of somatic mutations that can lead to therapy-induced second cancers. The mutagenic effects of cyclophosphamide, an agent that is known to be mutagenic to normal cells, were determined in mouse splenocytes using a mutational assay system. Cyclophosphamide 100 mg/kg increased mutant frequencies 10-fold. In contrast, amifostine 100 mg/kg, whether administered 30 minutes before or 2 hours after cyclophosphamide administration, resulted in eightfold lowered mutant frequencies. To address potential cytoprotective effects on tumors exposed to this dose, amifostine was administered to tumor-bearing mice either 30 minutes before or 2 hours after the administration of cyclophosphamide. Cyclophosphamide (range, 10 to 100 mg/kg) was administered intraperitoneally into mice 4 days following the injection of 3.5 x 10(5) viable fibrosarcoma (FSa) cells. At this time, microcolonies of FSa tumors containing 50 to 200 cells were present in the lung. The number of FSa lung nodules formed at the end of 14 days in control animals was compared with that of animals treated with cyclophosphamide +/- amifostine. No cytoprotection of murine FSa tumors by amifostine was observed across the entire cyclophosphamide dose range tested, regardless of time of administration, demonstrating the utility of amifostine as a chemopreventive drug under conditions that do not allow cytoprotection for tumor cells.

Amifostine↗

Inverse relationship between epidermal growth factor receptor expression and radiocurability of murine carcinomas.

The study investigated whether a relationship exists between the extent of epidermal growth factor receptor (EGFR) expression and in vivo radiocurability of murine tumors. EGFR expression was determined in nine carcinomas (four mammary carcinomas, designated MCa-4, MCa-29, MCa-35, and MCa-K; two squamous cell carcinomas, designated SCC-IV and SCC-VII; an ovarian adenocarcinoma, OCa-I; a hepatocarcinoma, HCa-I; and an adenosquamous carcinoma, ACa-SG) syngeneic to C3Hf/Kam mice using Western blot analysis. These tumors greatly differed in their radioresponse, assessed by TCD50 assay, and in their susceptibility to radiation-induced apoptosis. Likewise, the expression of EGFR greatly varied, by as much as 21-fold, and the magnitude of the EGFR expression positively correlated with increased tumor radioresistance. The levels of EGFR inversely correlated with radiation-induced apoptosis, suggesting that the lack of sensitivity to apoptosis induction was a major mechanism responsible for radioresistance of tumors with high EGFR. This correlation was highly significant only for wild-type p53 carcinomas. Radiation activated EGFR autophosphorylation and increased the activity of protein tyrosine kinase, but only in tumors with high EGFR expression. Thus, EGFR expression was a major determinant of tumor radioresponse in vivo. The pretreatment assessment of EGFR expression could predict radiotherapy outcome and may assist in selecting an effective treatment modality.

Animals↗

Effect of docetaxel on the therapeutic ratio of fractionated radiotherapy in vivo.

