Overcoming innate immune barriers that impede AAV gene therapy vectors is a research paper published in Journal of Clinical Investigation (2021). On theSindex it has a DataRank of 0. It has been cited 215 times.
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National Institutes of Health
Grant: 5UG3HL147367-03
Develop combinatorial non-viral and viral CRISPR delivery for lung diseases
National Institutes of Health
Grant: 5R37AI067497-12
Gene Regulation in Innate Immunity
National Institutes of Health
Grant: 6U19AI149646-03
An AAV-mediated functional cure and its impact on the reservoir
National Institutes of Health
Grant: 5R01AI141181-04
A novel vaccine against multidrug-resistant gonorrhea
National Institutes of Health
Grant: 1P01AI100263-01
A Gene therapeutic approach to stable suppression of HIV-1 replication
National Institutes of Health
Grant: 1R01HL097088-01A2
Next Generation of Recombinant AAV Serotype Vectors for Gene Therapy
National Institutes of Health
Grant: 5R01NS076991-07
Novel Gene Therapy Strategies for Canavan Disease
National Institutes of Health
Grant: 5R01AI128358-04
Regulation of Lupus by Cytosolic DNA Sensors
National Institutes of Health
Grant: 5R33AI136007-04
Gonorrhea and HIV prevention with intravaginal ring drug delivery
National Institutes of Health
Grant: 5P01HL131471-02
New Approaches to Gene Therapy for Alpha-1 Antitrypsin Deficiency
FWCI
21.20
Citation Percentile
1.0%
Citation Trend
Fields of Study
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Sustainable Development Goals
Additional file 1 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 1 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 2 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 2 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 3 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 3 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 4 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 4 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 5 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 5 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 6 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 6 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 7 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 7 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 8 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 8 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 9 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 9 of Truncated mini LRP1 transports cargo from luminal to basolateral side across the blood brain barrier
Additional file 1 of Sbno1 mediates cell–cell communication between neural stem cells and microglia through small extracellular vesicles
Additional file 1 of Sbno1 mediates cell–cell communication between neural stem cells and microglia through small extracellular vesicles