TY - JOUR
T1 - The Comprehensive Roadmap Toward Malaria Elimination Using Graphene and its Promising 2D Analogs
AU - He, Fangzhou
AU - Junior, George
AU - Konar, Rajashree
AU - Huang, Yuanding
AU - Zhang, Ke
AU - Ke, Lijing
AU - Niu, Meng
AU - Goh, Boon Tong
AU - Moutaouakil, Amine El
AU - Nessim, Gilbert Daniel
AU - Belmoubarik, Mohamed
AU - Peng, Weng Kung
N1 - Publisher Copyright:
© 2024 The Authors. Advanced NanoBiomed Research published by Wiley-VCH GmbH.
PY - 2024
Y1 - 2024
N2 - Malaria is a major public health concern with over 200 million new cases annually, resulting in significant financial costs. Preventive measures and diagnostic remedies are crucial in saving lives from malaria, and especially in developing nations. 2D materials are, therefore, ideal for fighting such an epidemic. Graphene and its derivatives are extensively studied due to their exceptional properties in this case. The biomedical applications of graphene-based nanomaterials have gained significant interest in recent years due to their remarkable biocompatibility, solubility, and selectivity. Their unique physicochemical characteristics, like ample surface area, biofunctionality, high purity, solubility, substantial drug-loading capacity, and superior ability to penetrate cell membranes, make them up-and-coming candidates as biodelivery carriers. In this review, crucial graphene-based technologies to combat malaria are discussed. The advancements in preventing and diagnosing malaria and the biocompatibility of graphene-based nanomaterials are emphasized. The roadmap for using graphene-based technology toward achieving the WHO global malaria elimination by 2030 is presented and discussed in detail. Graphene oxide, the most critical biocompatible graphene derivative for health sensors, is also discussed. Additionally, 2D chalcogenides, specifically sulfide-based transition-metal dichalcogenides, are reviewed in detecting malaria during its early stages.
AB - Malaria is a major public health concern with over 200 million new cases annually, resulting in significant financial costs. Preventive measures and diagnostic remedies are crucial in saving lives from malaria, and especially in developing nations. 2D materials are, therefore, ideal for fighting such an epidemic. Graphene and its derivatives are extensively studied due to their exceptional properties in this case. The biomedical applications of graphene-based nanomaterials have gained significant interest in recent years due to their remarkable biocompatibility, solubility, and selectivity. Their unique physicochemical characteristics, like ample surface area, biofunctionality, high purity, solubility, substantial drug-loading capacity, and superior ability to penetrate cell membranes, make them up-and-coming candidates as biodelivery carriers. In this review, crucial graphene-based technologies to combat malaria are discussed. The advancements in preventing and diagnosing malaria and the biocompatibility of graphene-based nanomaterials are emphasized. The roadmap for using graphene-based technology toward achieving the WHO global malaria elimination by 2030 is presented and discussed in detail. Graphene oxide, the most critical biocompatible graphene derivative for health sensors, is also discussed. Additionally, 2D chalcogenides, specifically sulfide-based transition-metal dichalcogenides, are reviewed in detecting malaria during its early stages.
KW - 2D materials
KW - biocompatibilities
KW - graphenes
KW - malaria eliminations
KW - oxides
KW - transition-metal dichalcogenides
UR - http://www.scopus.com/inward/record.url?scp=85187662892&partnerID=8YFLogxK
U2 - 10.1002/anbr.202300130
DO - 10.1002/anbr.202300130
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AN - SCOPUS:85187662892
SN - 2699-9307
JO - Advanced NanoBiomed Research
JF - Advanced NanoBiomed Research
ER -