GDUFA Research Outcomes
Complex Routes of Delivery
The Generic Drug User Fee Amendments (GDUFA) science and research program facilitates patient access to high-quality generic drugs by advancing research in areas where generic product development has been limited or prevented due to knowledge gaps about the kind of evidence needed to demonstrate that a generic product is the same as its brand name reference listed drug product. Leaders and experts across the generic industry collaborate to establish GDUFA research priorities for the most pressing scientific challenges they face with generic product development. Scientists and clinicians from industry, academia, and the U.S. Food and Drug Administration (FDA) strategically design research in these areas so that the outcomes help to build scientific bridges across the knowledge gaps, thereby facilitating pharmaceutical manufacturers to develop generic drugs that were previously challenging or unfeasible to develop.
A major GDUFA science and research priority is to enhance the efficiency of bioequivalence (BE) approaches for complex routes of delivery, such as locally-acting gastrointestinal (GI), buccal, sublingual, inhalation, nasal, ophthalmic, otic, and topical dermatological, vaginal and rectal products. The advancement of research in this area focuses on understanding of how ingredients and other aspects of a formulation influence drug absorption via complex routes of delivery, building in vivo predictive models and identifying corresponding failure modes for BE, to support the development of efficient BE approaches for these products.
Outcomes including scientific publications, presentations, and posters arising from GDUFA-funded research in this priority area are available in this section.
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In Silico and Experimental Methods to Support Generic Nasal Drug Product (NDP) Development
Walenga, Ross; Dhapare, Sneha; Newman, Bryan; Babiskin, Andrew; Zhao, Liang
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Transepidermal Water Loss and Skin Conductance as Barrier Integrity Tests
Zhang, Qian; Murawsky, Michael; Lacount, Terri; Kasting, Gerald; Li, Kevin
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Ocular Physiologically Based Pharmacokinetic Modeling for Ointment Formulations
Lemerdy, Maxime; Spires, Jessica; Lukacova, Viera; Tan, Ming Liang; Babiskin, Andrew; Xu, Xiaoming; Zhao, Liang; Bolger, Michael
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Effects of Realistic In Vitro Test Factors on the Aerosol Properties of Metered-Dose Inhalers (MDIs)
Dhapare, Sneha; Mohan, Abhinav; Newman, Bryan; Svensson, Marten; Elfman, Peter; Sandell, Dennis; Winner, Larry; Berger, Simon; Bulitta, Jurgen; Hochhaus, Guenther
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Current Inhalers Delivery very Small Doses to the Lower Tracheobronchial Airways: Assessment of Healthy and Constricted Lungs
Longest, Worth
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Clinically Relevant in Vitro Performance Tests for Powder Inhalers
Byron, Peter
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A Kinetic Approach to Determining Drug Distribution in Complex Biphasic Systems
Dong, Yixuan; Hengst, Leanna; Patel, Deval; Hunt, Robert; Qu, Haiou; Choi, Stephanie; Ashraf, Muhammad; Cruz, Celia; Xu, Xiaoming
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Application of the Dose-Scale Method for Pharmacodynamic Bioequivalence Studies of Orally Inhaled Drug Products
Kim, Stephanie; Lee, Sau; Lionberger, Robert
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A Quasi-3D Compartmental Multi-Scale Approach to Detect and Quantify Diseased Regional Lung Constriction Using Spirometry Data
Kannan, Ravishekar; Singh, Narender; Przekwas, Andrzej
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Modifications To The Multiple-Path Particle Dosimetry Model For Improved Predictions Of Lung Deposition From Metered Dose Inhalers
Schroeter, Jeffry; Asgharian, Bahman; Price, Owen; Holt, Jay; Hickey, Anthony