The aim of this investigation was to determine whether docetaxel increases the therapeutic ratio of fractionated radiotherapy in vivo. Two tumor types were chosen based on their sensitivity to docetaxel as a single agent: (a) docetaxel-sensitive MCa-4 mammary adenocarcinoma, which responds to docetaxel by G2-M-phase cell cycle arrest, apoptosis, and subsequent reoxygenation of surviving tumor cells; and (b) docetaxel-resistant SCC-VII squamous cell carcinoma, which responds to docetaxel treatment only by G2-M-phase arrest. Response of the normal jejunal mucosa in mice was compared to the response of both tumor types to confirm therapeutic gain. We conducted micromorphometric analysis of tumor cell mitosis, assayed apoptosis by its histological appearance in tissue sections, and determined tumor response by tumor growth delay. Normal tissue response of the jejunum was assayed by micromorphometric analysis of mitotic and apoptotic indices, and clonal crypt stem cell survival was measured using the microcolony assay. Two clinically relevant treatment schedules were tested for both antitumor efficacy and normal tissue toxicity: (a) a single bolus of docetaxel (33 mg/kg i.v.) 24 h before five daily fractions of radiation; and (b) daily administration of docetaxel (8 mg/kg i.v.) with radiation delivered at the peak of mitotic arrest (9 h for MCa-4 and 6 h for SCC-VII tumors). The best therapeutic gain for docetaxel-sensitive MCa-4 was achieved with a single bolus of drug 24 h before the start of fractionated radiotherapy (therapeutic gain = 2.04). This schedule takes advantage of reoxygenation of hypoxic tumor cells during the interval between drug treatment and radiation delivery. The best therapeutic gain for docetaxel-resistant SCC-VII was achieved with intermittent multiple doses of docetaxel given during the course of fractionated radiotherapy. This schedule maximized the exposure of cells to radiation while they were arrested by docetaxel in the radiosensitive G2-M phases of the cell cycle (enhancement factor = 2.0). Final therapeutic gain was reduced to 1.59 because of increased normal tissue toxicity in mice treated with multiple intermittent doses of docetaxel in combination with fractionated radiotherapy. Thus, docetaxel greatly enhanced tumor response to fractionated radiotherapy, but the magnitude of therapeutic efficacy depended on drug-radiation scheduling. The greatest therapeutic gain in the treatment of docetaxel-sensitive tumors was achieved by a single large dose of docetaxel administered 1 day before the initiation of fractionated radiotherapy and in the treatment of docetaxel-resistant tumors by daily concomitant docetaxel-radiation treatments.

Adenocarcinoma↗

Complete regression of well-established tumors using a novel water-soluble poly(L-glutamic acid)-paclitaxel conjugate.

Despite an intensive search, few water-soluble paclitaxel derivatives have been shown to have a therapeutic index superior to paclitaxel itself. We now report a water-soluble poly(L-glutamic acid)-paclitaxel conjugate (PG-TXL) that produces striking antitumor effects with diminished toxicity. A single i.v. injection of PG-TXL at its maximum tolerated dose (defined as that dose that produces a maximum 12-15% body weight loss within 2 weeks after a single i.v. injection) equivalent to 60 mg of paclitaxel/kg and at even a lower dose equivalent to 40 mg of paclitaxel/kg resulted in the disappearance of an established implanted 13762F mammary adenocarcinoma (mean size, 2000 mm3) in rats. (An equivalent dose of PG-TXL is the amount of conjugate that contains the stated amount of paclitaxel.) Similarly, mice bearing syngeneic OCA-1 ovarian carcinoma (mean size, 500 mm3) were tumor-free within 2 weeks after a single i.v. injection of the conjugate at a dose equivalent to 160 mg of paclitaxel/kg. The conjugate has little if any intrinsic tubulin polymerization activity in vitro and is >20 times less potent in supporting the growth of a paclitaxel-dependent CHO mutant cell line. PG-TXL has a prolonged half-life in plasma and greater uptake in tumor as compared with paclitaxel. Furthermore, only a small amount of total radioactivity from PG-[3H]TXL was recovered as free [3H]paclitaxel in either the plasma or the tumor tissue within 144 h after drug injection. Histological studies of tumor tissues obtained from mice treated with PG-TXL show fewer apoptotic cells but more extensive tumor necrosis as compared with paclitaxel treatment. These data suggest that in addition to its role as a carrier for selective delivery of paclitaxel to the tumor, PG-TXL exerts distinct pharmacological actions of its own that may contribute to its remarkable antitumor efficacy.

Animals↗

Prognostic biomarker study in pathologically staged N1 non-small cell lung cancer.

