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Chandana A Reddy

Publications and source records attributed to Chandana A Reddy.

At least 19 recordsLinked to original sources

Intensity-modulated radiotherapy for pituitary adenomas: the preliminary report of the Cleveland Clinic experience.

PURPOSE: Intensity-modulated radiotherapy (IMRT) is being increasingly used for the treatment of pituitary adenomas. However, there have been few published data on the short- and long-term outcomes of this treatment. This is the initial report of the Cleveland Clinic's experience. METHODS AND MATERIALS: Between February 1998 and December 2003, 34 patients with pituitary adenomas were treated with IMRT. A retrospective chart review was conducted for data analysis. RESULTS: With a median follow-up of 42.5 months, the treatment has proven to be well tolerated, with performance status remaining stable in 90% of patients. Radiographic local control was 89%, and among patients with secretory tumors, 100% had a biochemical response. Only 1 patient required salvage surgery for progressive disease, giving a clinical progression free survival of 97%. The only patient who received more than 46 Gy experienced optic neuropathy 8 months after radiation. Smaller tumor volume significantly correlated with subjective improvements in nonvisual neurologic complaints (p = 0.03), and larger tumor volume significantly correlated with subjective worsening of visual symptoms (p = 0.05). New hormonal supplementation was required for 40% of patients. Younger patients were significantly more likely to require hormonal supplementation (p = 0.03). CONCLUSIONS: Intensity-modulated radiation therapy is a safe and effective treatment for pituitary adenomas over the short term. Longer follow-up is necessary to determine if IMRT confers any advantage with respect to either tumor control or toxicity over conventional radiation modalities.

Adenoma↗

Use of different definitions of biochemical failure after external beam radiotherapy changes conclusions about relative treatment efficacy for localized prostate cancer.

OBJECTIVES: To report biochemical relapse-free survival (bRFS) after radiotherapy (RT) for localized prostate cancer with two separate failure definitions and compare the results with those after radical prostatectomy (RP). METHODS: The study sample comprised 2516 patients with a median follow-up of 78 months. Biochemical relapse after RT was defined as either the American Society for Therapeutic Radiology Oncology definition (definition A [DefA]) or a prostate-specific antigen elevation of more than 2 ng/mL greater than the nadir prostate-specific antigen level (definition N [DefN]). Failure after RP was defined as a prostate-specific antigen level greater than 0.2 ng/mL. RESULTS: Compared with DefA, DefN resulted in a 13% greater bRFS rate at 5 years and a 12% lower bRFS rate at 10 years. On multivariate analysis, the treatment modality (RP versus RT) was a significant predictor of bRFS using DefA in favor of RP (P <0.001), but was not with DefN (P = 0.87). Higher radiation doses were independently associated with a better outcome with either definition. CONCLUSIONS: Compared with DefA, DefN resulted in better outcomes for up to 7 years after RT, but worse outcomes thereafter. The use of DefA versus DefN resulted in opposite conclusions about the relative efficacies of RT and RP, with DefN suggesting RT is equivalent to RP and DefA that it is worse than RP. Different definitions of biochemical failure after RT can result in differences in the conclusions about treatment efficacy in men with localized prostate cancer, thereby potentially affecting clinical decisions.

Adenocarcinoma↗

Aggressiveness of familial prostate cancer.

PURPOSE: To report on the aggressiveness of sporadic versus familial prostate cancer. PATIENTS AND METHODS: The study sample consisted of 4,112 stage T1-3 prostate cancer patients. The outcome of interest was biochemical relapse-free survival (bRFS). The analysis was performed for two distinct time periods, 1986 to 1992 (year < or = 1992) and 1993 to 2002 (year > or = 1993), to encompass both the early and late prostate-specific antigen (PSA) eras. RESULTS: A positive family history (FH positive) was reported in 16%. The 10-year bRFS rates for patients with negative family history (FH negative) versus FH positive were 59% and 63%, respectively (P = .90). However, in the year < or = 1992 period, the 10-year bRFS rates for FH negative versus FH positive were 45% and 34%, respectively (P = .015). In the year > or = 1993 period, the 10-year bRFS rates for FH negative versus FH positive were 61% and 67%, respectively (P = .54). Multivariate analysis failed to reveal family history as an independent predictor of relapse (P = .42). However, in the subset of patients in each era, family history was an independent predictor of relapse only for those treated in the year < or = 1992 period (P = .038). CONCLUSION: Family history was an independent predictor of biochemical failure only early in the PSA era, and men with an FH positive presented with more favorable disease later in the PSA era. This suggests that with stage migration and improved therapy, the impact of family history on prognosis has become minimal. However, underlying genetic factors affecting prostate cancer behavior in individuals with familial prostate cancer may still be important in determining individual prognosis.

