High-throughput phenotyping using parallel sequencing of RNA interference targets in the African trypanosome

被引:353
作者
Alsford, Sam [1 ]
Turner, Daniel J. [2 ]
Obado, Samson O. [1 ]
Sanchez-Flores, Alejandro [2 ]
Glover, Lucy [1 ]
Berriman, Matthew [2 ]
Hertz-Fowler, Christiane [2 ]
Horn, David [1 ]
机构
[1] Univ London London Sch Hyg & Trop Med, London WC1E 7HT, England
[2] Wellcome Trust Sanger Inst, Cambridge CB10 1SA, England
基金
英国惠康基金;
关键词
ANTIGENIC VARIATION; RIBOSOMAL-RNA; BRUCEI; GENOME; EXPRESSION; DIFFERENTIATION; LIBRARY; GENES; DNA; TRANSFORMATION;
D O I
10.1101/gr.115089.110
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
African trypanosomes are major pathogens of humans and livestock and represent a model for studies of unusual protozoal biology. We describe a high-throughput phenotyping approach termed RNA interference (RNAi) target sequencing, or RIT-seq that, using Illumina sequencing, maps fitness-costs associated with RNAi. We scored the abundance of >90,000 integrated RNAi targets recovered from trypanosome libraries before and after induction of RNAi. Data are presented for 7435 protein coding sequences, >99% of a non-redundant set in the Trypanosoma brucei genome. Analysis of bloodstream and insect life-cycle stages and differentiated libraries revealed genome-scale knockdown profiles of growth and development, linking thousands of previously uncharacterized and "hypothetical'' genes to essential functions. Genes underlying prominent features of trypanosome biology are highlighted, including the constitutive emphasis on post-transcriptional gene expression control, the importance of flagellar motility and glycolysis in the bloodstream, and of carboxylic acid metabolism and phosphorylation during differentiation from the bloodstream to the insect stage. The current data set also provides much needed genetic validation to identify new drug targets. RIT-seq represents a versatile new tool for genome-scale functional analyses and for the exploitation of genome sequence data.
引用
收藏
页码:915 / 924
页数:10
相关论文
共 47 条
[1]   A doubly inducible system for RNA interference and rapid RNAi plasmid construction in Trypanosoma brucei [J].
Alibu, VP ;
Storm, L ;
Haile, S ;
Clayton, C ;
Horn, D .
MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 2005, 139 (01) :75-82
[2]   Tagging a T-brucei RRNA locus improves stable transfection efficiency and circumvents inducible expression position effects [J].
Alsford, S ;
Kawahara, T ;
Glover, L ;
Horn, D .
MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 2005, 144 (02) :142-148
[3]   Single-locus targeting constructs for reliable regulated RNAi and transgene expression in Trypanosoma brucei [J].
Alsford, Sam ;
Horn, David .
MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 2008, 161 (01) :76-79
[4]   Accurate whole human genome sequencing using reversible terminator chemistry [J].
Bentley, David R. ;
Balasubramanian, Shankar ;
Swerdlow, Harold P. ;
Smith, Geoffrey P. ;
Milton, John ;
Brown, Clive G. ;
Hall, Kevin P. ;
Evers, Dirk J. ;
Barnes, Colin L. ;
Bignell, Helen R. ;
Boutell, Jonathan M. ;
Bryant, Jason ;
Carter, Richard J. ;
Cheetham, R. Keira ;
Cox, Anthony J. ;
Ellis, Darren J. ;
Flatbush, Michael R. ;
Gormley, Niall A. ;
Humphray, Sean J. ;
Irving, Leslie J. ;
Karbelashvili, Mirian S. ;
Kirk, Scott M. ;
Li, Heng ;
Liu, Xiaohai ;
Maisinger, Klaus S. ;
Murray, Lisa J. ;
Obradovic, Bojan ;
Ost, Tobias ;
Parkinson, Michael L. ;
Pratt, Mark R. ;
Rasolonjatovo, Isabelle M. J. ;
Reed, Mark T. ;
Rigatti, Roberto ;
Rodighiero, Chiara ;
Ross, Mark T. ;
Sabot, Andrea ;
Sankar, Subramanian V. ;
Scally, Aylwyn ;
Schroth, Gary P. ;
Smith, Mark E. ;
Smith, Vincent P. ;
Spiridou, Anastassia ;
Torrance, Peta E. ;
Tzonev, Svilen S. ;
Vermaas, Eric H. ;
Walter, Klaudia ;
Wu, Xiaolin ;
Zhang, Lu ;
Alam, Mohammed D. ;
Anastasi, Carole .
