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Breast Milk Enhances Growth of Enteroids: An Ex Vivo Model of Cell Proliferation
Published on: February 15, 2018
Microlipid-induced oxidative stress in human breastmilk: in vitro effects on intestinal epithelial cells
William L Diehl-Jones1, Debra Fraser Askin, James K Friel
1Faculty of Nursing, University of Manitoba, Winnipeg, Manitoba, Canada. Bill_Diehl-Jones@umanitoba.ca
Objectives:
To (1) determine whether medium chain fatty acids (Microlipid) added to human breastmilk generates reactive oxygen species (ROS), and (2) measure the physiological effect(s) of Microlipid) (ML)-supplemented human breastmilk in an enterocyte cell culture bioassay.
Methods:
ML was added to milk according to manufacturer's recommendations and total hydroperoxides measured at intervals with the FOX 2 and TBARS assays. Physiological effects of supplementation were measured using a human enterocyte cell line (Caco-2BBE) and/or a primary human fetal intestinal cell culture (FHS-74 Int). Endpoints included: intracellular oxidative stress, transepithelial electrical resistance (TEER), apoptosis, and interleukin (IL)-6 production.
Results:
Immediately postsupplementation, ML did not significantly increase ROS, as determined by both the FOX 2 and TBARS assays. Further, storage of milk + ML at 4 degrees C prevented significant increases in total hydroperoxides. However, by 4 hours postsupplementation at room temperature, both assays revealed significantly higher hydroperoxide and lipid peroxide levels. ML-supplemented milk stored at room temperature for 4 hours had the following effects in cell culture bioassays: elevated oxidative stress, increased rates of apoptosis, decreased transmembrane electrical resistance (TEER) values and, in both cell culture assays, significantly increased secretion of IL-6.
Conclusions:
Based on our measurements of extracellular and intracellular ROS, milk supplemented with fresh ML does not induce significant oxidative stress. However, when stored for 4 hours at room temperature, ML induces significant levels of oxidative stress. Decreases in TEER and increases in apoptosis and IL-6 secretion are consistent with ML-induced oxidative stress. It therefore is likely that in clinical situations, if ML-supplemented milk is not administered quickly, the newborn may be placed at greater risk of oxidative stress.
Insights
Medium chain fatty acids (Microlipid) in human breastmilk do not immediately generate reactive oxygen species (ROS). However, storage at room temperature for 4 hours significantly increases ROS, potentially harming newborns.
Area of Science:
- Biochemistry
- Cell Biology
- Neonatal Nutrition
Background:
- Human breastmilk is the optimal nutrition for newborns.
- Medium chain fatty acids (MCFAs) are often supplemented to human breastmilk.
- Potential oxidative stress from supplemented breastmilk requires investigation.
Purpose of the Study:
- To determine if Microlipid (ML) in human breastmilk generates reactive oxygen species (ROS).
- To assess the physiological impact of ML-supplemented breastmilk on enterocyte cell cultures.
Main Methods:
- Microlipid (ML) was added to human breastmilk.
- Reactive oxygen species (ROS) were measured using FOX 2 and TBARS assays.
- Effects on Caco-2BBE and FHS-74 Int cells included oxidative stress, TEER, apoptosis, and IL-6 production.
Main Results:
- Freshly supplemented milk showed no significant increase in ROS.
- Storage of ML-supplemented milk at room temperature for 4 hours significantly increased hydroperoxides and lipid peroxides.
- Cell culture assays revealed elevated oxidative stress, increased apoptosis, decreased TEER, and higher IL-6 secretion.
Conclusions:
- Fresh Microlipid (ML) supplementation does not induce significant oxidative stress in human breastmilk.
- Storage of ML-supplemented milk at room temperature for 4 hours leads to significant oxidative stress.
- Clinical administration of ML-supplemented milk should be prompt to mitigate risks to newborns.
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