Aged↗

Perineural invasion on prostate needle biopsy does not predict biochemical failure following brachytherapy for prostate cancer.

PURPOSE: To determine if the presence of perineural invasion (PNI) predicts biochemical recurrence in patients who underwent low-dose-rate brachytherapy for the treatment of localized prostate cancer. METHODS AND MATERIALS: A retrospective case control matching study was performed. The records of 651 patients treated with brachytherapy between 1996 and 2003 were reviewed. Sixty-three of these patients developed biochemical failure. These sixty-three patients were then matched in a one-to-one ratio to patients without biochemical failure, controlling for biopsy Gleason score, clinical stage, initial prostate-specific antigen, age, and the use of androgen deprivation. The pathology of the entire cohort was then reviewed for evidence of perineural invasion on initial prostate biopsy specimens. The biochemical relapse free survival rates for these two groups were compared. RESULTS: Cases and controls were well matched, and there were no significant differences between the two groups in age, Gleason grade, clinical stage, initial prostate-specific antigen, and the use of androgen deprivation. PNI was found in 19 (17%) patients. There was no significant difference in the rates of PNI between cases and controls, 19.6% and 14.3% respectively (p = 0.45). PNI did not correlate with biochemical relapse free survival (p = 0.40). CONCLUSION: Perineural invasion is not a significant predictor of biochemical recurrence in patients undergoing brachytherapy for prostate cancer.

Aged↗

Improved biochemical relapse-free survival for patients with large/wide glands treated with prostate seed implantation for localized adenocarcinoma of prostate.

OBJECTIVES: To analyze whether prostate size affects biochemical relapse-free survival (bRFS). METHODS: The bRFS outcomes for 390 patients with a minimum of 2 years of follow-up were determined from a review of a prospectively maintained database. All patients were treated with iodine-125 alone as the radiotherapeutic modality and had a minimum of four posttreatment prostate-specific antigen values. None were treated with androgen deprivation. The factors examined in the univariate and multivariate analyses predicting for bRFS included gland volume, patient age, initial prostate-specific antigen value, biopsy Gleason score, clinical stage, and postimplant dosimetric variables. RESULTS: Most patients had low-risk disease, and the median follow-up was 45 months (range 24 to 102). Using the American Society for Therapeutic Radiology Oncology definition of biochemical failure, the overall 5-year bRFS rate was 89.3%. On separate multivariate analyses, only the pretreatment prostate width and volume significantly influenced bRFS favorably (P = 0.0069 and P = 0.0255, respectively). No association was found between gland size/width and postimplant dosimetry. CONCLUSIONS: The results of our study have shown that implantation of large/wide prostates independently confers better bRFS.

Adenocarcinoma↗

PSA kinetics after prostate brachytherapy: PSA bounce phenomenon and its implications for PSA doubling time.

PURPOSE: To analyze prostate-specific antigen (PSA) kinetics in patients treated with prostate brachytherapy (PI) with a minimum of 5 years of PSA follow-up. METHODS AND MATERIALS: The records of 162 patients treated with PI for localized prostate cancer with a minimum of 5 years of PSA follow-up were reviewed. A variety of pretreatment and posttreatment variables were examined. Patients were coded as having a PSA bounce if their PSA achieved a nadir, elevated at least 0.2 ng/mL greater than that nadir, and decreased to, or below, the initial nadir. Two definitions of biochemical failure (bF) or biochemical relapse-free survival (bRFS) were used: the classic American Society for Therapeutic Radiology and Oncology consensus definition of three consecutive rises (bF3) and the nadir plus 2 ng/mL definition (bFn+2). Associations between a PSA bounce and the various pre- and posttreatment factors were assessed with logistic regression analysis, and the association between a PSA bounce and bF was examined with the log-rank test. The Mann-Whitney U test was applied to test for differences in the PSA doubling time (PSADT) and the time to a PSA rise between the PSA bounce patients and the bF patients. PSADT was calculated from the nadir to the time of the first PSA rise, because this point is known first in the clinical setting. RESULTS: The 5-year overall bRFS rate was 87% for the bF3 definition and 96% for the bFn+2 definition. A PSA bounce was experienced by 75 patients (46.3%). Patients who experienced a PSA bounce were less likely to have a bF, regardless of the bRFS definition used (bF3: p=0.0015; bFn+2: p=0.0040). Among the pre- and posttreatment factors, only younger age predicted for a PSA bounce on multivariate analysis (p=0.0018). The use of androgen deprivation had no effect on PSA bounce. No difference was found in the PSADT between patients who had a PSA bounce and those with bF. The median PSADT for those with a PSA bounce was 8.3 months vs. 10.3 months using the bF3 definition and 8.8 months using the bFn+2 definition. However, a significant difference was found in the time to the first rise in PSA after PI for patients with a PSA bounce vs. patients with bF. The median time to the first rise in PSA after nadir for those with a PSA bounce was 15.1 months vs. 30.0 months using the bF3 definition (p=0.001) and 22.3 months using the bFn+2 definition (p=0.013). CONCLUSION: Patients experiencing a PSA bounce are more likely to be younger and will have a better bRFS. The PSADT cannot differentiate a PSA bounce from bF. The time to the initial PSA rise after nadir is an excellent discriminator of bF from PSA bounce. The time of the PSA rise after nadir occurs far sooner for a PSA bounce than for bF. This factor should be considered when assessing a patient with a rising PSA level after PI before a patient is administered salvage therapy.

