Lipids in Pathophysiology and Development of the Membrane Lipid Therapy: New Bioactive Lipids
Abstract
:1. Introduction
2. Historical Perspective of Membrane Lipid Therapy
2.1. Recognition of the Role of Lipids and Lipid Structures in Molecular and Cellular Events
2.2. Relevance of Membrane Lipid Composition and Structure to Pathophysiology
2.3. Natural Bioactive Lipids and Rational Design of Lipid Bilayer-Targeted Therapies
3. Membrane Lipid Therapy in Oncology
3.1. Lipids in the Pathophysiology of Cancer
3.2. Relevant Lipid-Protein Interactions Involved in Cancer
3.2.1. Ras
3.2.2. EGFR
3.2.3. Signaling Pathways: WNT and Hedgehog
3.3. Lipid Therapies in Cancer
4. Membrane Lipid Therapy for Neurodegenerative Diseases
4.1. Lipids in the Pathophysiology of Neurodegenerative Diseases
4.1.1. Cholesterol and Sphingolipids
4.1.2. Phospholipids and Fatty Acids
4.2. Relevant Lipid-Protein Interactions in Neurodegenerative Diseases
4.2.1. APP
4.2.2. FABPs
4.2.3. α-Synuclein
4.3. Current and Lipid Therapies in Alzheimer’s Disease
5. Membrane Lipid Therapy for Infectious Diseases
5.1. Lipid-Dependent Steps in the Infectious Process as a Candidate for Lipid Therapy
5.1.1. Human Infections
5.1.2. Arthropod-Borne Pathogens
5.2. Lipid-Targeting Therapeutic Approaches for Infectious Disease
6. Concluding Remarks
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
References
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Target Element |
Therapeutic Molecule | Indication | Mechanism of Action | Status | Reference |
Free Cho | Statins | Inhibition of pathogen replication | Inhibition of 3-hydroxy-3-methyl-glutaryl-CoaA reductase | IV/M for other indications | [388,389,390,391] NCT03971019 |
Fatty acid biosynthesis and lipid droplets | 5-tetradecyloxy-2-furoic acid (TOFA) | Blocking replication of HCMV and influenza A virus | Inhibition of ACC | IV | [392,393,394,395] |
CeruleninC75 | DENV, WNV, USUV and FHV viruses | Specific inhibition of different FASN activities | IV | [396] | |
A939572 (piperidine–aryl urea-based inhibitor) | HCV and DENV infection | Specific inhibition of SCD1 | IV | [397,398,399] | |
Specific lipids on the lipid envelope of the host or the pathogen | Cho-specific antibodies | Viral and bacterial infection | Membrane remodeling induced by Cho-specific antibodies on the target cells | IV/M for other indications | [400] |
Phospahtidylserine specific antibodies | Arenavirus and CMV infection | Targeting of a pre-apoptotic event in cells infected by a variety of viruses | CT | [363,364,401] | |
Membrane fluidity | Glycyrrhizin | A 5% decrease in fluidity reduces HIV infectivity by 56% | Saponin, structurally similar to Cho, promotes changes in the mobility of the lipids and modulates fusion processes | IV | [402,403,404] |
Fattiviracin FV | Broad antiviral | Neutral glycolipid isolated from Streptomycetes that promotes changes in lipid mobility | IV | [405] | |
Cepharantine | Inhibition of HIV infection and transmission | Natural plant alkaloid promoting changes in lipid mobility | IV/M for other indications | [406] | |
Trimeric coumarin GUT-70 | Inhibition of HIV entry | Natural product derived from the stem bark of Chlophyllum Brasiliense promoting changes in lipid mobility | IV | [407] | |
Gemfibrocil, lovastatin, fluvastatin, atorvastatin, pravastatin, simvastatin HMGCR-RNAi | Dengue, parainfluenza, Sendia virus | Cho lowering agents affecting Cho metabolism and lipid rafts, inhibiting the viral cell cycle | IV/M for other indications | [408,409] | |
Treatment with sphingomyelinase (SMase), or by exogenous addition of long-chain Cer | Japanese encephalitis virus, HIV-1, HCV, Sindbis virus, rhinovirus | Modulating the fusion processes for viral entry and/or the exit of new virions | IV | [410,411,412] | |
Hexanol benzyl alcohol and A2C | Inhibition of bacterial (e.g., Helicobacter pylori) and non-virus pathogen (e.g., Leishmania spp) infection | Promotes changes in lipid mobility and prevents bacterial adhesion | IV | [413,414,415,416,417,418] | |
