Mass spectrometry searches using MASST is a research paper published in Nature Biotechnology (2020). On theSindex it has a DataRank of 6.2. It has been cited 298 times, with 171 citing works in its 1-hop citation network.
Scored on demand from live citation data
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Base Score Contribution
0.855
From this paper's citation signal
Citation Network Contribution
5.4
From 132 citing papers with measurable signal
Ranked by each citer's contribution to N(p) — log1p(Cq) divided by its reference count — out of 171 citers.
Gordon and Betty Moore Foundation
Grant: GBMF7622
Alfred P. Sloan Foundation
Grant: N/A
U.S. Department of Health & Human Services | National Institutes of Health
Grant: CA211211
U.S. Department of Health & Human Services | National Institutes of Health
Grant: P41 GM103484
United States Department of Defense | United States Navy | Office of Naval Research
Grant: N00014-15-1-2809
United States Department of Justice | National Institute of Justice
Grant: 2015-DN-BX-K047
National Science Foundation
Grant: IOS-1656475
NCATS NIH HHS
Grant: UL1 TR001442
NIAID NIH HHS
Grant: R01 AI081923
NIAID NIH HHS
Grant: R01 AI113923
NCI NIH HHS
Grant: R03 CA211211
NCRR NIH HHS
Grant: S10 RR029121
NIDDK NIH HHS
Grant: K01 DK116917
NIEHS NIH HHS
Grant: P42 ES010337
NIGMS NIH HHS
Grant: R01 GM107550
NIDDK NIH HHS
Grant: R01 DK106419
National Institutes of Health
Grant: 3R01AI081923-03S1
Inhibitory Pathways Underlying Viral Persistance in vivo
National Institutes of Health
Grant: 8P41GM103484-05
Center for Computational Mass-Spectrometry
National Institutes of Health
Grant: 3P42ES010337-20S1
Harnessing Technological Innovation and Community-Engaged Implementation Science to Optimize COVID-19 Testing for Women and Children in Underserved Communities
National Institutes of Health
Grant: 2UL1TR001442-06
UC San Diego Clinical and Translational Research Institute
National Institutes of Health
Grant: 1S10RR029121-01
Synapt ion mobility mass spectrometer
National Institutes of Health
Grant: 5R01AI113923-07
Positive Immune-regulators During Chronic Viral Infections
National Institutes of Health
Grant: 5K01DK116917-04
Microbial contributions to the host metabolome
National Institutes of Health
Grant: 1R01DK106419-01
QUS Technology for Diagnosis and Grading of Hepatic Steatosis in NAFLD
National Institutes of Health
Grant: 1R03CA211211-01
Reuse of Public Metabolomics Data
Netherlands eScience Center ASDI eScience grant
FWCI
12.43
Citation Percentile
1.0%
Influential Citations
8
Citation Trend
Fields of Study
MeSH Terms
Keywords
Additional file 1 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 1 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 7 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 7 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 1 of Unraveling the metabolomic architecture of autism in a large Danish population-based cohort
Additional file 1 of Unraveling the metabolomic architecture of autism in a large Danish population-based cohort
Additional file 2 of Unraveling the metabolomic architecture of autism in a large Danish population-based cohort
Additional file 2 of Unraveling the metabolomic architecture of autism in a large Danish population-based cohort
Additional file 8 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 8 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 5 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 6 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 6 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 5 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 3 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 4 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 3 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 4 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 2 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites
Additional file 2 of Genome sequencing and molecular networking analysis of the wild fungus Anthostomella pinea reveal its ability to produce a diverse range of secondary metabolites