Age Factors↗

Hypofractionated intensity-modulated radiotherapy (70 gy at 2.5 Gy per fraction) for localized prostate cancer: long-term outcomes.

PURPOSE: To analyze the long-term relapse-free survival and toxicity rates in patients treated with hypofractionated intensity-modulated radiotherapy. METHODS AND MATERIALS: The study sample includes the first 100 consecutive localized prostate cancer patients treated to 70.0 Gy at 2.5 Gy per fraction. The median follow-up was 66 months (range, 3 to 75 months). Biochemical failure was the study endpoint, using both the ASTRO definition (A-bRFS) and the alternate "nadir + 2 ng/mL" definition (N-bRFS). RTOG scores were used to assess toxicity. RESULTS: The 5-year A-bRFS and N-bRFS rates were 85% (95%CI, 78-93%) and 88% (95%CI, 82-95%) for all cases, respectively. For low, intermediate and high-risk disease, the 5-year A-bRFS rates were 97%, 88%, and 70%. The corresponding 5-year N-bRFS rates were 97%, 93%, and 75%, respectively. The acute rectal toxicity scores were 0 in 20, 1 in 61, and 2 in 19 patients. The acute urinary toxicity scores were 0 in 9, 1 in 76, and 2 in 15 patients. The late rectal toxicity scores were 0 in 71, 1 in 19, 2 in 7, and 3 in 3 patients. The actuarial late Grade 3 rectal toxicity rate at 5 years was 3%. A number of the toxicities observed either resolved spontaneously or were corrected. At last follow-up, the rate of combined Grades 2 and 3 late rectal toxicity at 5 years was only 5%. The late urinary toxicity scores were 0 in 75, 1 in 13, 2 in 11, and 3 in 1 patients. The actuarial late Grade 3 urinary toxicity rate at 5 years was 1%. CONCLUSION: With a median follow-up of 66 months, the long-term results after high-dose hypofractionation are excellent. Late toxicity, urinary and rectal, has been limited. High-dose hypofractionation is an alternative dose escalation method in the treatment of localized prostate cancer.

Aged↗

Prophylactic tamsulosin (Flomax) in patients undergoing prostate 125I brachytherapy for prostate carcinoma: final report of a double-blind placebo-controlled randomized study.

PURPOSE: To evaluate the effectiveness of prophylactic tamsulosin (Flomax) in reducing the urinary symptoms in patients undergoing 125I prostate implantation (PI) for prostate adenocarcinoma. METHODS AND MATERIALS: This is a single-institution, double-blind, placebo-controlled, randomized trial for patients undergoing PI for prostate adenocarcinoma comparing prophylactic tamsulosin versus placebo. Eligibility criteria included patients not taking tamsulosin or other alpha-blockers treated with PI. The patients were randomly assigned to either tamsulosin (0.8 mg, orally once a day) or matched placebo. All patients started the medication 4 days before PI and continued for 60 days. The American Urologic Association (AUA) symptom index questionnaire was used to assess urinary symptoms. The AUA questionnaire was administered before PI for a baseline score and weekly for 8 weeks after PI. Patients were taken off the study if they developed urinary retention, had intolerable urinary symptoms, or wished to discontinue with the trial. RESULTS: One hundred twenty-six patients were enrolled in this study from November 2001 to January 2003 (118 were evaluable: 58 in the tamsulosin arm and 60 in the placebo group). Pretreatment and treatment characteristics were comparably matched between the two groups. The urinary retention rate was 17% (10 patients) in the placebo group compared with 10% (6 patients) in the tamsulosin group (p = 0.3161). Eighty-eight percent (14 patients) of those who developed urinary retention experienced it within 2 weeks after the PI. Intolerable urinary symptoms were reported equally (10 patients in each group) with 70% occurring in the first 2 weeks after PI. There was a significant difference in mean AUA score in favor of tamsulosin at Week 5 after PI (p = 0.03). CONCLUSIONS: Prophylactic tamsulosin (0.8 mg/day) before prostate brachytherapy did not significantly affect urinary retention rates, but had a positive effect on urinary morbidity at Week 5 after PI.

