Marine Lipids and Alzheimer’s Disease: Biochemistry, Bioaccessibility/Bioavailability, Metabolism, and Health Effects
Abstract
1. Introduction
Literature Search Procedure
2. Marine Resources and Their Biomolecule Trove
2.1. Phospholipids
2.2. Terpenoids
2.3. Sterols
3. Bioaccessibility/Bioavailability
3.1. Phospholipids
3.2. Terpenoids
3.3. Sterols
4. Metabolism of Marine Lipids
4.1. Phospholipids
4.2. Terpenoids
4.3. Sterols
5. Health Impacts
5.1. Phospholipids
5.2. Terpenoids
5.3. Sterols
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
References
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| Classes | Isoprene Units | Examples |
|---|---|---|
| Monoterpenoids (C10H16) | 2 | pinene, limonene |
| Sesquiterpenoids (C15H24) | 3 | caulerpenyne; zonarol; (5E,10Z)-6,10,14-trimethylpentadeca-5,10-dien-2, 12-dione; (5E,9E,13E)-6,10,14-trimethylpentadeca-5,9,13-trien-2,12-dione |
| Diterpenoids (C20H32) | 4 | vitamin A (retinol) |
| Sesterpenoids (C25H40) | 5 | manoalide |
| Triterpenoids (C30H48) | 6 | glycyrrhizin, 18α-glycyrrhetinic acid, 18β-glycyrrhetinic acid, vitamin D (cholecalciferol), squalene |
| Tetraterpenoids (C40H64) | 8 | fucoxanthin, fucoxanthinol, astaxanthin, lycopene, lutein, zeaxanthin, β-carotene |
| Meroterpenoids | 2 | sargachromenol, sargaquinoic acid, sargahydroquinoic acid |
| Lipid Class | Compound | Mechanism of Action/Health Impact | Reference |
|---|---|---|---|
| Phospholipids | unespecified | Decreased (↓) reactive oxygen species (ROS), ↓ Aβ peptides accumulation, astrocyte regulation | [214] |
| EPA-PC DHA-PC | ↓ Aβ peptides levels in amyloid precursor protein (APP) and presenilin 1 (PS1) (CHO-APP/PS1 cells) and SAMP8 mice, ↓ APP, PS1, and beta-site amyloid precursor protein cleaving enzyme (BACE1) expression, ↓ Apoptosis (via increased [↑] B-cell lymphoma 2 regulator proteins and ↓ expression of pro-apoptosis factors), ↑ brain-derived neurotrophic factor (BDNF), synaptophysin and growth associated protein 43 expression | [44] | |
| PLG | ↓ microglial expression of protein kinase C delta (PKCδ), ↓ p38 mitogen-activated protein kinase (MAPK) and c-JUN N-terminal kinase (JNK) protein expression | [51] | |
| Phosphoinositide (in connection with scyllo-inositol) | ↓ Aβ peptides aggregation | [215] | |
| Cardiolipin (CL) | homeostasis of the central nervous system | [216] | |
| EPA-Enriched Phosphoethanolamine PLG | ↑ tropomyosin receptor kinase B/extracellular signal-regulated kinases/cyclic adenosine monophopsphate (AMP)-dependent response element-binding protein signalling pathway, ↓ oxidative stress and apoptosis | [217] | |
| DHA-PL (DHA-PC, DHA-PS) | ↓ apoptosis via mitochondria-mediated pathway and MAPK pathway, ↑ dopaminergic neurons | [218] | |
| Dilinoleoylphosphatidylcholine | ↓ induction of MAPK, prevents phosphorylation and activation of nuclear factor-kappa B, ↓ APP in SH-SY5Y cells | [219] | |
| PS-DHA | Improvement or maintenance of cognitive status in elderly subjects with memory complaints | [220] | |
| EPA/DHA-PS | Protection for oxidative stress and prevention of mitochondrial-mediated apoptosis in PC12 cells | [64] | |
| DHA-PC and DHA-PS | Improvement of oxidative stress, ↓ Aβ peptides levels, ↓ APP and BACE1 expression, ↓ interleukin 1 (IL-1) and tumour necrosis factor-alpha (TNF-α), ↓ Apoptosis, improvement on the decline of learning and memory in SAMP8 mice | [221] | |
| EtnPLG | Improvement in reference and working memory-related learning abilities | [48] | |
| PLG | Improvement in Wechsler Memory Scale-Revised scores in mild AD patients | [222] | |
