Urine Steroid Metabolomics as a Biomarker Tool for Detecting Malignancy in Adrenal Tumors

被引:337
作者
Arlt, Wiebke [1 ]
Biehl, Michael [4 ]
Taylor, Angela E. [1 ]
Hahner, Stefanie [5 ]
Libe, Rossella [6 ]
Hughes, Beverly A. [1 ]
Schneider, Petra [1 ]
Smith, David J. [2 ]
Stiekema, Han [4 ]
Krone, Nils [1 ]
Porfiri, Emilio [3 ]
Opocher, Giuseppe [7 ]
Bertherat, Jerome [6 ]
Mantero, Franco [8 ]
Allolio, Bruno [5 ]
Terzolo, Massimo [9 ]
Nightingale, Peter [10 ]
Shackleton, Cedric H. L. [1 ]
Bertagna, Xavier [6 ]
Fassnacht, Martin [5 ]
Stewart, Paul M. [1 ]
机构
[1] Univ Birmingham, CEDAM, Sch Clin & Expt Med, Birmingham B15 2TT, W Midlands, England
[2] Univ Birmingham, Sch Math, Birmingham B15 2TT, W Midlands, England
[3] Univ Birmingham, Sch Canc Sci, Birmingham B15 2TT, W Midlands, England
[4] Univ Groningen, Johann Bernoulli Inst Math & Comp Sci, NL-9700 AK Groningen, Netherlands
[5] Univ Wurzburg, Univ Hosp, Dept Med 1, Endocrine & Diabet Unit, D-97080 Wurzburg, Germany
[6] Univ Paris 05, Cochin Hosp, Inst Cochin, Dept Endocrinol,INCa COMETE,INSERM,U1016, F-75006 Paris, France
[7] Univ Padua, Familial Canc Clin, Veneto Inst Oncol, Inst Ricovero & Cura Carattere Sci, I-35100 Padua, Italy
[8] Univ Padua, Div Endocrinol, Veneto Inst Oncol, Inst Ricovero & Cura Carattere Sci, I-35100 Padua, Italy
[9] Univ Turin, Dept Clin & Biol Sci, I-10124 Turin, Italy
[10] Univ Hosp Birmingham Natl Hlth Serv Fdn Trust, Wellcome Trust Clin Res Facil, Birmingham B15 2TH, W Midlands, England
基金
英国医学研究理事会;
关键词
SUBCLINICAL CUSHINGS-SYNDROME; TANDEM MASS-SPECTROMETRY; ADRENOCORTICAL TUMORS; COMPUTED-TOMOGRAPHY; FOLLOW-UP; DIAGNOSIS; CLASSIFICATION; INCIDENTALOMAS; CANCER; TIME;
D O I
10.1210/jc.2011-1565
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Context: Adrenal tumors have a prevalence of around 2% in the general population. Adrenocortical carcinoma (ACC) is rare but accounts for 2-11% of incidentally discovered adrenal masses. Differentiating ACC from adrenocortical adenoma (ACA) represents a diagnostic challenge in patients with adrenal incidentalomas, with tumor size, imaging, and even histology all providing unsatisfactory predictive values. Objective: Here we developed a novel steroid metabolomic approach, mass spectrometry-based steroid profiling followed by machine learning analysis, and examined its diagnostic value for the detection of adrenal malignancy. Design: Quantification of 32 distinct adrenal derived steroids was carried out by gas chromatography/mass spectrometry in 24-h urine samples from 102 ACA patients (age range 19-84 yr) and 45 ACC patients (20-80 yr). Underlying diagnosis was ascertained by histology and metastasis in ACC and by clinical follow-up [median duration 52 (range 26-201) months] without evidence of metastasis in ACA. Steroid excretion data were subjected to generalized matrix learning vector quantization (GMLVQ) to identify the most discriminative steroids. Results: Steroid profiling revealed a pattern of predominantly immature, early-stage steroidogenesis in ACC. GMLVQ analysis identified a subset of nine steroids that performed best in differentiating ACA from ACC. Receiver-operating characteristics analysis of GMLVQ results demonstrated sensitivity = specificity = 90%(area under the curve = 0.97) employing all 32 steroids and sensitivity = specificity = 88% (area under the curve = 0.96) when using only the nine most differentiating markers. Conclusions: Urine steroid metabolomics is a novel, highly sensitive, and specific biomarker tool for discriminating benign from malignant adrenal tumors, with obvious promise for the diagnostic work-up of patients with adrenal incidentalomas. (J Clin Endocrinol Metab 96: 3775-3784, 2011)
引用
收藏
页码:3775 / 3784
页数:10
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