AMPs most studied groups are cationic α-helical polypeptides | Effective agents against a variety of Gram-positive and -negative bacteria, fungi, and protozoans | Most AMPs belong to the class of membrane-active peptides. AMPs penetrate bacterial membranes, causing membrane destabilization and bacterial death while reducing possible bacterial drug resistance. Current strategies to improve the design of AMPs as human medicines is their local delivery combining device coatings and nanomaterials Cationic α-helical polypeptides interact with negatively charged cell membranes through electrostatic interactions resulting in membrane adsorption and conformational changes | M | [419,420,421,422,423] | |
Distribution of receptors and co-receptors | Increase in Cer content | Blocking HIV fusion | Induction of CD4 receptor clustering and the prevention of co-receptors engagement | IV | [410] |
Lipid rafts | ACHAs (IgG type monoclonal) | HIV-1 | Sequestration of Cho or sphingomyelin preventing selective budding from glycolipid-enriched membrane lipid rafts | IV/M for other indications | [400] |
Cyclodextrin and derivatives | HIV-1, SARS-CoV-2, Helicobacter pylori, and other bacteria | Sequestration of Cho or sphingomyelin, reduction in lipid raft stability, and protection against pore-forming activities | IV/M for other indications | [424,425,426,427] | |
Statins | Broad inhibition of bacterial (Helicobacter pylori, Pneumonia, etc.) and viral (SARS-CoV-2) infection | Reduction in Cho or sphingomyelin biosynthesis and reduction in lipid raft stability | IV/M for other indications | [390] | |
AIBP | SARS-CoV-2 | Stimulation of Cho efflux in cells that are Cho-loaded or infected and a reduction in lipid raft abundance to the “healthy level” but not reducing it beyond that or affecting healthy cells | IV | [428,429] | |
Clomiphene and toremifene | Ebola virus, Zika virus | Selective estrogen modulators altering lipid rafts | IV/M for other indications | [430] | |
GW3965 (liver X receptor agonist) | HCV | Stimulation of ABCA1 expression, regulation of Cho or sphingolipids, and alteration of lipid rafts | IV/M for other indications | [431] | |
Dynasore | BPV1, HIV, HPV16, HSV, Trueperella pyogenes | Impairment of Cho trafficking and disruption of lipid raft organization | IV | [432,433,434,435,436] | |
Lipid-based defense strategies in human hosts (immune system and host cell) | Cyclodextrin and derivatives | Virus and bacteria | Anti-inflammatory properties | IV/M for other indications | [437] |
Colchicine | SARS-CoV-2 | Anti-inflammatory properties for symptomatic treatment | CT | [438] | |
Filamentous bacteriophages | Stimulation of immune response | Carriers of immunologically active lipids and antigenic peptides | IV/PCS | [439] | |
AIBP | HIV | Anti- inflammatory properties | IV/PCS | [440] |
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Torres, M.; Parets, S.; Fernández-Díaz, J.; Beteta-Göbel, R.; Rodríguez-Lorca, R.; Román, R.; Lladó, V.; Rosselló, C.A.; Fernández-García, P.; Escribá, P.V. Lipids in Pathophysiology and Development of the Membrane Lipid Therapy: New Bioactive Lipids. Membranes 2021, 11, 919. https://doi.org/10.3390/membranes11120919
Torres M, Parets S, Fernández-Díaz J, Beteta-Göbel R, Rodríguez-Lorca R, Román R, Lladó V, Rosselló CA, Fernández-García P, Escribá PV. Lipids in Pathophysiology and Development of the Membrane Lipid Therapy: New Bioactive Lipids. Membranes. 2021; 11(12):919. https://doi.org/10.3390/membranes11120919
Chicago/Turabian StyleTorres, Manuel, Sebastià Parets, Javier Fernández-Díaz, Roberto Beteta-Göbel, Raquel Rodríguez-Lorca, Ramón Román, Victoria Lladó, Catalina A. Rosselló, Paula Fernández-García, and Pablo V. Escribá. 2021. "Lipids in Pathophysiology and Development of the Membrane Lipid Therapy: New Bioactive Lipids" Membranes 11, no. 12: 919. https://doi.org/10.3390/membranes11120919