NATURE, 2008, 456 (7218) :53-59
[5]   The genome of the African trypanosome Trypanosoma brucei [J].
Berriman, M ;
Ghedin, E ;
Hertz-Fowler, C ;
Blandin, G ;
Renauld, H ;
Bartholomeu, DC ;
Lennard, NJ ;
Caler, E ;
Hamlin, NE ;
Haas, B ;
Böhme, W ;
Hannick, L ;
Aslett, MA ;
Shallom, J ;
Marcello, L ;
Hou, LH ;
Wickstead, B ;
Alsmark, UCM ;
Arrowsmith, C ;
Atkin, RJ ;
Barron, AJ ;
Bringaud, F ;
Brooks, K ;
Carrington, M ;
Cherevach, I ;
Chillingworth, TJ ;
Churcher, C ;
Clark, LN ;
Corton, CH ;
Cronin, A ;
Davies, RM ;
Doggett, J ;
Djikeng, A ;
Feldblyum, T ;
Field, MC ;
Fraser, A ;
Goodhead, I ;
Hance, Z ;
Harper, D ;
Harris, BR ;
Hauser, H ;
Hostetter, J ;
Ivens, A ;
Jagels, K ;
Johnson, D ;
Johnson, J ;
Jones, K ;
Kerhornou, AX ;
Koo, H ;
Larke, N .
SCIENCE, 2005, 309 (5733) :416-422
[6]   Artemis and ACT: viewing, annotating and comparing sequences stored in a relational database [J].
Carver, Tim ;
Berriman, Matthew ;
Tivey, Adrian ;
Patel, Chinmay ;
Bohme, Ulrike ;
Barrell, Barclay G. ;
Parkhill, Julian ;
Rajandream, Marie-Adele .
BIOINFORMATICS, 2008, 24 (23) :2672-2676
[7]   Development of RNA interference revertants in Trypanosoma brucei cell lines generated with a double stranded RNA expression construct driven by two opposing promoters [J].
Chen, YL ;
Hung, CH ;
Burderer, T ;
Lee, GSM .
MOLECULAR AND BIOCHEMICAL PARASITOLOGY, 2003, 126 (02) :275-279
[8]   Identification of Attractive Drug Targets in Neglected-Disease Pathogens Using an In Silico Approach [J].
Crowther, Gregory J. ;
Shanmugam, Dhanasekaran ;
Carmona, Santiago J. ;
Doyle, Maria A. ;
Hertz-Fowler, Christiane ;
Berriman, Matthew ;
Nwaka, Solomon ;
Ralph, Stuart A. ;
Roos, David S. ;
Van Voorhis, Wesley C. ;
Agueero, Fernan .
PLOS NEGLECTED TROPICAL DISEASES, 2010, 4 (08)
[9]   A surface transporter family conveys the trypanosome differentiation signal [J].
Dean, Samuel ;
Marchetti, Rosa ;
Kirk, Kiaran ;
Matthews, Keith R. .
NATURE, 2009, 459 (7244) :213-U93
[10]   Common strategies for antigenic variation by bacterial, fungal and protozoan pathogens [J].
Deitsch, Kirk W. ;
Lukehart, Sheila A. ;
Stringer, James R. .
NATURE REVIEWS MICROBIOLOGY, 2009, 7 (07) :493-503