Structured Lipids Engineering for Health: Novel Formulations Enriched in n-3 Long-Chain Polyunsaturated Fatty Acids with Potential Nutritional Benefits
Abstract
:1. Introduction
2. Structured Lipids Engineering
2.1. Scale-Up Synthesis and Stereospecific Position of FAs in SLs
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- Interesterification reactions are defined by the exchange of fatty acyl groups between two or more TAG molecules [37]. The reaction begins with TAG hydrolysis into free fatty acids (FFA) followed by re-esterification of the FFA on the glycerol backbone. Numerous commercial fats apply this method, the most common being Betapol (Lipid Nutrition) and Salatrim (short and acyltriacylglycerol molecules) [36]. Betapol is illustrative of human milk fat (HMF) analogues [38], whereas Salatrim encloses low energy value (~5 kcal/g) synthesised by short-chain FAs, therefore supplying lower calories than LCFAs;
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- -
- Alcoholysis reactions are defined by the exchange of the alkoxy group between an alcohol and an ester, like glycerol (glycerolysis) or ethanol (ethanolysis) [39].
2.2. Clinical Studies and Prospective Outcomes of SLs
SL Type | Beneficial Health Effects | Experimental Model | References |
---|---|---|---|
Medium-chain triacylglycerols (MCTs) and LCTs | Increased fat oxidation in postoperative patients | Human | Sandström et al. [63] |
Fish oil/MCTs | Ameliorated immunity and hepatic and renal function Reduced eicosanoids from peripheral blood mononuclear cells | Human | Swails et al. [64] |
SLs containing EPA, DHA, and caprylic acid | Diminished cholesterol and TAGs | Mouse | Lee et al. [71] |
Rapeseed oil-based MLM-type | Ameliorated the FA hydrolysis as well as absorption | Rat | Straarup and Høy [76] |
LML-type MLM-type | MLM-type quickly hydrolysed and impacted on energy supply LML ameliorated blood and hepatic lipids | Rat | Nagata et al. [72] |
MLM-type LMM-type | Both types of SLs diminished blood lipids and cholesterol | Rat | Nagata et al. [73] |
Rapeseed oil-based MLM-type | Ameliorated fat in faeces and nitrogen digestibility Greater accumulation of LCFAs | Post-weaning piglet | Straarup et al. [77] |
Sesame oil-based MLM-type | Without effects on the cardiovascular system | Spontaneously hypertensive rat | Kim et al. [53] |
DHA-enriched structured-DAG | Ameliorated FAs and cholesterol | Mouse | Kim et al. [67] |
Sesame oil-based MLM-type | Damaged cardiovascular system and produced tachycardia | Spontaneously hypertensive rat | Kim et al. [21] |
SLs with cod liver oil, SLs with linseed oil | Hypolipidaemic and hypocholesterolaemic properties | Rat | Chopra and Sambaiah [68] |
MCTs-containing mustard oil PUFA-containing mustard oil | SLs counteracted thrombocyte aggregation and showed hypercholesterolaemic effects | Hypercholesterolemic rat | Sengupta and Ghosh [74] |
MCTs-rich mustard oil PUFA-rich mustard oil | Reduced deleterious influence of cholesterol in red blood cell membranes | Rat | Sengupta and Ghosh [75] |
SLs containing short-chain fatty acids (SCFAs) | Diminished TAGs | Mouse | Cao et al. [66] |
SLs with sunflower and SLs with soybean oil with ethyl behenate | Diminished lipaemia and lipid deposition | Rat and rabbit | Kanjilal et al. [69] |
SLs with groundnut oil, SLs with linseed oil | Diminished LDL cholesterol and TAGs | Rat | Sharma and Lokesh [70] |
sn-2 position DHA- containing TAGs | Improved blood lipids and EPA and DHA deposition in the liver, erythrocytes, and brain | Hamster | Bandarra et al. [13] |
sn-2 position DHA- containing TAGs | No anti-adipogenic effect of DHA | Hamster | Lopes et al. [14] |
2.3. Human Milk Fat Analogues for Infants
3. Conclusions
4. Take-Home Message
- The engineering of SLs with precise TAG configurations allows for the fine-tuning of their bioavailability and bioactivity, thereby optimising their nutritional and physiological benefits;
- Enzymatic interesterification techniques offer a promising approach for the targeted synthesis of SLs, particularly those with MLM arrangements that are optimal for health benefits;
- SLs represent a frontier in nutritional science, with potential applications extending beyond general health, targeting specific needs in healthcare settings and child development.