PURPOSE: The prognostic influence of 6 biomarkers correlated to histologic subtypes of non-small cell lung cancer (NSCLC) on loco-regional control, overall survival, disease-free survival (DFS), and distant disease control (DDC) rates, all measured at 5 years, were examined. MATERIALS & METHODS: Cell blocks from the primary tumors of 137 patients with pathologically staged N1 NSCLC at MDACC were analyzed by 6-biomarker status correlated to histological subtypes and their outcomes. RESULTS: The ranges of biomarker values were as follows: apoptotic index, 0.2-2.8%; mitotic index, 0-1.8%; the proportion of cells in S+G2M, 3-36%; p53 status, 0-100%; Ki-67, 0-9.3%; DNA index, 1.0-2.74. Subtypes of 137 cases from the postoperative pathology specimen showed that 74 patients had squamous carcinoma and 63 patients had adenocarcinoma. Mean and median lengths of follow-up were 4.21 years and 2.43 years, respectively. Patients with squamous cell carcinoma (SCC) had a better 5-year survival (p = 0.006), DFS (p = 0.002), and distant metastasis control (p = 0.002) than patients with adenocarcinoma (AC). Among patients with AC, the DNA index was a significant predictor of 5-year DFS (p = 0.02), DDC rate (p = 0.04), and local-regional control (p < 0.05). Higher apoptosis (p = 0.03) and mitosis indices (p = 0.03) were also univariate predictors of increased distant disease among patients with AC. Multivariate analysis of patients with AC revealed that the DNA index and Ki-67 were the only significant independent predictors of distant metastasis (p < 0.04 and p < 0.02, respectively) and DFS (p < 0.04 for both). Among patients with SCC, univariate analysis showed that S+G2M proportion (p < 0.05) and Ki-67 levels (p < 0.02) were significant predictors for local-regional control; for SC, multivariate analysis showed that only mitosis was a significant predictor in this case for overall survival (p < 0.04). CONCLUSION: Spontaneous apoptotic index and Ki-67 were significantly higher in SC than in AC. Patients with SC had less distant metastasis better DFS and overall survival than those with AC. Multivariate analysis revealed that DNA index and Ki-67 status were significant predictors for DDC and DFS in patients with AC, but only mitotic index was a significant predictor of overall survival for patients with SCC.

Adenocarcinoma↗

Effect of radiation and paclitaxel on p53 expression in murine tumors sensitive or resistant to apoptosis induction.

PURPOSE: Tumors are thought to differ in their response to cytotoxic agents for a variety of reasons including cell cycle kinetics, degree of hypoxia, differential repair, and ability to survive when stressed. Our previous studies showed that murine mammary carcinoma MCA-4 tumors are relatively sensitive to both radiation and paclitaxel and exhibit a significant apoptotic response following treatment in vivo. In contrast, murine squamous cell carcinoma SCC-VII tumors are relatively resistant to radiation and paclitaxel and exhibit relatively little apoptosis following treatment. Since dysfunctional p53 has been shown to be associated with tumor resistance, perhaps through a dysregulated cell loss mechanism, we examined the role of p53 expression in the differential apoptotic response of these two tumors following cytotoxic treatment in vivo. METHODS AND MATERIALS: Mice bearing 8-mm tumors were treated with 40 mg/kg paclitaxel i.v. or 15 Gy local tumor irradiation, and tumors were harvested at several time points up to 2 days following treatment. Histological sections of the tumors were then assessed micromorphometrically for mitotic arrest and apoptosis and immunohistochemically for p53 and p21 expression. RESULTS: In the apoptosis-sensitive MCA-4 tumors, p53 expression increased rapidly following radiation from 13% at baseline to a peak of 45% within 3 h, and expression remained elevated for more than 24 h. Radiation also upregulated p21 suggesting that radiation-induced apoptosis in MCA-4 tumor is p53 dependent. Paclitaxel also induced an increase in both p53 and p21 expression in MCA-4 cells; however, the increase was delayed compared to that after irradiation. This upregulation occurred after the onset of apoptosis which would suggest that paclitaxel-induced apoptosis is p53 independent. Both radiation and paclitaxel caused p53 upregulation in the apoptosis-resistant SCC-VII tumors. The untreated SCC-VII tumor has 25% cells p53 positive and has a very high level of p21 (87% cells positive) which suggests a downstream defect in p53 response. CONCLUSION: These results show that tumor responsiveness to paclitaxel and radiation, measured by tumor growth delay, was associated with apoptotic response. However, although both agents upregulated p53 expression in these tumors, the association between this upregulation and induction of apoptosis was not clear. Additional studies using these and other tumors are warranted to elucidate the role of p53 and its downstream effectors in the in vivo responsiveness of tumors to paclitaxel and radiation.