| acetyl-LysoPC-DHA (AceDoPC) | ↓ LPS-induced IL-6 production in C57Bl6/J mice hippocampus | [223] | |
| ↑ neurogenesis in neural stem progenitor cells derived from the adult mouse brain | [224] | ||
| EPA-PL | Improvement of Aβ peptides-induced cognitive deficiency, ↓ oxidative stress, ↓ apoptosis, ↓ neuro-inflammation cascade and tau hyper-phosphorylation in rats | [225] | |
| PS and PC | ↑ cell viability, furthermore DHA/EPA-PS ↑ superoxide dismutase, ↑ total antioxidant capacity in PC12 cells | [64] | |
| PL mixture containing PC, PI, PE, PS Lyso-PC and Lyso-PE | ↓ Aβ peptides secretion in SH-SY5Y cells | [40] | |
| unspecified | ↓ Lipid peroxidation in the plasma and in brain, ↓ ROS in cortex and hippocampus, improvement on spatial-memory in rats | [226] | |
| Terpenoids | Halogenated monoterpenoids | ↓ acetylcholinesterase (AChE) activity | [77] |
| α-bisabolol | ↓ AChE and butylcholinesterase (BChE) activity, ↓ aggregation of Aβ peptides oligomers, ↓ disaggregation of mature fibrils, rescuing effect against Aβ peptides induced toxicity | [84,227] | |
| α-bisabolol | Beneficial in terms of the memory deficits, short and long-term memory, loss of recognition abilities and spatial memory impairments in mice | [228] | |
| Aplysistatin | ↓ inflammation, ↓ nitric oxide (NO) and prostaglandin-E2 (PGE2), ↓ inducible nitric oxide synthase (iNOS) and cyclooxygenase 2 (COX-2) expression | [80] | |
| Caulerpenyne | ↓ lipoxygenases (LOX) activity and unsaturated FA oxidation | [229] | |
| Zonarol | ↓ cell death, activation of Nuclear factor (erythroid-derived 2)-like 2/antioxidant-responsive element (Nrf2/ARE) pathway | [86] | |
| Dihydromonofarnesylacetone, monooxofarnesylacetone | ↓ AChE and BChE activities | [87] | |
| Retinol | ↓ Aβ peptides deposition and tau phosphorylation, ↓ Aβ peptides induced toxicity | [230] | |
| Retinol | ↓ tau aggregates, ↓ cyclin-dependent kinase 5 and glycogen synthase kinase 3β, ↑ astrocytes and microglia | [231] | |
| Retinoic acid | rescued of memory deficits, improved spatial learning and memory in mice | [230] | |
| Vitamin D | Improvement in age-related decline in learning and memory, age-related change in inflammatory status was counteracted, ↑ Aβ peptides clearance, ↓ amyloid burden in aged rats | [232] | |
| ↓ Aβ peptides-induced reactive oxygen species, apoptosis, and tau protein hyperphosphorylation | [233] | ||
| ↓ Aβ peptides levels, improved conditioned fear memory | [234] | ||
| protection of cognitive function in rats | [235] | ||
| vitamin D (combined with memantine) | enhanced cognition in AD patients | [236] | |
| Fucoxanthin | ↓ BACE1 activity and Aβ peptides accumulation | [237] | |
| ↓ BChE activity | [118] | ||
| ↓ AChE activity and BDNF expression, improvement on cognitive impairment in mice | [238] | ||
| ↓ Aβ peptides fibrils and oligomers, ↓ neurotoxicity of Aβ peptides oligomers in SH-SY5Y cells, and ↓ oxidative stress, ↑ expression of BDNF, improvement on cognitive impairment in mice | [116] | ||
| ↓ secretion of proinflammatory mediators: iNOS, COX-2, phosphorylation of MAPK, TNF-α, IL-6, IL-1β, and PGE2 | [239] | ||
| Improvement on cognitive functions in rats | [240] | ||
| prevention of cognitive decline and Aβ peptides-related neuroinflammation as well as the secretion of pro-inflammatory cytokines and the activation of BV2 microglial cells | [241] | ||
| Fucoxanthin and astaxanthin | ↓ Aβ peptides aggregation, ↓ Aβ peptides induced cytotoxicity and apoptosis | [242] | |