Author Contributions
Funding
Conflicts of Interest
Abbreviations
References
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Type of Method | Reaction | Nutritional Applications | References |
---|---|---|---|
Chemical | Interesterification | Shortenings and trans-FAs free margarine | Rousseau and Marangoni [51] |
Infant formulation (e.g., Betapol) | Farfán et al. [36] | ||
Enzymatic | Interesterification applying sn-1,3 specific lipases | Infant formulation enriched with ARA and DHA | Álvarez and Akoh [48,52] |
Reduced calorie fat (e.g., Salatrim) | Farfán et al. [36] | ||
Chemical | Acidolysis | Bakery products | Rousseau and Marangoni [51] |
MLM synthesis | Kim et al. [21,53] | ||
Enzymatic | Acidolysis applying sn-1,3 specific lipases | Infant formulation | Sørensen et al. [54], Li et al. [55] |
Infant formulation enriched with DHA | Pande et al. [56] | ||
Chemical | Alcoholysis | Surfactants, emulsifiers | Feltes et al. [57] |
Enzymatic | Ethanolysis applying sn-1,3 specific lipases | Emulsifiers MAG | Wang et al. [58] |
Glycerolysis applying sn-1,3 specific lipases | Emulsifiers DAG oil | Flickinger and Matsuo [59] |
SLs Synthesis Methods | Formulation Tested | Beneficial Health Effects | References |
---|---|---|---|
Acidolysis | Butterfat plus soybean oil and rapeseed oil FAs | Reduced oxidative stability Potential application as infant formulation | Sørensen et al. [54] |
Interesterification | 18:4n-3 soybean oil plus tripalmitin | n-3 FA beneficial health effects Potential application as infant formulation | Teichert and Akoh [98] |
Interesterification (step 1) Acidolysis (step 2) | Step 1: 18:4n-3 soybean oil plus tripalmitin = SLs Step 2: SLs plus 18:3n-6 or DHA | Considerable contents of 18:3n-6 and DHA Potential application as infant formulation | Teichert and Akoh [99] |
Acidolysis | Palm olein plus DHASCO-FFA and ARASCO-FFA | Increased contents of ARA and DHA at the sn-2 position Potential application as infant formulation | Nagachinta and Akoh [100] |
Interesterification (for both steps) | Step 1: hazelnut oil plus 16:0 ethyl ester = 16:0-rich SLs Step 2: 16:0-rich SLs plus ARASCO and DHASCO | Health benefits associated with ARA and DHA Potential application as infant formulation | Turan et al. [101] |
Interesterification plus acidolysis | Extra virgin olive oil plus tripalmitin plus ARASCO-FFA plus DHASCO-FFA | Reasonable content of DHA at the sn-2 position Potential application as infant formulation | Pande et al. [97] |
Acidolysis | Tripalmitin plus extra virgin olive oil-FFA plus DHASCO-FFA | Considerable content of DHA at the sn-2 position Potential application as infant formulation | Pande et al. [56] |
Acidolysis | Refined olive oil plus 16:0 + DHA | Reasonable content of DHA at the sn-2 position Potential application as infant formulation | Li et al. [55] |
Interesterification | Synthesis of high sn-2 DHA and ARA oils through DHASCO and ARASCO | High contents of DHA and ARA at the sn-2 position Potential application as infant formulation | Álvarez and Akoh [48] |
Interesterification (for step 1) | Step 1: sn-2 16:0 SLs plus capric acid = SLCA Step 2: Blending SLCA with canola oil, corn oil, high sn-2 DHA, and high sn-2 ARA | DHA and ARA predominantly at the sn-2 position Potential application as infant formulation enriched with medium chain FAs, ARA, and DHA | Álvarez and Akoh [52] |
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Lopes, P.A.; Alfaia, C.M.; Pestana, J.M.; Prates, J.A.M. Structured Lipids Engineering for Health: Novel Formulations Enriched in n-3 Long-Chain Polyunsaturated Fatty Acids with Potential Nutritional Benefits. Metabolites 2023, 13, 1060. https://doi.org/10.3390/metabo13101060
Lopes PA, Alfaia CM, Pestana JM, Prates JAM. Structured Lipids Engineering for Health: Novel Formulations Enriched in n-3 Long-Chain Polyunsaturated Fatty Acids with Potential Nutritional Benefits. Metabolites. 2023; 13(10):1060. https://doi.org/10.3390/metabo13101060
Chicago/Turabian StyleLopes, Paula A., Cristina M. Alfaia, José M. Pestana, and José A. M. Prates. 2023. "Structured Lipids Engineering for Health: Novel Formulations Enriched in n-3 Long-Chain Polyunsaturated Fatty Acids with Potential Nutritional Benefits" Metabolites 13, no. 10: 1060. https://doi.org/10.3390/metabo13101060
APA StyleLopes, P. A., Alfaia, C. M., Pestana, J. M., & Prates, J. A. M. (2023). Structured Lipids Engineering for Health: Novel Formulations Enriched in n-3 Long-Chain Polyunsaturated Fatty Acids with Potential Nutritional Benefits. Metabolites, 13(10), 1060. https://doi.org/10.3390/metabo13101060