A Novel Tool for the Generation of Conditional Knockouts To Study Gene Function across the Plasmodium falciparum Life Cycle
One of the major limitations in studying P. falciparum is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood...
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Published in | mBio Vol. 10; no. 5 |
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Main Authors | , , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
United States
American Society for Microbiology
17.09.2019
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Abstract | One of the major limitations in studying
P. falciparum
is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the
P. falciparum
life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites.
Plasmodium falciparum
has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the
P. falciparum
life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of
P. falciparum
is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free
P. falciparum
parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1.
IMPORTANCE
One of the major limitations in studying
P. falciparum
is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the
P. falciparum
life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites. |
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AbstractList | One of the major limitations in studying
P. falciparum
is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the
P. falciparum
life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites.
Plasmodium falciparum
has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the
P. falciparum
life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of
P. falciparum
is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free
P. falciparum
parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1. has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1. One of the major limitations in studying is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites. One of the major limitations in studying P. falciparum is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the P. falciparum life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites. Plasmodium falciparum has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the P. falciparum life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of P. falciparum is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free P. falciparum parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1. IMPORTANCE One of the major limitations in studying P. falciparum is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the P. falciparum life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites. Plasmodium falciparum has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the P. falciparum life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of P. falciparum is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free P. falciparum parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1.IMPORTANCE One of the major limitations in studying P. falciparum is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the P. falciparum life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites.Plasmodium falciparum has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the P. falciparum life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of P. falciparum is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free P. falciparum parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1.IMPORTANCE One of the major limitations in studying P. falciparum is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the P. falciparum life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites. ABSTRACT Plasmodium falciparum has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all different stages of the P. falciparum life cycle is urgently required for clinical development of tools for malaria control and eradication. However, the study of P. falciparum is limited by the inability to genetically modify the parasite throughout its life cycle with the currently available genetic tools. Here, we describe the detailed characterization of a new marker-free P. falciparum parasite line that expresses rapamycin-inducible Cre recombinase across the full life cycle. Using this parasite line, we were able to conditionally delete the essential invasion ligand AMA1 in three different developmental stages for the first time. We further confirm efficient gene deletion by targeting the nonessential kinase FIKK7.1. IMPORTANCE One of the major limitations in studying P. falciparum is that so far only asexual stages are amenable to rapid conditional genetic modification. The most promising drug targets and vaccine candidates, however, have been refractory to genetic modification because they are essential during the blood stage or for transmission in the mosquito vector. This leaves a major gap in our understanding of parasite proteins in most life cycle stages and hinders genetic validation of drug and vaccine targets. Here, we describe a method that supports conditional gene deletion across the P. falciparum life cycle for the first time. We demonstrate its potential by deleting essential and nonessential genes at different parasite stages, which opens up completely new avenues for the study of malaria and drug development. It may also allow the realization of novel vaccination strategies using attenuated parasites. |