| Astaxanthin | ↓ Aβ peptides aggregation, ↓ Aβ peptides induced cytotoxicity and apoptosis | [242] | |
| anti-amyloidogenic effect, ↓ TNF-α level, ↓ AChE activity, ↓ oxidative stress, reversion of cognitive and memory impairment | [243] | ||
| ↓ ROS, ↓ SH-SY5Y and PC12 cells apoptosis, ↓ iNOS and COX-2, ↓ IL-6 and the MAPK | [132,244,245] | ||
| reversion of the cognitive and memory impairment, ↓ levels of Aβ peptides, TNF-α, AChE, nitrite and oxidative stress | [243] | ||
| ↓ lipopolysaccharide(LPS)-induced oxidant activity, neuroinflammatory response and amyloidogenesis in microglia BV-2 Cells, and alleviates memory impairment in mice | [246] | ||
| enhanced performance on hippocampal-dependent cognitive tasks in mice | [247] | ||
| ↓ neuroinflammation and ameliorate behavioural deficits in rats | [248] | ||
| improved memory scores in individuals with self-reported complaints of age-related forgetfulness | [249] | ||
| Improvement on cognitive function in middle-aged and older individuals | [250] | ||
| Astaxanthin (combined with sesamin) | Improvement of cognitive functions in individuals with mild cognitive impairment (MCI) | [251] | |
| Fucoxanthinol | Antioxidant activity | [102,239,252] | |
| Sargachromenol, sargahydroquinoic acid, and sargaquinoic acid | ↓ AChE, BChE and BACE1 activities | [139] | |
| Sargaquinoic acid and sargachromenol | ↓ AChE and BChE activities | [137] | |
| Sargachromenol | ↓ NO and PGE2, ↓ iNOS and COX-2 | [141] | |
| Sargaquinoic acid | ↓ NO and iNOS | [253] | |
| Sterols | Fucosterol | ↓ BACE1 activity and Aβ peptides accumulation | [237] |
| ↓ AChE activity | [158] | ||
| ↓ Aβ peptides accumulation and ↓ Aβ peptides-induced apoptosis in SH-SY5Y cells | [254] | ||
| ↓ AChE and BChE activities, ↓ LPS- and Aβ peptides-triggered neuroinflammation via suppression of IL-6, IL-1β, and TNF-α | [157] | ||
| ↑ Hippocampal neuron viability and cognitive impairment in ageing rat models | [156] | ||
| 24(S)-Saringosterol | Activation of liver X receptor beta (LXRβ) in microglial cells, ↑ short-term memory, ↓ hippocampal Aβ peptides plaque load in APPswePS1ΔE9 mice | [199] | |
| Activation of LXRβ | [154] | ||
| Activation of LXRα and LXRβ in SH-SY5Y cells | [255] | ||
| Prevention of cognitive decline and the increase in the inflammatory marker Iba1 in mice cortex | [200] |
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Gomes-Bispo, A.; Cardoso, C.; Afonso, C.; Lourenço, H.M.; Pedro, S.; Moniz, P.; Bandarra, N.M. Marine Lipids and Alzheimer’s Disease: Biochemistry, Bioaccessibility/Bioavailability, Metabolism, and Health Effects. Mar. Drugs 2026, 24, 197. https://doi.org/10.3390/md24060197
Gomes-Bispo A, Cardoso C, Afonso C, Lourenço HM, Pedro S, Moniz P, Bandarra NM. Marine Lipids and Alzheimer’s Disease: Biochemistry, Bioaccessibility/Bioavailability, Metabolism, and Health Effects. Marine Drugs. 2026; 24(6):197. https://doi.org/10.3390/md24060197
Chicago/Turabian StyleGomes-Bispo, Ana, Carlos Cardoso, Cláudia Afonso, Helena Maria Lourenço, Sónia Pedro, Patrícia Moniz, and Narcisa M. Bandarra. 2026. "Marine Lipids and Alzheimer’s Disease: Biochemistry, Bioaccessibility/Bioavailability, Metabolism, and Health Effects" Marine Drugs 24, no. 6: 197. https://doi.org/10.3390/md24060197
APA StyleGomes-Bispo, A., Cardoso, C., Afonso, C., Lourenço, H. M., Pedro, S., Moniz, P., & Bandarra, N. M. (2026). Marine Lipids and Alzheimer’s Disease: Biochemistry, Bioaccessibility/Bioavailability, Metabolism, and Health Effects. Marine Drugs, 24(6), 197. https://doi.org/10.3390/md24060197

