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Olfactory Cues in Infant Feeds: Volatile Profiles of Different Milks Fed to Preterm Infants
Mariana Muelbert1, Frank H Bloomfield1, Shikha Pundir1
1Liggins Institute, University of Auckland, Auckland, New Zealand.
Insights
Infant milk smells vary significantly due to volatile compounds, with breastmilk and formulas having distinct profiles. Fatty acid oxidation products are key olfactory cues in infant nutrition.
Area of Science:
- * Food Chemistry and Sensory Science
- * Neonatal Nutrition and Physiology
Background:
- * Smell perception relies on volatile compounds binding to olfactory receptors.
- * Olfactory stimulation may influence neonatal digestion and metabolism via cephalic phase response.
- * Infants demonstrate distinct physiological responses to different milk smells, indicating discrimination abilities.
Purpose of the Study:
- * To characterize the volatile compound profile of preterm human breastmilk.
- * To compare these profiles with other preterm infant feeding options: donor breastmilk, fortified breastmilk, human milk-based products, and infant formulas.
- * To identify key differences in volatile compounds across various infant milk types.
Main Methods:
- * Analysis of 47 milk samples (34 human milk-based, 13 infant formulas) using Solid Phase Micro Extraction (SPME).
- * Gas Chromatography-Mass Spectrometry (GC-MS) for identification and quantification of volatile compounds.
- * Statistical analysis including Principal Component Analysis (PCA) and ANOVA to determine significant differences in volatile profiles.
Main Results:
- * 122 volatile compounds identified; breastmilk with bovine milk-based fortifier had the most (109), liquid formula the least (70).
- * Significant differences (adjusted p < 0.001) in 51 volatile compounds were observed among milk types.
- * Distinct volatile profiles: breastmilk with fortifier showed fatty acids, ketones, aldehydes; formulas had alkyls, aldehydes, furans; human milk-based products contained aromatic hydrocarbons, terpenoids.
Conclusions:
- * Sensory-active products from fatty acid oxidation are primary contributors to olfactory cues in infant feeds.
- * Volatile compound analysis can aid in monitoring milk quality and detecting oxidation or contaminants.
- * Further research is required to ascertain the physiological and nutritional impacts of these compounds on preterm infants.
Abstract:
Background: Smell is determined by odor-active volatile compounds that bind to specific olfactory receptors, allowing us to discriminate different smells. Olfactory stimulation may assist with digestion and metabolism of feeds in the neonate by activation of the cephalic phase response of digestion. Infants' physiological responses to the smell of different milks suggest they can distinguish between breastmilk and infant formula. We aimed to describe the profile of volatile compounds in preterm breastmilk and investigate how this differed from that of other preterm infant feeding options including pasteurized donor breastmilk, breastmilk with bovine milk-based fortifier, human milk-based products and various infant formulas. Methods: Forty-seven milk samples (13 different infant formulas and 34 human milk-based samples) were analyzed. Volatile compounds were extracted using Solid Phase Micro Extraction. Identification and relative quantification were carried out by Gas Chromatography with Mass Spectrometry. Principal Component Analysis (PCA) and one-way Analysis of Variance (ANOVA) with Tukey's HSD (parametric data) or Conover's post-hoc test (non-parametric data) were used as appropriate to explore differences in volatile profiles among milk types. Results: In total, 122 compounds were identified. Breastmilk containing bovine milk-based fortifier presented the highest number of compounds (109) and liquid formula the lowest (70). The profile of volatile compounds varied with 51 compounds significantly different (adjusted p < 0.001) among milk types. PCA explained 47% of variability. Compared to preterm breastmilk, the profile of volatile compounds in breastmilk with added bovine milk-based fortifier was marked by presence of fatty acids and their esters, ketones and aldehydes; infant formulas were characterized by alkyls, aldehydes and furans, and human milk-based products presented high concentrations of aromatic hydrocarbons, terpenoids and specific fatty acids. Conclusions: Sensory-active products of fatty acid oxidation are the major contributors to olfactory cues in infant feeds. Analysis of volatile compounds might be useful for monitoring quality of milk and detection of oxidation products and environmental contaminants. Further research is needed to determine whether these different volatile compounds have biological or physiological effects in nutrition of preterm infants.
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