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Computer-Aided Drug Design and Drug Discovery: A Prospective Analysis
by
Mariam, Zamara
, Niazi, Sarfaraz K.
in
Algorithms
/ Artificial intelligence
/ Biology
/ Chemoinformatics
/ Computer simulation
/ Computer-Aided Drug Design (CADD)
/ Drug discovery
/ Hydrogen bonds
/ Kinases
/ Ligands
/ Machine learning
/ Machine Learning and Artificial Intelligence (AI)
/ Metabolism
/ molecular docking
/ molecular modeling
/ Pharmaceutical industry
/ Pharmacokinetics
/ Proteins
/ R&D
/ Research & development
/ Review
2023
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Computer-Aided Drug Design and Drug Discovery: A Prospective Analysis
by
Mariam, Zamara
, Niazi, Sarfaraz K.
in
Algorithms
/ Artificial intelligence
/ Biology
/ Chemoinformatics
/ Computer simulation
/ Computer-Aided Drug Design (CADD)
/ Drug discovery
/ Hydrogen bonds
/ Kinases
/ Ligands
/ Machine learning
/ Machine Learning and Artificial Intelligence (AI)
/ Metabolism
/ molecular docking
/ molecular modeling
/ Pharmaceutical industry
/ Pharmacokinetics
/ Proteins
/ R&D
/ Research & development
/ Review
2023
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Do you wish to request the book?
Computer-Aided Drug Design and Drug Discovery: A Prospective Analysis
by
Mariam, Zamara
, Niazi, Sarfaraz K.
in
Algorithms
/ Artificial intelligence
/ Biology
/ Chemoinformatics
/ Computer simulation
/ Computer-Aided Drug Design (CADD)
/ Drug discovery
/ Hydrogen bonds
/ Kinases
/ Ligands
/ Machine learning
/ Machine Learning and Artificial Intelligence (AI)
/ Metabolism
/ molecular docking
/ molecular modeling
/ Pharmaceutical industry
/ Pharmacokinetics
/ Proteins
/ R&D
/ Research & development
/ Review
2023
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Computer-Aided Drug Design and Drug Discovery: A Prospective Analysis
Journal Article
Computer-Aided Drug Design and Drug Discovery: A Prospective Analysis
2023
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Overview
In the dynamic landscape of drug discovery, Computer-Aided Drug Design (CADD) emerges as a transformative force, bridging the realms of biology and technology. This paper overviews CADDs historical evolution, categorization into structure-based and ligand-based approaches, and its crucial role in rationalizing and expediting drug discovery. As CADD advances, incorporating diverse biological data and ensuring data privacy become paramount. Challenges persist, demanding the optimization of algorithms and robust ethical frameworks. Integrating Machine Learning and Artificial Intelligence amplifies CADDs predictive capabilities, yet ethical considerations and scalability challenges linger. Collaborative efforts and global initiatives, exemplified by platforms like Open-Source Malaria, underscore the democratization of drug discovery. The convergence of CADD with personalized medicine offers tailored therapeutic solutions, though ethical dilemmas and accessibility concerns must be navigated. Emerging technologies like quantum computing, immersive technologies, and green chemistry promise to redefine the future of CADD. The trajectory of CADD, marked by rapid advancements, anticipates challenges in ensuring accuracy, addressing biases in AI, and incorporating sustainability metrics. This paper concludes by highlighting the need for proactive measures in navigating the ethical, technological, and educational frontiers of CADD to shape a healthier, brighter future in drug discovery.
Publisher
MDPI AG,MDPI
Subject
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