Adenocarcinoma↗

A retrospective comparison of androgen deprivation (AD) vs. no AD among low-risk and intermediate-risk prostate cancer patients treated with brachytherapy, external beam radiotherapy, or radical prostatectomy.

PURPOSE: To examine the value of androgen deprivation (AD) in the curative treatment of low- and intermediate-risk prostate cancer treated with the three major modalities: radical retropubic prostatectomy (RRP), external beam radiotherapy (EBRT), and permanent prostate implantation (PI). METHODS AND MATERIALS: During 1996-2001, 1668 patients with low- and intermediate-risk prostate cancer were treated at The Cleveland Clinic Foundation. Only patients with a minimum of 2 years of prostate-specific antigen follow-up were included in the analysis, and biochemical relapse-free survival (bRFS) was used as the endpoint. Patients were grouped according to treatment modality and stratified according to the use of AD. RESULTS: The overall 5-year bRFS rate was 87.8%. The 5-year bRFS rate for low-risk patients was 89% and for intermediate-risk patients was 79%. For low-risk patients, the 5-year bRFS rates by treatment modality (without AD vs. with AD, respectively) were PI: 90% vs. 93%; EBRT: 90% vs. 93%; and RRP: 89% vs. 84%. For intermediate-risk patients, the 5-year bRFS rates by treatment modality (without AD vs. with AD, respectively) were PI: 88% vs. 82%; EBRT: 81% vs. 84%; and RRP: 75% vs. 72%. None of the comparisons within risk groups or among modalities supports an increased efficacy with the use of AD. CONCLUSION: Five-year bRFS rates in low-risk and intermediate-risk patients are not improved by the use of AD.

Adult↗

Recurrence-free survival rates after external-beam radiotherapy for patients with clinical T1-T3 prostate carcinoma in the prostate-specific antigen era: what should we expect?

BACKGROUND: The objective of the current study was to report biochemical recurrence-free survival (bRFS) rates among men with T1-T3 prostate carcinoma who were treated with external-beam radiotherapy (RT) at the Cleveland Clinic Foundation (Cleveland, OH). METHODS: In total, 1352 patients were identified between 1987 and 2000 with a minimum follow-up of 1 year (median follow-up, 55 months; range, 12-189 months). The median radiation dose was 74.0 grays (Gy) (range, 63.0-83.0 Gy). The median radiation doses for patients who received < 68.0 Gy (n = 201), 68.0-72.0 Gy (n = 373), and > or = 72.0 Gy (n = 778) were 66.6 Gy, 70.0 Gy, and 78.0 Gy, respectively. The RT techniques used were standard RT in 41% of patients, 3-dimensional conformal RT in 34% of patients, and intensity-modulated RT in 25% of patients. Androgen-deprivation (AD) therapy lasting < or = 6 months was administered to 34% of patients. RESULTS: The 5-year and 7-year bRFS rates were 63% and 59%, respectively. On multivariate analysis, T classification (P < 0.001), pretreatment prostate-specific antigen level (P < 0.001), biopsy Gleason score (P = 0.001), radiation dose (P < 0.001), and year of therapy (P < 0.001) were independent predictors of biochemical failure. Age, race, AD therapy, and RT technique did not predict for biochemical failure. For patients with low-risk tumors, the 5-year bRFS rates for those who received RT doses of < or = 68.0 Gy, 68.0-72.0 Gy, and > or = 72.0 Gy were 52%, 82%, and 93%, respectively (P < 0.001); for patients with intermediate-risk tumors, the respective 5-year bRFS rates were 27%, 51%, and 83% (P < 0.001); and for patients with high-risk tumors, the respective 5-year bRFS rates were 21%, 29%, and 71%, respectively (P < 0.001). CONCLUSIONS: The most significant therapeutic factor affecting bRFS rates after RT was radiation dose, rather than AD therapy use or radiation technique.

