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Bioelectrical Impedance Vector Analysis in Extremely Low-Birth-Weight Infants to Assess Nutritional Status:
Raquel Núñez-Ramos1, Diana Escuder-Vieco2,3, Carolina Rico Cruz2,4
1Department of Pediatrics, 12 de Octubre University Hospital, 28041 Madrid, Spain.
Insights
Bioelectrical impedance vector analysis provides reference data for assessing nutritional status in extremely low-birth-weight infants at term-corrected age. This study establishes new reference ellipses for nutritional assessment in ELBW infants.
Area of Science:
- Neonatal nutrition
- Bioelectrical impedance analysis
- Infant body composition
Background:
- Nutritional assessment is crucial for extremely low-birth-weight (ELBW) infants.
- Bioelectrical impedance vector analysis (BIVA) offers a non-invasive method for body composition assessment.
- Establishing reference data for ELBW infants is essential for accurate nutritional evaluation.
Purpose of the Study:
- To collect bioelectrical impedance data in ELBW infants.
- To establish reference BIVA data for nutritional status assessment at term-corrected age.
- To compare ELBW infant BIVA data with existing population data.
Main Methods:
- A prospective, observational study included 85 ELBW preterm infants.
- Bioelectrical impedance vector analysis (BIVA) was performed using a phase-sensitive device.
- Resistance (R) and reactance (Xc) were normalized to height (H) and analyzed using RXc graph methods.
Main Results:
- Mean gestational age at birth was 26 weeks.
- Mean R/H was 870.33 Ohm/m and Xc/H was 86.84 Ohm/m.
- Significant gender differences were observed, with higher resistance in females; ellipses aligned with other neonatal cohorts.
Conclusions:
- Bioelectrical data and reference ellipses for ELBW infants were established.
- These data serve as a valuable reference standard for nutritional assessment.
- The findings support the use of BIVA for monitoring ELBW infant nutritional status.
Abstract:
Background/Objectives: To obtain bioelectrical data to assess nutritional status for extremely low-birth-weight (ELBW) infants upon reaching term-corrected age. Methods: A descriptive, observational, prospective, and single-center study, which included ELBW preterm infants was performed. The study variables collected were gestational age, sex, and anthropometry at birth and at term-corrected age. Bioelectrical impedance vector analysis (BIVA) was performed by a phase-sensitive device (BIA 101 BIVA PRO AKERN srl, Pisa, Italy). The components of the impedance vector-resistance (R) and reactance (Xc)-were normalized for body height (H). For each subject, the measurement was taken between the 36th and 44th weeks of postmenstrual age (PMA). A semi-quantitative analysis of body composition was performed using the vector modality of the BIA. Using the RXc graph method, the bivariate 95% confidence intervals of the mean vectors were constructed. From the bivariate normal distribution of R/H and Xc/H, the bivariate 95%, 75%, and 50% tolerance intervals for this cohort were drawn. The individual impedance vectors were compared with the distribution of the vectors from other populations. Results: 85 ELBW infants (40 male, 45 female) were included, with a mean gestational age at birth of 26 + 6 weeks (±1.76). Mean R/H was 870.33 (±143.21) Ohm/m and Xc/H was 86.84 (±19.05) Ohm/m. We found differences in the bioelectrical data with regard to gender, with resistance values being significantly higher in females. Our ellipses align closely with those from other term neonatal cohorts. Conclusions: Bioelectrical data and the confidence and tolerance ellipses of an ELBW infant cohort are presented and can be used as a reference standard for nutritional assessment at discharge.
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