Animals↗

Interlaboratory variation in oxygen tension measurement by Eppendorf "Histograph" and comparison with hypoxic marker.

BACKGROUND AND OBJECTIVES: The median of pO2 values in tumor measured by Eppendorf "Histograph" with a needle-type electrode has been used as a prognostic indicator in cancer patients. However, it is not established that a pretreatment measured pO2 value can be used as a universal predictor of local control probability, because the variation in pO2 values, especially in hypoxic tissue, among institutes may not allow comparison of measured "absolute pO2 values." The purpose of this study was to examine the variation in oxygen tension measurement by Eppendorf "Histograph" among six laboratories using a single batch of mice and tumors and the same detailed protocol. These results were also compared to the immunohistochemical staining of 2-nitromidazole adducts. METHODS: C3H mice bearing FSaII murine fibrosarcoma subcutaneously were shipped to all laboratories, and the oxygen status in tumors and in normal subcutis was examined using Eppendorf "Histograph" and immunohistochemical hypoxic marker. RESULTS: All laboratories showed that the FSaII tumor was hypoxic with at least 77% of measured points under 10 mmHg in pO2 and with a median pO2 value less than that of normal subcutis. These results were further confirmed immunohistochemically. These findings are interpreted as evidence that the pO2 values measured by Eppendorf "Histograph" can be useful. However, the median values of tumor pO2 varied from 1.5 mmHg to 5.6 mmHg among the laboratories, and pO2 of normal subcutis also varied from 28 mmHg to 38 mmHg. There were also significant differences in hypoxic fraction, defined as the fraction under a given oxygen partial pressure (i.e., under 2.5, 5, or 10 mmHg), among institutes. CONCLUSIONS: Caution needs to be exercised in using the absolute, median, or distribution of pO2 values measured by the Eppendorf "Histograph" to compare the data between laboratories or to predict the radiation response in an individual subject.

Animals↗

Enhanced radioresponse of paclitaxel-sensitive and -resistant tumours in vivo.

Paclitaxel is a potent chemotherapeutic drug and also has the potential to act as a radioenhancing agent. The latter is based on its ability to arrest cells in the radiosensitive G2M phases of the cell cycle; the weight of supporting evidence is derived mainly from in vitro studies. Our previous in vivo experiments identified enhanced tumour radioresponse predominantly attributable to tumour reoxygenation occurring as a result of paclitaxel-induced apoptosis. The current study investigated whether paclitaxel enhanced the radioresponse of tumours which are insensitive to apoptosis induction, but exhibited mitotic arrest, and compared the degree and kinetics of the response to that in tumours which develop apoptosis. The mouse mammary carcinoma MCa-29 (apoptosis sensitive) and the squamous cell carcinoma SCC-VII (apoptosis resistant) were used. In addition, the study investigated whether paclitaxel affected normal skin radioresponse to determine if a therapeutic gain could be achieved. Paclitaxel enhanced the radioresponse of both types of tumours. In the SCC-VII tumour, radiopotentiation occurred within 12 h of paclitaxel administration coincident with mitotic arrest, where enhancement factors (EFs) ranged from 1.15 to 1.37. In MCa-29 tumour, the effect was greater, EFs ranging from 1.59 to 1.91 and occurred between 24 and 72 h after paclitaxel when apoptosis was the predominant microscopic feature of treated tumours and when tumour oxygenation was found to be increased. The acute skin radioresponse and late leg contracture response were essentially unaffected by prior treatment with paclitaxel. Therefore, by two distinct mechanisms, paclitaxel was able to enhance the radioresponse of paclitaxel-sensitive and -resistant tumours, but not the normal tissue radioresponse, thus providing true therapeutic gain.