Adult↗

Radical prostatectomy, external beam radiotherapy <72 Gy, external beam radiotherapy > or =72 Gy, permanent seed implantation, or combined seeds/external beam radiotherapy for stage T1-T2 prostate cancer.

PURPOSE: To review the biochemical relapse-free survival (bRFS) rates after treatment with permanent seed implantation (PI), external beam radiotherapy (EBRT) <72 Gy (EBRT <72), EBRT > or =72 Gy (EBRT > or =72), combined seeds and EBRT (COMB), or radical prostatectomy (RP) for clinical Stage T1-T2 localized prostate cancer treated between 1990 and 1998. METHODS AND MATERIALS: The study population comprised 2991 consecutive patients treated at the Cleveland Clinic Foundation or Memorial Sloan Kettering at Mercy Medical Center. All cases had pretreatment prostate-specific antigen (iPSA) levels and biopsy Gleason scores (bGSs). Neoadjuvant androgen deprivation for < or =6 months was given in 622 cases (21%). No adjuvant therapy was given after local therapy. RP was used for 1034 patients (35%), EBRT <72 for 484 (16%), EBRT > or =72 for 301 (10%), PI for 950 (32%), and COMB for 222 patients (7%). The RP, EBRT <72, EBRT > or =72, and 154 PI patients were treated at Cleveland Clinic Foundation. The median radiation doses in EBRT <72 and EBRT > or =72 case was 68.4 and 78.0 Gy, respectively. The median follow-up time for all cases was 56 months (range 12-145). The median follow-up time for RP, EBRT <72, EBRT > or =72, PI, and COMB was 66, 75, 49, 47, and 46 months, respectively. Biochemical relapse was defined as PSA levels >0.2 for RP cases and three consecutive rising PSA levels (American Society for Therapeutic Radiology Oncology consensus definition) for all other cases. A multivariate analysis for factors affecting the bRFS rates was performed using the following variables: clinical T stage, iPSA, bGS, androgen deprivation, year of treatment, and treatment modality. The multivariate analysis was repeated excluding the EBRT <72 cases. RESULTS: The 5-year bRFS rate for RP, EBRT <72, EBRT > or =72, PI, and COMB was 81%, 51%, 81%, 83%, and 77%, respectively (p <0.001). The 7-year bRFS rate for RP, EBRT <72, EBRT > or =72, PI, and COMB was 76%, 48%, 81%, 75%, and 77%, respectively. Multivariate analysis, including all cases, showed iPSA (p <0.001), bGS (p <0.001), year of therapy (p <0.001), and treatment modality (p <0.001) to be independent predictors of relapse. Because EBRT <72 cases had distinctly worse outcomes, the analysis was repeated after excluding these cases to discern any differences among the other modalities. The multivariate analysis excluding the EBRT <72 cases revealed iPSA (p <0.001), bGS (p <0.001), and year of therapy (p = 0.001) to be the only independent predictors of relapse. Treatment modality (p = 0.95), clinical T stage (p = 0.09), and androgen deprivation (p = 0.56) were not independent predictors for failure. CONCLUSION: The biochemical failure rates were similar among PI, high-dose (> or =72 Gy) EBRT, COMB, and RP for localized prostate cancer. The outcomes were significantly worse for low-dose (<72 Gy) EBRT.

Aged↗

Monotherapy for stage T1-T2 prostate cancer: radical prostatectomy, external beam radiotherapy, or permanent seed implantation.

BACKGROUND AND PURPOSE: To review the freedom from biochemical recurrence (FBR) rates after permanent prostate brachytherapy (PPB), external beam radiotherapy (RT) to a minimum 70Gy, or radical prostatectomy (RP) for clinically localized stage T1-T2 adenocarcinoma of the prostate. PATIENTS AND METHODS: The study cohort consisted of 1819 consecutively treated clinical stage T1-T2 (AJCC 1997) localized prostate cancer patients between 1992 and 1998. All patients received monotherapy treatment without additional adjuvant therapy. The distribution by treatment modality was as follows: RT for 340, RP for 746, and PPB for 733 cases. The median follow-up time was 58 months for all cases (51 months for PPB cases, 56 months for RT cases, and 64 months for RP cases). Biochemical relapse was defined as to be detectable PSA levels in RP cases, and the ASTRO consensus panel definition for the RT and PPB cases. RESULTS: The 7-year FBR rates for PPB vs EBRT vs RP were 74, 77, and 79%, respectively. Multivariate analysis identified iPSA (P < 0.001) and bGS (P < 0.001) as independent predictors of relapse. Treatment modality, age, clinical T-stage, and race were not independent predictors of failure. CONCLUSIONS: Pretreatment PSA levels, and biopsy Gleason score determined outcome in this study cohort. Biochemical failure rates in this study cohort are similar between PPB, RT, and RP as monotherapy for clinically localized prostate cancer.

