Novel Ciliate Genetic Code Variants Including the Reassignment of All Three Stop Codons to Sense Codons inCondylostoma magnum is a research paper published in Molecular Biology and Evolution (2016). On theSindex it has a DataRank of 3.7. It has been cited 118 times, with 111 citing works in its 1-hop citation network.
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Linked data & code
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Base Score Contribution
0.717
From this paper's citation signal
Citation Network Contribution
3.0
From 95 citing papers with measurable signal
NIGMS NIH HHS
Grant: R01 GM061603
Science Foundation Ireland
Grant: 12/IA/1335
Development of computational resources for the analysis of Genome Wide Information on Protein Synthesis (GWIPS).
FWCI
7.70
Citation Percentile
1.0%
Citation Trend
Fields of Study
MeSH Terms
Keywords
Sustainable Development Goals
Additional file 5 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 2 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 1 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 3 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 5 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 2 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 4 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 4 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 1 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance
Additional file 3 of Frameshift and wild-type proteins are often highly similar because the genetic code and genomes were optimized for frameshift tolerance