Animals↗

Potentiation of antitumor efficacy of paclitaxel by recombinant tumor necrosis factor-alpha.

We studied the combination of tumor necrosis factor (TNF) and paclitaxel. Our aim was to determine whether TNF increases the antitumor efficacy of paclitaxel and if so whether the increase is mediated through the enhancement of apoptosis induction by paclitaxel. Mice bearing 6 mm MCa-K or MCa-4 mammary carcinomas, OCa-I ovarian carcinomas, or HCa-I hepatocarcinomas in their legs were treated with TNF, paclitaxel of their combination. TNF was administered i.p. daily at a dose of 10 micrograms per mouse for 7 days; paclitaxel at a dose of 40 mg/kg per mouse was given as a single i.v. injection 1 h before the second dose of TNF. Tumor growth delay was used as the endpoint of tumor response to the treatments. The results showed that the combination was either additive or supraadditive; supraadditive action occurred in three of the four tumors tested. The enhancement factors (EFs) were 1.24 for MCa-K, 1.53 for MCa-4, 1.0 for OCa-I and 2.17 for HCa-I. Histological analysis of treated MCa-K tumors revealed that TNF alone did not induce apoptosis of tumor cells, but in the combination it enhanced the apoptotic response to paclitaxel. Thus, TNF increased the antitumor efficacy of paclitaxel by enhancing cellular sensitivity to paclitaxel's induction of apoptosis. The results imply that the combination of TNF and paclitaxel has potential as a treatment for cancer.

Animals↗

The effect of tumor size on necrosis and polarographically measured pO2.

Tumor necrosis and oxygen status were investigated as a function of tumor size in three syngeneic murine carcinomas, MCa-4, OCa-I, and SCC-VII, in C3Hf/Kam mice. Tumor necrosis was estimated histologically, and tumor oxygenation determined by direct polarographic histography. As tumor volume increased necrosis increased significantly in all three tumor types (p < 0.001). Similarly, as tumor volume increased from 200 to 1400 mm3, hypoxia, defined as the percentage of measured pO2 values < or = 5.0 mm Hg, increased from 55.1% to 95.9%, 70.3% to 81.4%, and 56.8% to 98.5% in MCa-4, OCa-I, and SCC-VII tumors respectively (p < 0.001). Correcting pO2 for necrosis reduced the tumor size dependence of measured tumor hypoxia in all three tumor types but in no case was the reduction significant. The main effect of correction was to shift the fitted curves of percent pO2 values < or = 5.0 mm Hg down toward lower percentages for all tumors. This change was significant for MCa-4 and OCa-1 tumors (p < 0.001), but not for SCC-VII (p = 0.054). Defining the influence of variables such as necrosis that affect polarographic assessment of tumor oxygenation is important to enhance the technique's reliability and prospect as an investigative and predictive tool.

Animals↗

Synthesis, biodistribution and imaging properties of indium-111-DTPA-paclitaxel in mice bearing mammary tumors.