Adenocarcinoma↗

PSA bounce predicts early success in patients with permanent iodine-125 prostate implant.

OBJECTIVES: To determine the clinical and dosimetric factors that predict prostate-specific antigen (PSA) bounce after iodine-125 prostate brachytherapy and to determine the predictive value of PSA bounce relative to biochemical relapse-free survival (bRFS). METHODS: A multivariate analysis of factors thought to predict for PSA bounce was performed in 295 consecutive patients with T1-T2 prostate cancer treated by prostate brachytherapy as the sole radiotherapeutic modality and a minimum follow-up of 2 years. The variables examined included age, initial PSA level, biopsy Gleason score, use of androgen deprivation, occurrence of PSA bounce, dose received by 90% of the prostate gland, and volume of gland receiving 100% of the prescribed dose. A PSA bounce was defined as a rise of at least 0.2 ng/mL greater than a previous PSA level with a subsequent decline equal to, or less than, the initial nadir. A second analysis investigating the same factors and adding PSA bounce as a predictor of bRFS was also performed. RESULTS: The median follow-up was 38 months. A PSA bounce was noted in 82 (28%) of 295 patients. On multivariate analysis, only younger age (younger than 65 years) significantly predicted for a PSA bounce. Patients who experienced a PSA bounce were less likely to have biochemical failure (P = 0.037). Overall, the bRFS rate at 5 years in those experiencing a PSA bounce was 100% versus 92% in those with no bounce. CONCLUSIONS: Immediate salvage therapy in patients with a rising PSA level after permanent prostate brachytherapy should not be initiated provided the PSA increase does not exceed the pretreatment PSA value. A PSA bounce may be associated with improved bRFS but was not associated with any of the pretreatment clinical and dosimetric factors examined.

Adenocarcinoma↗

Improvement in relapse-free survival throughout the PSA era in patients with localized prostate cancer treated with definitive radiotherapy: year of treatment an independent predictor of outcome.

PURPOSE: In patients treated with radical prostatectomy in the prostate-specific antigen (PSA) era, it has been demonstrated that the year of treatment in the PSA era is associated with better pathologic parameters and outcomes, independently of other well-recognized parameters such as clinical stage, pretreatment PSA level, or Gleason score. The purpose of the present study was to study a similar phenomenon with definitive radiotherapy (RT). METHODS AND MATERIALS: The inclusion criteria were as follows: clinical Stage T1-T2, available pretreatment PSA level and biopsy Gleason score, treatment delivered before January 2000 with standard fractionation external beam radiotherapy to at least 70 Gy, no adjuvant androgen deprivation (AD), all neoadjuvant AD limited to < or =6 months, and a minimum of 3 years of PSA follow-up. A total of 467 cases treated between January 1986 and December 1999 were included. Short-course AD in the adjuvant or neoadjuvant setting for < or =6 months was given in 124 cases (27%). The median radiation dose was 74 Gy (range 70.0-78.0). A conformal technique was used in 293 cases (63%). The median follow-up was 62 months (range 37-189). A total of 4931 follow-up PSA levels were available for analysis (average 11 per patient). A multivariate analysis for factors affecting biochemical relapse-free survival rates using the proportional hazards model was performed for all cases using the following variables: age (continuous variable), race (black vs. white), clinical T stage (T1-T2a vs. T2b-T2c), pretreatment PSA (continuous variable), biopsy Gleason score (continuous variable), use of AD (yes vs. no), radiation dose (continuous variable), and year of treatment (continuous variable: 1986-1999). RESULTS: The projected 8-year biochemical relapse-free survival rate was 74%. The projected 5-year biochemical relapse-free survival rate for the 143 patients treated in the 1986-1995 period was 58% vs. 82% for the 324 patients treated in the 1996-1999 period (p <0.001). The difference was attributable to a multitude of factors (earlier stage cancer, higher radiation doses, shorter follow-up). To study the confounding effects of these factors on the year of therapy, a multivariate analysis was performed. The multivariate analysis revealed the initial PSA level (p <0.001), Gleason score (p <0.001), RT dose (p = 0.045), and year of treatment (p <0.001) to be independent predictors of outcome. Age (p = 0.41), race (p = 0.14), T stage (p = 0.10), and use of AD (p = 0.58) were not. CONCLUSION: When controlling for tumor, treatment, and follow-up parameters, the year in which RT was performed was still an independent predictor of outcome, consistent with observations made for radical prostatectomy patients. This indicates a more favorable presentation of localized prostate in current years probably related to a combination of factors such as screening and increased patient awareness leading to earlier diagnosis. Outcome predictions should be based on contemporaneous series.

