Programmable editing of a target base in genomic DNA without double-stranded DNA cleavage is a research paper published in Nature (2016). On theSindex it has a DataRank of 1.3. It has been cited 5,340 times.
Scored on demand from live citation data
Linked data & code
DataRank reads this dataset's downstream impact straight off the citation graph — no black box, no proprietary weighting. How is this computed?
FAIR checklist signals are shown for context only and do not affect DataRank scoring.
We only score data papers we can read in full — never from an abstract alone.
Base Score Contribution
1.3
From this paper's citation signal
Citation Network Contribution
0
Citation network not refreshed for this result
This paper's DataRank is currently driven only by its base citation score. Citation network data was not refreshed for this result.
Learn more about DataRank methodology →NIGMS NIH HHS
Grant: F32 GM 106601-2
NIBIB NIH HHS
Grant: R01 EB022376
NIGMS NIH HHS
Grant: T32 GM008313
NIGMS NIH HHS
Grant: F32 GM112366
NIGMS NIH HHS
Grant: R01 GM065400
NIGMS NIH HHS
Grant: F32 GM 112366-2
NIGMS NIH HHS
Grant: F32 GM106601
Howard Hughes Medical Institute
MeSH Terms
Additional file 1 of Development of an efficient and precise adenine base editor (ABE) with expanded target range in allotetraploid cotton (Gossypium hirsutum)
Additional file 1 of Development of an efficient and precise adenine base editor (ABE) with expanded target range in allotetraploid cotton (Gossypium hirsutum)
Additional file 6 of HDACi mediate UNG2 depletion, dysregulated genomic uracil and altered expression of oncoproteins and tumor suppressors in B- and T-cell lines
Additional file 6 of HDACi mediate UNG2 depletion, dysregulated genomic uracil and altered expression of oncoproteins and tumor suppressors in B- and T-cell lines
Additional file 1 of CRISPR/Cas9-deaminase enables robust base editing in Rhodobacter sphaeroides 2.4.1
Additional file 1 of CRISPR/Cas9-deaminase enables robust base editing in Rhodobacter sphaeroides 2.4.1
Additional file 1 of Engineering crops of the future: CRISPR approaches to develop climate-resilient and disease-resistant plants
Additional file 1 of Engineering crops of the future: CRISPR approaches to develop climate-resilient and disease-resistant plants
Additional file 1 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 1 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 2 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 2 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 3 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 4 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 3 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 4 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 5 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 5 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 6 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences
Additional file 6 of Harnessing A3G for efficient and selective C-to-T conversion at C-rich sequences