UNLABELLED: Paclitaxel, an antineoplastic agent that stabilizes microtubules and arrests cells in the G2/M cell cycle phase, has shown activity against many common cancers, including ovarian and breast tumors. In order to evaluate the potential value of radiolabeled paclitaxel as an imaging tool in tumors, we synthesized 111In-DEPA-paclitaxel and investigated its biodistribution and gamma scintigraphic imaging properties. METHODS: Mice bearing a paclitaxel-responsive mammary tumor (MCA-4) were used. DTPA-paclitaxel was labeled with 111In with a radiochemical yield of 84% and radiochemical purity of 90%. Each mouse received 5 microCi of radiotracers intravenously for biodistribution studies and 100 microCi for gamma scintigraphic studies. Indium-111-DTPA was used as a control. RESULTS: In tumor-bearing mice, 111In-DTPA was characterized by rapid clearance from the plasma with negligible retention in the tumor, the liver and other body parts. In contrast, 111In-DTPA-paclitaxel exhibited a pharmacological profile resembling that of paclitaxel. Furthermore, a significant uptake of 111In-DTPA-paclitaxel was observed in the tumor. The tumor-to-muscle ratios were 2.64, 3.16 and 6.94 at 30 min, 2 hr and 24 hr, respectively, although absolute uptake in the tumor decreased from 1.95% (injected dose/g) at 30 min to 0.21% at 24 hr after injection. The tumor-to-blood ratio reached 50 at 24 hr after injection. Gamma scintigraphy and autoradiographic studies clearly showed the retention of radiolabeled paclitaxel in the tumor 24 hr after injection. CONCLUSION: These studies suggest that 111In-DTPA-paclitaxel may be clinically useful in studying the uptake of paclitaxel in solid tumors.

Animals↗

Docetaxel enhances tumor radioresponse in vivo.

Although the radiosensitizing potential of paclitaxel has been investigated extensively in cancer treatment, a sister taxane, docetaxel, has been studied rarely. We investigated the ability of docetaxel to enhance in vivo tumor radioresponse and influence radiation injury to normal tissue. In addition, mitotic arrest and apoptosis in tumors and normal tissues were assessed after docetaxel administration to determine whether these cellular effects underly its radio-modifying action. Mice bearing in their legs 8-mm isotransplants of a murine mammary carcinoma, designated MCA-4, were treated with 33 mg/kg docetaxel i.v., 9-21 Gy single-dose local tumor irradiation, or both (in which case radiation was given 9 or 48 h after docetaxel). Tumor growth delay was the end point of the treatments. Mitotic arrest and apoptosis were assayed 1-72 h after treatment with docetaxel. Normal tissue radioresponse was determined using jejunal crypt cell survival 3.5 days after mice were exposed to 9.2-14.8 Gy single-dose, total-body irradiation; the mice were treated with 33 mg/kg docetaxel i.v. 3, 9, or 48 h before irradiation. Docetaxel was assessed for its ability to induce mitotic arrest and apoptosis in jejunum 1-72 h after treatment. Docetaxel induced both mitotic arrest and apoptosis in both tumor and jejunum. Mitotic arrest preceded apoptosis and peaked in the tumor at 9-12 h after treatment; it peaked at 3 h in jejunum. Docetaxel enhanced tumor radioresponse by a factor of 1.45 when the drug was given 9 h before radiation and 2.33 when it was given 48 h before. In contrast, it only slightly enhanced radiation-induced damage of the jejunum and only when given 3 or 9 h before irradiation. Thus, docetaxel given within 2 days before irradiation acted as a potent enhancer of tumor radioresponse and increased the therapeutic gain of irradiation.

Animals↗

Apoptosis and mitosis as prognostic factors in pathologically staged N1 nonsmall cell lung cancer.

