Advances in drug delivery to atherosclerosis: Investigating the efficiency of different nanomaterials employed for different type of drugs
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Wu, Yuao
Nguyen, Nam-Trung
Ta, Hang Thu
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Abstract
Atherosclerosis is the build-up of fatty deposits in the arteries, which is the main underlying cause of cardiovascular diseases and the leading cause of global morbidity and mortality. Current pharmaceutical treatment options are unable to effectively treat the plaque in the later stages of the disease. Instead, they are aimed at resolving the risk factors. Nanomaterials and nanoparticle-mediated therapies have become increasingly popular for the treatment of atherosclerosis due to their targeted and controlled release of therapeutics. In this review, we discuss different types of therapeutics used to treat this disease and focus on the different nanomaterial strategies employed for the delivery of these drugs, enabling the effective and efficient resolution of the atherosclerotic plaque. The ideal nanomaterial strategy for each drug type (e.g. statins, nucleic acids, small molecule drugs, peptides) will be comprehensively discussed.
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Materials Today Bio
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22
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© 2023 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
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Macromolecular and materials chemistry
Biomedical engineering
Materials engineering
Atherosclerosis
Drug delivery
Nanomaterial
Plaques
Therapeutics
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Perera, B; Wu, Y; Nguyen, N-T; Ta, HT, Advances in drug delivery to atherosclerosis: Investigating the efficiency of different nanomaterials employed for different type of drugs, Materials Today Bio, 2023, 22, pp. 100767