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1.
Microbes Infect ; 24(1): 104886, 2022 02.
Article in English | MEDLINE | ID: mdl-34534695

ABSTRACT

Phytomelatonin is a pleiotropic molecule that originated in higher plants with many diverse actions and is primarily an antioxidant. The recent identification and advancement of phytomelatonin unraveled the potential of this modulatory molecule being considered a new plant hormone, suggesting its relevance in treating respiratory infections, including COVID-19. Besides, this molecule is also involved in multiple hormonal, physiological, and biological processes at different levels of cell organization and has been marked for its ability to cross the blood-brain barrier and prominent antioxidant effects, reducing mitochondrial electron leakage, up-regulating antioxidant enzymes, acting as a free radical scavenger, and interfering with pro-inflammatory signaling pathways as seen in mood swings, body temperature, sleep, cancer, cardiac rhythms, and immunological regulation modulators. However, due to its diversity, availability, affordability, convenience, and high safety profile, phytomelatonin has also been suggested as a natural adjuvant. This review discussed the origin, content in various plant species, processes of extraction, and detection and therapeutic potentials of phytomelatonin in treating COVID-19-exposed individuals.


Subject(s)
COVID-19 , Melatonin , Antioxidants , Humans , Melatonin/pharmacology , Plant Growth Regulators , SARS-CoV-2
2.
Int J Mol Sci ; 22(6)2021 Mar 11.
Article in English | MEDLINE | ID: mdl-33799652

ABSTRACT

The potential enhancement of metformin hydrochloride (MH) loaded in lipid vesicles targeting therapeutic efficacy on alloxan-induced diabetic rats was investigated. This involved lipid vesicles formulated with homogenously distributed nano-sized particles by a novel integrated process of multiple emulsification by membrane and solvent evaporation. The average diameter of the water-in-oil (W1/O), W1/O/W2 emulsion droplets, and lipid vesicles was 192 nm, 52 µm, and 173 nm, respectively. The entrapment yield of metformin hydrochloride (MH) in the prepared lipid vesicles was 40.12%. The metformin hydrochloride-loaded lipid vesicles (MH-LLVs) sustained the release of the entrapped drug over a 12-h period and reduced the plasma glucose level of diabetic rats by 77.4% compared with free MH solution (2-h period and 58.2%, respectively) after one week post-diabetic treatment through oral administration of MH-LLV and the free drug. The remarkable improvement in the biochemical parameters recorded in the MH-LLV-treated animals compared with those that received free MH solutions depicted an enhanced kidney function, liver function, as well as oxidative stress status. Pancreatic histology depicted a pancreas with intralobular ducts (ID) and exocrine secretory acini that characterize an intact pancreas, which suggests the ability of the MH-LLVs to restore pancreatic cells to normal, on a continued treatment. Overall, MH-LLV appears an encouraging extended-release formulation with enhanced bioavailability, sustained release, and improved antihyperglycemic potentials.


Subject(s)
Diabetes Mellitus, Experimental/drug therapy , Drug Delivery Systems/methods , Lipids/chemistry , Metformin/pharmacology , Animals , Biological Availability , Blood Glucose/metabolism , Delayed-Action Preparations/administration & dosage , Delayed-Action Preparations/pharmacokinetics , Delayed-Action Preparations/pharmacology , Diabetes Mellitus, Experimental/blood , Diabetes Mellitus, Experimental/metabolism , Drug Liberation , Emulsions/chemistry , Hypoglycemic Agents/administration & dosage , Hypoglycemic Agents/pharmacokinetics , Hypoglycemic Agents/pharmacology , Male , Metformin/administration & dosage , Metformin/pharmacokinetics , Particle Size , Rats, Wistar , Treatment Outcome
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