PURPOSE: This study aimed to established whether spontaneous apoptosis or mitosis has prognostic value among patients with pathologically staged N1 nonsmall cell lung carcinoma (NSCLC) treated with surgical resection with or without adjuvant therapy. METHODS AND MATERIALS: Material from 173 patients who had resections between 1970 and 1988 was analyzed for apoptosis and mitosis. There were 128 men and 45 women, with a median age of 61 years. There were 86 squamous cell carcinomas (SQ), 73 adenocarcinomas (AC), 3 large-cell carcinomas (LC), 6 SQ-AC, and 5 unclassified. Patients were observed from 2 to 209 months (median 27). Actuarial methods were used to assess survival and freedom from distant metastasis. RESULTS: In NSCLC, apoptosis was found to range from 0.2% to 2.8% (median 1.0%) and mitosis from 0 to 1.8% (median 0.4%). Tumors having higher levels of apoptosis also had higher levels of mitosis (p = 0.001). The values of neither apoptosis nor mitosis depended on size, location, differentiation of tumors, age, performance status, or weight loss of patients. However, the values of apoptosis depended on tumor histology in that high values (greater than or equal to the median) were more frequent in SQ (49%) than in AC/LC (29%) (p = 0.01). The overall survival for NSCLC patients, which was 33% at 5 years, did not depend on the level of either apoptosis or mitosis. The 5-year survival of patients having SQ was higher (43%) than that of patients having AC/LC (21%) (p = 0.03). Patients with high apoptosis showed significantly better 5-year overall (p = 0.008) and DMF (p = 0.0012) survivals in the SQ group compared to the AC/LC group. High mitosis compared to low mitosis was a significantly better predictor for 5-year survival (62% vs. 29%, respectively) (p = 0.035) in the SQ. However, high mitosis was a significantly worse 5-year DMF survival predictor compared to low mitosis: 13% vs. 56%, respectively (p = 0.05) in AC/LC. In the multivariate models for AC/LC, mitosis remained a significant predictor of 5-year distant metastasis (p = 0.025) controlling for treatment groups (p = 0.042), whereas apoptosis was an independently significant predictor of 5-year distant metastasis (p = 0.010). CONCLUSION: Squamous cell histology predicted significantly better 5-year overall and DMF survivals compared to AC/LC. Apoptosis was correlated with mitosis. Although apoptosis or mitosis did not predict survival or DM, high apoptosis or mitosis predicted significantly better survival in SQ and significantly worse survival in AC/LC with regard to overall and DMF survivals. In the multivariate models for AC/LC, apoptosis alone or mitosis with variable treatment was a significant predictor of 5-year distant metastasis. Thus, pretreatment levels of apoptosis or mitosis might be useful for predicting treatment outcome of SQ and AC/LC subsets of NSCLC when analyzed separately and for predicting metastatic incidence of AC/LC.

Adenocarcinoma↗

Relationship of mitotic arrest and apoptosis to antitumor effect of paclitaxel.

BACKGROUND: Microtubules are cellular organelles with functions that include control of cell division by mitosis, cell morphology, and transport of material within the cell. The anticancer drug paclitaxel (Taxol) promotes accelerated assembly of excessively stable microtubules. Consequently, treated cells tend to become arrested in mitosis. The drug also induces apoptotic cell death in vitro and in vivo. Prior to this study, the relative contributions of mitotic arrest and apoptosis to the in vivo antitumor effect and the relationship between the two factors had not been established; moreover, it is not known whether paclitaxel-induced mitotic arrest inevitably results in cell death. PURPOSE: Our aim was to quantify the mitotic arrest and apoptosis induced by paclitaxel in 16 murine tumors in vivo and to correlate these two factors with the drug's antitumor effect. METHODS: Inbred C3Hf/Kam mice were implanted with one of the following 16 syngeneic tumors: seven adenocarcinomas (MCa-4, MCa-29, MCa-35, MCa-K, OCa-I, ACa-SG, and HCa-I), two squamous cell carcinomas (SCC-IV and SCC-VII), six sarcomas (FSa, FSa-II, Sa-IIa, Sa-NH, NFSa, and Sa-4020), and one lymphoma (Ly-TH). The tumor growth delay induced by paclitaxel (40 mg/kg body weight given intravenously) was measured in 163 control and 163 treated mice, and its significance was assessed by Student's t test. In a separate group of 439 mice, the percentage of cells in mitosis or apoptosis was scored micromorphometrically at various times after paclitaxel administration. The significance of correlations between paclitaxel-induced tumor growth delay and paclitaxel-induced levels of mitosis or apoptosis was determined by simple correlation and Spearman's rank correlation. P values reported represent two-sided tests of statistical significance. RESULTS: Statistically significant tumor growth delays were found in response to paclitaxel treatment of mice for three of four murine mammary carcinomas (all P < or = .010), an ovarian carcinoma (P = .00003), a salivary gland adenocarcinoma (P = .0002), a lymphoma (P = .0002), and two of six sarcomas (both P < or = .034), but not for either of two squamous cell carcinomas or for the hepatocellular carcinoma. Paclitaxel-induced mitotic arrest was apparent in all tumor types, but to various degrees, and was not significantly correlated with growth delay (R2 = .16; P = .124). In contrast, apoptotic cell death in response to paclitaxel was not ubiquitous, but it was strongly correlated with growth delay (R2 = .59; P = .001). The pretreatment level of apoptosis was correlated with both paclitaxel-induced apoptosis (R2 = .71; P = .00004) and tumor growth delay (R2 = .55; P = .001). CONCLUSION: The antitumor effect of paclitaxel was correlated with paclitaxel-induced apoptosis and base-line apoptosis, but not with mitotic arrest. IMPLICATIONS: Apoptosis is an important mechanism of cell death in response to paclitaxel treatment of in vivo murine tumors. An underlying tumor type-specific propensity for apoptosis is implied by the correlation between pretreatment and paclitaxel-induced apoptosis. Both the extent of pretreatment apoptosis and the paclitaxel-induced percentage of apoptosis may be useful predictors of response to the drug.

