Gerasimos Langousis

Affiliations: 
University of California, Los Angeles, Los Angeles, CA 
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"Gerasimos Langousis"
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Vélez-Ramírez DE, Shimogawa MM, Ray SS, et al. (2021) APEX2 Proximity Proteomics Resolves Flagellum Subdomains and Identifies Flagellum Tip-Specific Proteins in Trypanosoma brucei. Msphere. 6
Langousis G, Shimogawa MM, Saada EA, et al. (2015) Loss of the BBSome perturbs endocytic trafficking and disrupts virulence of Trypanosoma brucei. Proceedings of the National Academy of Sciences of the United States of America
Freire ER, Vashisht AA, Malvezzi AM, et al. (2014) eIF4F-like complexes formed by cap-binding homolog TbEIF4E5 with TbEIF4G1 or TbEIF4G2 are implicated in post-transcriptional regulation in Trypanosoma brucei. Rna (New York, N.Y.). 20: 1272-86
Langousis G, Hill KL. (2014) Motility and more: the flagellum of Trypanosoma brucei. Nature Reviews. Microbiology. 12: 505-18
Saada EA, Kabututu ZP, Lopez M, et al. (2014) Insect stage-specific receptor adenylate cyclases are localized to distinct subdomains of the Trypanosoma brucei Flagellar membrane. Eukaryotic Cell. 13: 1064-76
Freire ER, Malvezzi AM, Vashisht AA, et al. (2014) Trypanosoma brucei translation initiation factor homolog EIF4E6 forms a tripartite cytosolic complex with EIF4G5 and a capping enzyme homolog. Eukaryotic Cell. 13: 896-908
Kisalu NK, Langousis G, Bentolila LA, et al. (2014) Mouse infection and pathogenesis by Trypanosoma brucei motility mutants. Cellular Microbiology. 16: 912-24
Nguyen HT, Sandhu J, Langousis G, et al. (2013) CMF22 is a broadly conserved axonemal protein and is required for propulsive motility in Trypanosoma brucei. Eukaryotic Cell. 12: 1202-13
Oberholzer M, Langousis G, Nguyen HT, et al. (2011) Independent analysis of the flagellum surface and matrix proteomes provides insight into flagellum signaling in mammalian-infectious Trypanosoma brucei. Molecular & Cellular Proteomics : McP. 10: M111.010538
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