Adenocarcinoma↗

Effect of anatomic, procedural, and dosimetric variables on urinary retention after permanent iodine-125 prostate brachytherapy.

OBJECTIVES: To correlate anatomic, procedural, and dosimetric parameters with the rate of intermittent self-catheterization (ISC). METHODS: The records of 402 patients with a median age of 69 years treated with 125I prostate seed implantation from 1996 to 2001 were reviewed for the use of ISC. The records were examined for the preimplant factors: prostate volume, use of androgen deprivation, and prostate length. The intraprocedural factor reviewed was the number of needles used. The following postimplant information was also collected: preimplant transrectal ultrasound-generated prostate volume/postimplant computed tomography-generated prostate volume ratio, V100, V150, V200, V300, V400, D90, and D100. Correlation was assessed using logistic regression analysis. RESULTS: Forty-four patients had to use ISC (10.9%). The mean and median duration of ISC was 11.9 and 6 weeks, respectively. From univariate analysis, prostate length and prostate volume were found to be statistically significant predictors of ISC after 125I prostate seed implantation with a P value of 0.0002 and 0.0042, respectively. With multivariate analysis, only prostate length was a statistically significant predictor of ISC use after 125I prostate seed implantation (P = 0.0095). CONCLUSIONS: Prostate length is an important predictor of ISC after 125I prostate seed implantation.

Aged↗

Factors affecting recurrence rates after prostatectomy or radiotherapy in localized prostate carcinoma patients with biopsy Gleason score 8 or above.

BACKGROUND: To review the biochemical recurrence-free survival (bRFS) rates of treatment with either external beam radiotherapy or radical prostatectomy in patients with biopsy Gleason score 8 or above in the prostate specific antigen (PSA) era. METHODS: A total of 297 localized prostate carcinoma patients diagnosed with biopsy Gleason score 8 or above were treated between 1987 and 2000 at the Cleveland Clinic with either prostatectomy or radiotherapy (RT). All patients had pretreatment PSA (iPSA) levels. Androgen deprivation was given as part of the initial treatment in 154 patients (52%). Radical prostatectomy (RP) was the primary treatment in 115 patients (39%) and 182 patients (61%) received RT. The median radiation dose was 70.2 Gy (range, 60.0-78.0 Gy). The median follow-up time was 42 months (range, 1-153 months). RESULTS: For the 297 patients, the 5 and 8-year bRFS rates were 45% (95% confidence interval [CI] 38-52%) and 31% (95% CI 20-42%), respectively. The 5-year bRFS rates for iPSA 10 or less versus. iPSA above10 were 66% (95% CI 54-78%) versus 31% (95% CI 22-40%), respectively (P < 0.001). The 5-year bRFS rates for use of androgen deprivation versus no androgen deprivation were 62% (95% CI 52-72%) versus 35% (95% CI 27-42%), respectively (P < 0.001). The 5-year bRFS rates for RT patients versus RP patients were 47% (95% CI 38-57%) versus 42% (95% CI 31-53%), respectively (P = 0.051). For RT patients, the 5-year bRFS rates for use of androgen deprivation versus no androgen deprivation were 71% versus 29%, respectively (P < 0.001). For RP patients, the 5-year bRFS rates for use of androgen deprivation versus no androgen deprivation were 39% versus 43%, respectively (P = 0.90). Multivariate time-to-failure analysis using the proportional hazards model showed iPSA level (P < 0.001) and the use of androgen deprivation (P = 0.001) to be the only independent predictors of biochemical recurrence. Age (P = 0.44), race (P = 0.80), clinical T stage (P = 0.10), biopsy Gleason scores (P = 0.39), and treatment modality (P = 0.13) were not independent predictors of biochemical failure. A total of 104 patients had Stage T1 or T2 disease, low iPSA levels (</= 10 ng/mL), and a high Gleason score (>/= 8). For all 104 patients, the 5-year bRFS rate was 64%. For 52 of the 104 patients who received 6 months of androgen deprivation or less, the 5-year bRFS rate was 78%. CONCLUSION: Patients with localized prostate carcinoma with a biopsy Gleason score 8 or less have lower recurrence rates if iPSA levels are 10 or less. Biochemical control rates were encouraging for patients with biopsy Gleason score 8 or above, clinical Stage T1-T2, and iPSA levels less than or equal to 10 ng/mL treated with adjuvant androgen deprivation given only for 6 months or less. If longer follow-up confirms these findings, these patients might not need prolonged androgen deprivation for periods exceeding 6 months following local therapy.