Adenocarcinoma↗

Accelerated repopulation during fractionated irradiation of a murine ovarian carcinoma: downregulation of apoptosis as a possible mechanism.

PURPOSE: To test whether accelerated tumor clonogen repopulation occurs during continuous fractionated radiotherapy of a slow-growing mouse ovarian tumor, and if so whether the accelerated rate of repopulation is predicted by the pretreatment potential doubling time, and whether changes in apoptotic response are a possible mechanism for this change. METHODS AND MATERIALS: The rate of clonogen production during fractionated radiotherapy was followed using the tumor-control assay, with an independent determination of the sensitivity to repeated dose fractions in vivo in the absence of repopulation. The pretreatment potential doubling time was measured by bromodeoxyuridine (BrdUrd) labeling and fluorescence measurements. The apoptotic and mitotic indices at various times during treatment were scored histologically. RESULTS: The slow-growing (pretreatment volume doubling time 6 days) ovarian tumor OCA responds to daily irradiation with 6 Gy under hypoxia by negligible tumor clonogen production in the first few days, followed by a change at about 9 days to accelerated repopulation, after which the effective clonogen doubling time Tclon was about 2 days, near the pretreatment Tpot of 1.7 days. Alternative interpretations of the data, such as a change in radiosensitivity vs. a change in the repopulation rate or acceleration at 3 days as opposed to 9 days, were shown to be unlikely. This change was accompanied by a reduced apoptotic response (measured morphometrically). CONCLUSIONS: When sensitivity to fractionated doses has been corrected for in vivo, this slow-growing mouse tumor exhibits a change to accelerated clonogen production during a continuous radiotherapy regimen that is accompanied or preceded by a reduced histologic apoptotic response. Tclon during accelerated repopulation was slightly longer than the pretreatment Tpot.

Animals↗

Programmed cell death and radioresistance.

Whereas apoptosis is a critical mode of cell deletion in normal organism development, apoptotic cells are also observed in tumors, especially following cytotoxic treatments, leading to questions about their role in tumor response to therapy. We have conducted a series of studies using murine tumor models and found that the ability of the tumor cells to undergo apoptosis correlates with tumor response to radiation. The best correlation was with the pretreatment apoptotic index, suggesting that apoptosis in some tumors may govern radiocurability by regulating the number of tumor clonogens. However, other roles for apoptosis in tumor response to radiation have not been ruled out. One of the important observations that has come from this work has been the heterogeneity in apoptosis propensity both within the cell population of a given tumor and among different types of tumors. Such findings underscore the fact that apoptosis is under complex genetic control and that some of the same oncogenes and tumor suppressor genes that are responsible for tumor initiation and progression to malignancy also dictate the apoptotic response to treatment. Understanding the biochemical and molecular pathways that govern this process may ultimately allow the development of strategies for modulating apoptosis for therapeutic benefit.

Animals↗