Predicting iron absorption from an effervescent iron supplement in obese patients before and after Roux-en-Y gastric bypass: a preliminary study.

Ina Gesquiere, Nele Steenackers, Matthias Lannoo, Veerle Foulon, Ann Mertens, Ann Gils, Jan de Hoon, Patrick Augustijns, Christophe Matthys, Bart Van der Schueren

Journal: Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements (GMS) 2019;52():68-73

PMID: 30732902

Abstract

BACKGROUND & AIMS

Oral iron absorption is hampered in obese and bariatric patients, especially after Roux-en-Y gastric bypass (RYGB). As a result, iron deficiency, which is common in both patient groups, can be difficult to treat by oral supplements, often necessitating a switch to parenteral administration. The aim of this study was to find possible predictors of the extent of absorption of an effervescent iron gluconate oral supplement, which enables to pre-emptively identify those patients in which oral supplementation is likely to fail.

METHODS

The pharmacokinetic properties of 695 mg effervescent iron gluconate (80 mg Fe) were assessed in 13 obese patients (female = 10; mean age ± SD: 45.2 ± 12.5years) pre- and six months post-RYGB by measuring serum iron concentrations during 24 hours and by calculating the adjusted for baseline AUC, C and T. A multivariate regression analysis was performed to investigate the effect of hepcidin concentration, iron and hematologic indices, personal and anthropometric characteristics on iron absorption. Subsequently, Receiver Operating Characteristic (ROC) curves were used to propose the cut-off value for hepcidin concentrations above which obese patients are unlikely to benefit from oral iron supplementation. Data are expressed as mean ± SD.

RESULTS

Low iron status persisted after surgery as there was no significant difference observed in TSAT (17.3 ± 5.2 vs. 20.2 ± 6.6%), ferritin (91.8 ± 68.6 vs. 136.2 ± 176.9 μg/L) and hepcidin concentration (32.0 ± 30.1 vs. 28.3 ± 21.3 ng/mL) after RYGB. The absorption of effervescent iron gluconate was similar pre- and post-RYGB [AUC: 28.6 ± 10.8 μg/dL*h; AUC: 27.5 ± 9.11 μg/dL*h (P = 0.84)]. Post-RYGB, iron AUC showed a strong negative correlation with both hepcidin concentrations and TSAT (R=-0.51; P = 0.08 and R=-0.81; P = 0.001), respectively. Pre-RYGB, there was a clear trend for the same negative correlations for hepcidin concentrations and TSAT (R=-0.47; P = 0.11 ;R=-0.41; P = 0.16), respectively. Taking pre-and post-RYGB data together, the negative correlations were confirmed for hepcidin concentrations and TSAT (R=-0.54; P = 0.004; R=-0.60; P = 0.001), respectively. The AUC = 0.87 (95%CI 0.71; 1.00) showed an optimal sensitivity/specificity cut-off at hepcidin concentrations of 26.8 ng/mL.

CONCLUSIONS

The iron AUC showed a negative correlation with the hepcidin concentration and TSAT of obese patients, in particular post-RYGB. Therefore, our data support the use of hepcidin concentration and TSAT to distinguish potential responders from non-responders for iron supplementation particularly post-RYGB. Additionally, this study showed that the pharmacokinetic properties of iron gluconate from an effervescent tablet were unaffected by RYGB-surgery.

Copyright © 2018 Elsevier GmbH. All rights reserved.

Address: KU Leuven, Department Pharmaceutical and Pharmacological Sciences, Leuven, Belgium; KU Leuven, Clinical and Experimental Endocrinology, and University Hospitals Leuven/KU Leuven, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Clinical and Experimental Endocrinology, and University Hospitals Leuven/KU Leuven, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Clinical and Experimental Endocrinology, and University Hospitals Leuven/KU Leuven, Campus Gasthuisberg, Leuven, Belgium; University Hospitals Leuven/KU Leuven, Department of Abdominal Surgery, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Department Pharmaceutical and Pharmacological Sciences, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Clinical and Experimental Endocrinology, and University Hospitals Leuven/KU Leuven, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Department Pharmaceutical and Pharmacological Sciences, Leuven, Belgium. Electronic address: [email protected].; University Hospitals Leuven/KU Leuven, Center for Clinical Pharmacology, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Department Pharmaceutical and Pharmacological Sciences, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Clinical and Experimental Endocrinology, and University Hospitals Leuven/KU Leuven, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].; KU Leuven, Clinical and Experimental Endocrinology, and University Hospitals Leuven/KU Leuven, Campus Gasthuisberg, Leuven, Belgium. Electronic address: [email protected].

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