Prognostic significance of clinicopathologic and deoxyribonucleic acid flow cytometric variables in non-metastatic renal cell carcinoma in the modern era. 2005

Peter E Clark, and Joseph A Veys, and Matthew R Eskridge, and Ralph D Woodruff, and M Craig Hall
Department of Urology, Wake Forest University Health Sciences, Winston-Salem, NC 27157, USA. peclark@wfubmc.edu

OBJECTIVE The prognostic value of deoxyribonucleic acid (DNA) ploidy in renal cell carcinoma (RCC) is not well-defined among modern surgical nephrectomy series. We sought to determine which variables correlated with overall survival and recurrence-free survival in the modern era. METHODS We reviewed all patients from 1992 to 2000, who prospectively had DNA ploidy analysis of their primary tumor determined at the time of nephrectomy for nonmetastatic RCC. Variables examined included age, gender, ethnicity, presentation (incidental vs. symptomatic), preoperative laboratory studies, American Society for Anesthesiology class, tumor size, tumor-nodes-metastasis stage, histology, Fuhrman grade, and diploid versus nondiploid tumor. Statistical analyses of overall survival and recurrence-free survival were performed using the Kaplan-Meier method, log-rank test, and Cox regression model using commercially available software. RESULTS Sixty men and 41 women, median age 61 years (range, 23-85), were included. Pathologic stage included T1 (54 patients), T2 (14), and T3 (33). Eighty-four patients had conventional RCC. A total of 58 patients had well-differentiated (Fuhrman Grade 1 [12] or Grade 2 [46]), 28 had moderately differentiated (Grade 3), 12 had poorly differentiated tumors (Grade 4), and 3 were not specified. There were 52 patients who had diploid tumors, and 49 had aneuploid tumors. Median follow-up was 39 months (range, 0-109). Actuarial 5-year overall survival was 70%, and 5-year recurrence-free survival was 76%. Diploid tumors were significantly associated with better recurrence-free survival (P = 0.02) but not overall survival (P = 0.17). On multivariate analysis, the American Society for Anesthesiology class (P = 0.01), abnormal preoperative platelet count (P = 0.03), and tumor differentiation (P = 0.01) were independent predictors of overall survival, whereas only tumor differentiation (P = 0.05) was an independent predictor of recurrence-free survival. CONCLUSIONS In the modern era, DNA ploidy is not an independent predictor of either overall survival or recurrence-free survival in patients with nonmetastatic RCC. The most important predictor of recurrence-free survival is tumor differentiation.

UI MeSH Term Description Entries
D007680 Kidney Neoplasms Tumors or cancers of the KIDNEY. Cancer of Kidney,Kidney Cancer,Renal Cancer,Cancer of the Kidney,Neoplasms, Kidney,Renal Neoplasms,Cancer, Kidney,Cancer, Renal,Cancers, Kidney,Cancers, Renal,Kidney Cancers,Kidney Neoplasm,Neoplasm, Kidney,Neoplasm, Renal,Neoplasms, Renal,Renal Cancers,Renal Neoplasm
D008297 Male Males
D008875 Middle Aged An adult aged 45 - 64 years. Middle Age
D011003 Ploidies The degree of replication of the chromosome set in the karyotype. Ploidy
D011379 Prognosis A prediction of the probable outcome of a disease based on a individual's condition and the usual course of the disease as seen in similar situations. Prognostic Factor,Prognostic Factors,Factor, Prognostic,Factors, Prognostic,Prognoses
D012008 Recurrence The return of a sign, symptom, or disease after a remission. Recrudescence,Relapse,Recrudescences,Recurrences,Relapses
D002292 Carcinoma, Renal Cell A heterogeneous group of sporadic or hereditary carcinoma derived from cells of the KIDNEYS. There are several subtypes including the clear cells, the papillary, the chromophobe, the collecting duct, the spindle cells (sarcomatoid), or mixed cell-type carcinoma. Adenocarcinoma, Renal Cell,Carcinoma, Hypernephroid,Grawitz Tumor,Hypernephroma,Renal Carcinoma,Adenocarcinoma Of Kidney,Adenocarcinoma, Renal,Chromophil Renal Cell Carcinoma,Chromophobe Renal Cell Carcinoma,Clear Cell Renal Carcinoma,Clear Cell Renal Cell Carcinoma,Collecting Duct Carcinoma,Collecting Duct Carcinoma (Kidney),Collecting Duct Carcinoma of the Kidney,Nephroid Carcinoma,Papillary Renal Cell Carcinoma,Renal Cell Cancer,Renal Cell Carcinoma,Renal Cell Carcinoma, Papillary,Renal Collecting Duct Carcinoma,Sarcomatoid Renal Cell Carcinoma,Adenocarcinoma Of Kidneys,Adenocarcinomas, Renal Cell,Cancer, Renal Cell,Carcinoma, Collecting Duct,Carcinoma, Collecting Duct (Kidney),Carcinoma, Nephroid,Carcinoma, Renal,Carcinomas, Collecting Duct,Carcinomas, Collecting Duct (Kidney),Carcinomas, Renal Cell,Collecting Duct Carcinomas,Collecting Duct Carcinomas (Kidney),Hypernephroid Carcinoma,Hypernephroid Carcinomas,Hypernephromas,Kidney, Adenocarcinoma Of,Nephroid Carcinomas,Renal Adenocarcinoma,Renal Adenocarcinomas,Renal Carcinomas,Renal Cell Adenocarcinoma,Renal Cell Adenocarcinomas,Renal Cell Cancers,Renal Cell Carcinomas,Tumor, Grawitz
D004273 DNA, Neoplasm DNA present in neoplastic tissue. Neoplasm DNA
D005260 Female Females
D005434 Flow Cytometry Technique using an instrument system for making, processing, and displaying one or more measurements on individual cells obtained from a cell suspension. Cells are usually stained with one or more fluorescent dyes specific to cell components of interest, e.g., DNA, and fluorescence of each cell is measured as it rapidly transverses the excitation beam (laser or mercury arc lamp). Fluorescence provides a quantitative measure of various biochemical and biophysical properties of the cell, as well as a basis for cell sorting. Other measurable optical parameters include light absorption and light scattering, the latter being applicable to the measurement of cell size, shape, density, granularity, and stain uptake. Cytofluorometry, Flow,Cytometry, Flow,Flow Microfluorimetry,Fluorescence-Activated Cell Sorting,Microfluorometry, Flow,Cell Sorting, Fluorescence-Activated,Cell Sortings, Fluorescence-Activated,Cytofluorometries, Flow,Cytometries, Flow,Flow Cytofluorometries,Flow Cytofluorometry,Flow Cytometries,Flow Microfluorometries,Flow Microfluorometry,Fluorescence Activated Cell Sorting,Fluorescence-Activated Cell Sortings,Microfluorimetry, Flow,Microfluorometries, Flow,Sorting, Fluorescence-Activated Cell,Sortings, Fluorescence-Activated Cell

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