Architecture, Chromatin and Gene Organization of Toxoplasma gondii Subtelomeres is a research paper published in Epigenomes (2022). On theSindex it has a DataRank of 0. It has been cited 27 times.
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Ministerio Nacional de Ciencia y Tecnología (MINCyT)
Grant: PICT 2015 1288
Ministerio Nacional de Ciencia y Tecnología (MINCyT)
Grant: PICT 2018 2434
Ministerio Nacional de Ciencia y Tecnología (MINCyT)
Grant: PIP 11220150100145CO
Ministerio Nacional de Ciencia y Tecnología (MINCyT)
Grant: NIH-NIAID 1R01AI129807
NIAID NIH HHS
Grant: R01 AI129807
National Institutes of Health
Grant: 5R01AI129807-05
Novel components of Homologous Recombination Repair in the parasite Toxoplasma gondii
FWCI
10.86
Citation Percentile
1.0%
Influential Citations
1
Citation Trend
Fields of Study
Keywords
Sustainable Development Goals
Additional file 1 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 1 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 2 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 2 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 3 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 3 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 4 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 4 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 5 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 5 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 6 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 6 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 9 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 9 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 24 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 22 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 23 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 23 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 25 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni
Additional file 22 of Subtelomeric plasticity contributes to gene family expansion in the human parasitic flatworm Schistosoma mansoni