Mass Spectrometry-Based Evaluation of the Bland-Altman Approach: Review, Discussion, and Proposal

被引:6
|
作者
Tsikas, Dimitrios [1 ]
机构
[1] Hannover Med Sch, Inst Toxicol, Core Unit Prote, D-30623 Hannover, Germany
来源
MOLECULES | 2023年 / 28卷 / 13期
关键词
agreement; biomarkers; Bland and Altman approach; comparison; linear regression analysis; mass spectrometry; Oldham; Eksborg; tandem mass spectrometry; validation; ASYMMETRIC DIMETHYLARGININE ADMA; BIOANALYTICAL METHOD VALIDATION; ARGININE/NITRIC OXIDE AREA; GC-MS/MS; BIOLOGICAL-FLUIDS; COMPARING METHODS; HUMAN PLASMA; HPLC METHOD; LC-MS/MS; 8-ISO-PROSTAGLANDIN F2-ALPHA;
D O I
10.3390/molecules28134905
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Reliable quantification in biological systems of endogenous low- and high-molecular substances, drugs and their metabolites, is of particular importance in diagnosis and therapy, and in basic and clinical research. The analytical characteristics of analytical approaches have many differences, including in core features such as accuracy, precision, specificity, and limits of detection (LOD) and quantitation (LOQ). Several different mathematic approaches were developed and used for the comparison of two analytical methods applied to the same chemical compound in the same biological sample. Generally, comparisons of results obtained by two analytical methods yields different quantitative results. Yet, which mathematical approach gives the most reliable results? Which mathematical approach is best suited to demonstrate agreement between the methods, or the superiority of an analytical method A over analytical method B? The simplest and most frequently used method of comparison is the linear regression analysis of data observed by method A (y) and the data observed by method B (x): y = & alpha; + & beta;x. In 1986, Bland and Altman indicated that linear regression analysis, notably the use of the correlation coefficient, is inappropriate for method-comparison. Instead, Bland and Altman have suggested an alternative approach, which is generally known as the Bland-Altman approach. Originally, this method of comparison was applied in medicine, for instance, to measure blood pressure by two devices. The Bland-Altman approach was rapidly adapted in analytical chemistry and in clinical chemistry. To date, the approach suggested by Bland-Altman approach is one of the most widely used mathematical approaches for method-comparison. With about 37,000 citations, the original paper published in the journal The Lancet in 1986 is among the most frequently cited scientific papers in this area to date. Nevertheless, the Bland-Altman approach has not been really set on a quantitative basis. No criteria have been proposed thus far, in which the Bland-Altman approach can form the basis on which analytical agreement or the better analytical method can be demonstrated. In this article, the Bland-Altman approach is re-valuated from a quantitative bioanalytical perspective, and an attempt is made to propose acceptance criteria. For this purpose, different analytical methods were compared with Gold Standard analytical methods based on mass spectrometry (MS) and tandem mass spectrometry (MS/MS), i.e., GC-MS, GC-MS/MS, LC-MS and LC-MS/MS. Other chromatographic and non-chromatographic methods were also considered. The results for several different endogenous substances, including nitrate, anandamide, homoarginine, creatinine and malondialdehyde in human plasma, serum and urine are discussed. In addition to the Bland-Altman approach, linear regression analysis and the Oldham-Eksborg method-comparison approaches were used and compared. Special emphasis was given to the relation of difference and mean in the Bland-Altman approach. Currently available guidelines for method validation were also considered. Acceptance criteria for method agreement were proposed, including the slope and correlation coefficient in linear regression, and the coefficient of variation for the percentage difference in the Bland-Altman and Oldham-Eksborg approaches.
引用
收藏
页数:30
相关论文
共 50 条
  • [1] A framework for the meta-analysis of Bland-Altman studies based on a limits of agreement approach
    Tipton, Elizabeth
    Shuster, Jonathan
    STATISTICS IN MEDICINE, 2017, 36 (23) : 3621 - 3635
  • [2] Reporting Standards for a Bland-Altman Agreement Analysis: A Review of Methodological Reviews
    Gerke, Oke
    DIAGNOSTICS, 2020, 10 (05)
  • [3] Incurred sample reanalysis: enhancing the Bland-Altman approach with tolerance intervals
    Lytle, Fred E.
    Julian, Randall K.
    Tabert, Amy M.
    BIOANALYSIS, 2009, 1 (04) : 705 - 714
  • [4] A review of Bland-Altman difference plot analysis in the veterinary clinical pathology laboratory
    Moore, A. Russell
    VETERINARY CLINICAL PATHOLOGY, 2023, : 75 - 85
  • [5] Challenges in harmonizing immunoassays: The use of the Bland-Altman based harmonization algorithm
    Liu, Wenqing
    Qi, Xing
    Wang, Huaguo
    Lin, Sheng
    Zhang, Yan
    Zhu, Ping
    Gou, Xiaoqin
    Chang, Xin
    Chu, Wenqing
    Liu, Jinbo
    Guo, Yuanbiao
    CLINICA CHIMICA ACTA, 2025, 572
  • [6] A practical approach to Bland-Altman plots and variation coefficients for log transformed variables
    Euser, Anne M.
    Dekker, Friedo W.
    le Cessie, Saskia
    JOURNAL OF CLINICAL EPIDEMIOLOGY, 2008, 61 (10) : 978 - 982
  • [7] Reporting Standards for Bland-Altman Agreement Analysis: a Systematic Review of Methodological Reviews
    Gerke, O.
    EUROPEAN JOURNAL OF NUCLEAR MEDICINE AND MOLECULAR IMAGING, 2020, 47 (SUPPL 1) : S406 - S406
  • [8] Evaluating influencing factors in estimation of renal function by extending the Bland-Altman approach
    Burkhardt, Heinrich
    Weiss, Christel
    SCANDINAVIAN JOURNAL OF CLINICAL & LABORATORY INVESTIGATION, 2008, 68 (02): : 171 - 176
  • [9] Correlation or Limits of Agreement? Applying the Bland-Altman Approach to the Comparison of Cognitive Screening Instruments
    Larner, A. J.
    DEMENTIA AND GERIATRIC COGNITIVE DISORDERS, 2016, 42 (5-6) : 247 - 254