Adult↗

Comparison of the efficacy of local therapies for localized prostate cancer in the prostate-specific antigen era: a large single-institution experience with radical prostatectomy and external-beam radiotherapy.

PURPOSE: To review biochemical relapse-free survival (bRFS) rates after either external-beam radiotherapy (RT) or radical prostatectomy (RP) for localized prostate cancer. PATIENTS AND METHODS: All 1,682 patients had pretreatment prostate-specific antigen (PSA) levels and biopsy Gleason scores (bGS) assigned. No adjuvant therapy was administered after local treatment. RP was the treatment in 1,054 patients (63%) and RT in 628 patients (37%). Median follow-up was 51 months (range, 1 to 134). The median follow-up for RP versus RT patients was 50.5 v 51.0 months. Biochemical relapse was considered detectable PSA levels (> 0.2 ng/mL) in RP patients and three consecutive rising PSA levels in RT patients. The analysis was repeated with a more stringent definition of biochemical control after either RP or RT-namely, reaching and maintaining a PSA level < or = 0.5 ng/mL-and excluding patients receiving any androgen deprivation (AD). RESULTS: Eight-year bRFS rates for RP versus RT were 72% and 70%, respectively (P =.010). Multivariate analysis indicated T stage (P <.001), pretreatment PSA (P <.001), bGS (P <.001), year of therapy (P <.001), and neoadjuvant AD (P =.019) to be the only independent predictors of relapse. Age (P =.78), race (P =.29), prior transurethral resection of prostate (P =.81), and treatment modality (P =.96) were not independent predictors of treatment failure. Fifty-one percent of RP patients had favorable tumors (T1 to T2A, pretreatment PSA < or = 10 ng/mL, bGS < or = 7), compared with only 34% of RT patients (P <.001). Repeat analysis with a stringent definition of biochemical failure and excluding patients receiving AD indicated no impact of treatment modality on outcome. CONCLUSION: Eight-year biochemical failure rates were identical between RT and RP in any subgroup. Outcome is determined mainly by pretreatment PSA levels, bGS, clinical T stage, and, for RT patients, radiation dose.

Adenocarcinoma↗

Preoperative combined nested reverse transcriptase polymerase chain reaction for prostate-specific antigen and prostate-specific membrane antigen does not correlate with pathologic stage or biochemical failure in patients with localized prostate cancer undergoing radical prostatectomy.

PURPOSE: We report a prospective study examining the ability of preoperative nested reverse transcriptase polymerase chain reaction (RT-PCR) for prostate-specific antigen (PSA) and prostate-specific membrane antigen (PSM) to predict pathologic stage and biochemical recurrence in patients with clinically localized prostate cancer treated with radical prostatectomy. PATIENTS AND METHODS: One hundred forty-one patients were entered onto the study. Preoperative evaluation included clinical T stage, serum PSA, biopsy Gleason score, and serum RT-PCR for PSA/PSM. Univariate and multivariate logistic regression models, Kaplan-Meier estimates, and Cox proportional hazards modeling were used to identify predictors of pathologic stage and biochemical failure. RESULTS: Seventy-three patients (51.8%) were RT-PCR positive for PSA, PSM, or both. In the multivariate logistic regression model, only initial PSA was an independent predictor of pathologic stage as defined by organ-confined disease (odds ratio [OR], 1.06; 95% confidence interval [CI], 1.00 to 1.13; P =.026) or organ-/specimen-confined disease (OR, 1.09; 95% CI, 1.02 to 1.16; P =.009). Overall Kaplan-Meier biochemical relapse-free survival (bRFS) was 85% at 59 months. Multivariate analysis of predictors for bRFS with the Cox proportional hazards model indicated that only initial PSA (OR, 1.05; 95% CI, 1.02 to 1.09; P =.004) and biopsy Gleason score (OR, 3.57; 95% CI, 1.37 to 9.58; P =.009) were independent predictors of biochemical failure. RT-PCR status did not predict pathologic stage or biochemical failure. Repeat analysis excluding 27 patients who received preoperative androgen-deprivation therapy did not change the results. CONCLUSION: Combined nested RT-PCR for PSA and PSM is not an independent predictor of pathologic stage or biochemical failure in patients with localized prostate cancer undergoing radical prostatectomy. This assay has no clinical utility in this patient population.

Antigens, Surface↗