Author | Yang, Annie S. P. Suárez-Cortés, Pablo Belda, Hugo Tibúrcio, Marta Yahata, Kazuhide Baumgarten, Sebastian Sauerwein, Robert W. Treeck, Moritz van de Vegte-Bolmer, Marga van Gemert, Geert-Jan van Waardenburg, Youri Levashina, Elena A. |
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Cites_doi | 10.1371/journal.pone.0015121 10.1074/jbc.M311331200 10.1126/science.aat9446 10.1371/journal.pone.0168279 10.1371/journal.ppat.1000941 10.1111/cmi.12287 10.1093/nar/22.15.3099 10.1016/0035-9203(82)90289-9 10.1128/AAC.00325-13 10.1017/S0031182000062065 10.1186/1475-2875-13-136 10.1016/j.chom.2011.10.012 10.1186/1471-2164-12-587 10.1111/mmi.12206 10.1371/journal.pone.0011747 10.1371/journal.pone.0073783 10.1016/j.chom.2015.09.007 10.1126/science.1103717 10.1038/srep21800 10.1038/nmeth1132 10.1016/j.chom.2016.06.004 10.1038/nmeth.4223 10.1074/jbc.M116.740506 10.1038/s41586-018-0327-4 10.1371/journal.ppat.1000322 10.1038/nprot.2016.096 10.1038/nmeth.2075 10.1126/science.1235264 10.1016/s0092-8674(04)00173-4 10.1007/978-1-60761-688-7_3 10.1002/pmic.200800404 10.1038/ncomms10727 10.1038/ncomms6329 10.1126/science.781840 10.1111/cmi.12745 10.1016/j.chom.2012.10.016 10.1371/journal.pbio.1002255 10.1038/nrmicro3450 |
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Keywords | molecular methods Plasmodium falciparum reverse genetic analysis malaria |
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References | e_1_3_2_26_2 e_1_3_2_27_2 e_1_3_2_28_2 e_1_3_2_29_2 e_1_3_2_41_2 e_1_3_2_40_2 e_1_3_2_20_2 e_1_3_2_21_2 e_1_3_2_22_2 e_1_3_2_23_2 e_1_3_2_24_2 e_1_3_2_25_2 e_1_3_2_9_2 e_1_3_2_15_2 e_1_3_2_38_2 e_1_3_2_8_2 e_1_3_2_16_2 e_1_3_2_7_2 e_1_3_2_17_2 e_1_3_2_6_2 e_1_3_2_18_2 e_1_3_2_39_2 e_1_3_2_19_2 e_1_3_2_30_2 Ponnudurai T (e_1_3_2_37_2) 1981; 33 e_1_3_2_32_2 e_1_3_2_10_2 e_1_3_2_31_2 e_1_3_2_5_2 e_1_3_2_11_2 e_1_3_2_34_2 e_1_3_2_4_2 e_1_3_2_12_2 e_1_3_2_33_2 e_1_3_2_3_2 e_1_3_2_13_2 e_1_3_2_36_2 e_1_3_2_14_2 e_1_3_2_35_2 World Health Organization (e_1_3_2_2_2) 2017 |
References_xml | – ident: e_1_3_2_12_2 doi: 10.1371/journal.pone.0015121 – ident: e_1_3_2_24_2 doi: 10.1074/jbc.M311331200 – ident: e_1_3_2_4_2 doi: 10.1126/science.aat9446 – ident: e_1_3_2_19_2 doi: 10.1371/journal.pone.0168279 – ident: e_1_3_2_22_2 doi: 10.1371/journal.ppat.1000941 – ident: e_1_3_2_15_2 doi: 10.1111/cmi.12287 – ident: e_1_3_2_20_2 doi: 10.1093/nar/22.15.3099 – ident: e_1_3_2_38_2 doi: 10.1016/0035-9203(82)90289-9 – ident: e_1_3_2_35_2 doi: 10.1128/AAC.00325-13 – ident: e_1_3_2_39_2 doi: 10.1017/S0031182000062065 – ident: e_1_3_2_40_2 doi: 10.1186/1475-2875-13-136 – ident: e_1_3_2_23_2 doi: 10.1016/j.chom.2011.10.012 – ident: e_1_3_2_32_2 doi: 10.1186/1471-2164-12-587 – ident: e_1_3_2_13_2 doi: 10.1111/mmi.12206 – volume-title: World malaria report year: 2017 ident: e_1_3_2_2_2 – ident: e_1_3_2_26_2 doi: 10.1371/journal.pone.0011747 – ident: e_1_3_2_7_2 doi: 10.1371/journal.pone.0073783 – ident: e_1_3_2_16_2 doi: 10.1016/j.chom.2015.09.007 – ident: e_1_3_2_30_2 doi: 10.1126/science.1103717 – ident: e_1_3_2_14_2 doi: 10.1038/srep21800 – ident: e_1_3_2_10_2 doi: 10.1038/nmeth1132 – ident: e_1_3_2_17_2 doi: 10.1016/j.chom.2016.06.004 – ident: e_1_3_2_11_2 doi: 10.1038/nmeth.4223 – ident: e_1_3_2_18_2 doi: 10.1074/jbc.M116.740506 – volume: 33 start-page: 50 year: 1981 ident: e_1_3_2_37_2 article-title: Chloroquine sensitivity of isolates of Plasmodium falciparum adapted to in vitro culture publication-title: Trop Geogr Med – ident: e_1_3_2_3_2 doi: 10.1038/s41586-018-0327-4 – ident: e_1_3_2_21_2 doi: 10.1371/journal.ppat.1000322 – ident: e_1_3_2_33_2 doi: 10.1038/nprot.2016.096 – ident: e_1_3_2_36_2 doi: 10.1038/nmeth.2075 – ident: e_1_3_2_28_2 doi: 10.1126/science.1235264 – ident: e_1_3_2_27_2 doi: 10.1016/s0092-8674(04)00173-4 – ident: e_1_3_2_41_2 doi: 10.1007/978-1-60761-688-7_3 – ident: e_1_3_2_31_2 doi: 10.1002/pmic.200800404 – ident: e_1_3_2_9_2 doi: 10.1038/ncomms10727 – ident: e_1_3_2_8_2 doi: 10.1038/ncomms6329 – ident: e_1_3_2_34_2 doi: 10.1126/science.781840 – ident: e_1_3_2_25_2 doi: 10.1111/cmi.12745 – ident: e_1_3_2_6_2 doi: 10.1016/j.chom.2012.10.016 – ident: e_1_3_2_29_2 doi: 10.1371/journal.pbio.1002255 – ident: e_1_3_2_5_2 doi: 10.1038/nrmicro3450 |
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Snippet | One of the major limitations in studying
P. falciparum
is that so far only asexual stages are amenable to rapid conditional genetic modification. The most... has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential genes at all... Plasmodium falciparum has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of essential... ABSTRACT Plasmodium falciparum has a complex life cycle that involves interaction with multiple tissues inside the human and mosquito hosts. Identification of... |
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SubjectTerms | Gene Deletion Gene Knockout Techniques Genes, Protozoan Host-Microbe Biology Integrases - genetics Life Cycle Stages - genetics malaria Molecular Biology - methods molecular methods Mosquito Vectors Phenotype Plasmodium falciparum Plasmodium falciparum - enzymology Plasmodium falciparum - genetics reverse genetic analysis Sirolimus |
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Title | A Novel Tool for the Generation of Conditional Knockouts To Study Gene Function across the Plasmodium falciparum Life Cycle |
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