Analysis of concordance between the bioelectrical impedance vector analysis and the bioelectrical impedance spectroscopy in haemodialysis patients

被引:6
|
作者
Teruel-Briones, Jose L. [1 ]
Fernandez-Lucas, Milagros [1 ]
Ruiz-Roso, Gloria [1 ]
Sanchez-Ramirez, Humberto [2 ]
Rivera-Gorrin, Maite [1 ]
Gomis-Couto, Antonio [1 ]
Rodriguez-Mendiola, Nuria [1 ]
Quereda, Carlos [1 ]
机构
[1] Hosp Univ Ramon y Cajal, Serv Nefrol, Madrid 28034, Spain
[2] Hosp Univ UANL Jose Eleuterio Gonzalez, Serv Nefrol, Monterrey, Mexico
来源
NEFROLOGIA | 2012年 / 32卷 / 03期
关键词
Bioimpedance vector analysis; Multifrequency bioimpedance spectroscopy; Haemodialysis; DRY-WEIGHT PRESCRIPTION; CHRONIC KIDNEY-DISEASE; BIOIMPEDANCE SPECTROSCOPY; MULTIFREQUENCY BIOIMPEDANCE; BODY-COMPOSITION; CLINICAL-OBSERVATIONS; DIALYSIS PATIENTS; HYDRATION STATUS; SURVIVAL; WATER;
D O I
10.3265/Nefrologia.pre2012.Feb.11309
中图分类号
R5 [内科学]; R69 [泌尿科学(泌尿生殖系疾病)];
学科分类号
1002 ; 100201 ;
摘要
Analysis of concordance between the bioelectrical impedance vector analysis and the bioelectrical impedance spectroscopy in haemodialysis patients impedance spectroscopy (MF-BIS) are different and not comparable. Objective: Analyse whether the inter-method variability is due to bioelectrical variables measured by the different monitors, or rather due to the equations used to calculate body volume and mass. Another objective was to determine whether, despite the inter-method variability, the classification of hydration status by the two methods is consistent. Material and Methods: Bioelectrical impedance was measured by SF-BIVA and MF-BIS immediately before a dialysis session in 54 patients on haemodialysis. In 38 patients, the study was repeated by SF-BIVA at the end of the same dialysis session. Results: Resistance and phase angle values provided by the two monitors at a frequency of 50kHz were consistent. For resistance, variability was 1.3% and the intra-class correlation coefficient was 0.99. For phase angle, variability and the intra-class correlation coefficient were 11.5% and 0.92, respectively. The volume values for total body water, extracellular water, fat mass and body cell mass were biased, with a level of variability that would not be acceptable in clinical practice. The intra-class correlation coefficient also suggested a poor level of agreement. SF-BIVA systems define overhydration or dehydration as a vector below or above the tolerance ellipse of 75% on the longitudinal axis. MF-BIS uses two criteria for pre-dialysis hyper-hydration: overhydration (OH) greater than 2.5 litres, or greater than 15% of extracellular water. The degree of equivalence with the results of the SF-BIVA monitor was better with the second criterion (kappa: 0.81, excellent agreement) than with the first one (kappa: 0.71, acceptable agreement). The MF-BIS system defines post-dialysis normal hydration as a difference between OH and ultrafiltratation volume between -1.1 and 1.1 litres and agreement with the SF-BIVA system for this parameter was acceptable (weighted kappa index: 0.64). Conclusions: The MF-BIS and SF-BIVA systems provide similar readings for bioelectrical parameters, and the wide variation in the quantification of volume and body mass must be attributed to the different equations used for calculation. Furthermore, the criteria used by both systems to define both pre- and post-dialysis hydration have an acceptable level of equivalence.
引用
收藏
页码:389 / 395
页数:7
相关论文
共 50 条
  • [11] Fuzzy linguistic model for bioelectrical impedance vector analysis
    Bronhara, Bruna
    Piccoli, Antonio
    Pereira, Julio Cesar R.
    [J]. CLINICAL NUTRITION, 2012, 31 (05) : 710 - 716
  • [12] Segmental bioelectrical impedance analysis
    De Lorenzo, A
    Andreoli, A
    [J]. CURRENT OPINION IN CLINICAL NUTRITION AND METABOLIC CARE, 2003, 6 (05): : 551 - 555
  • [13] Bioelectrical impedance analysis revisited
    Cornish, BH
    [J]. LYMPHOLOGY, 2000, 33 (03) : 136 - 137
  • [14] Bioelectrical impedance vector analysis evaluates cellularity and hydration in cirrhotic patients
    Fernandes, Sabrina Alves
    Leonhardt, Lara Rigon
    da Silva, Daniella Miranda
    Alves, Fernanda Donner
    Marroni, Claudio Augusto
    [J]. WORLD JOURNAL OF HEPATOLOGY, 2020, 12 (12) : 1276 - 1288
  • [15] Bioelectrical impedance analysis revisited
    Mikes, DM
    Cha, BA
    Dym, CL
    Baumgaertner, J
    Hartzog, AG
    Tacey, AD
    Calabria, MR
    [J]. LYMPHOLOGY, 1999, 32 (04) : 157 - 165
  • [16] Bioelectrical impedance vector analysis in COPD patients with right heart failure
    Perez Garcia, Ilse
    Gonzalez Islas, Dulce
    Orea Tejeda, Arturo
    Sanchez Santillan, Rocio
    Verdeja Vendrell, Leslie
    Hernandez Centeno, Raul
    Quintero Martinez, Martha Elena
    Gastelum Ayala, Yael Ramiro
    Martinez Luna, Nathalie
    Martinez Reyna, Oscar Ubaldo
    Martinez Vazquez, Valeria
    Sandoval Sanchez, Ameyalli
    Flores Trujillo, Fernando
    Juarez, Silvia Sid
    Gomez Martinez, Manuel
    [J]. EUROPEAN RESPIRATORY JOURNAL, 2020, 56
  • [17] Bioelectrical impedance vector analysis evaluates cellularity and hydration in cirrhotic patients
    Sabrina Alves Fernandes
    Lara Rigon Leonhardt
    Daniella Miranda da Silva
    Fernanda Donner Alves
    Cláudio Augusto Marroni
    [J]. World Journal of Hepatology, 2020, 12 (12) : 1276 - 1288
  • [18] Significance of the Bioelectrical impedance analysis on hypertensive patients
    Narziev, B. I.
    Gadaev, A. G.
    [J]. EUROPEAN JOURNAL OF CARDIOVASCULAR NURSING, 2017, 16 : S89 - S89
  • [19] A Current Review of the Uses of Bioelectrical Impedance Analysis and Bioelectrical Impedance Vector Analysis in Acute and Chronic Heart Failure Patients: An Under-valued Resource?
    Thanapholsart, Jenjiratchaya
    Khan, Ehsan
    Lee, Geraldine A. A.
    [J]. BIOLOGICAL RESEARCH FOR NURSING, 2023, 25 (02) : 240 - 249
  • [20] Phase Angle and Bioelectrical Impedance Vector Analysis - Clinical Practicability of Impedance Parameters
    Stobaeus, N.
    Norman, K.
    Pirlich, M.
    [J]. AKTUELLE ERNAHRUNGSMEDIZIN, 2010, 35 (03): : 124 - 130