Trackademia

Welcome to Trackademia

The idea behind Trackademia is to build on existing academic databases like Google Scholar and OpenAlex so that you can trust the data and use it for whatever you want. That comes down to two things.

More data, and more ways to use it. We aggregate publication data from every major source into a single dataset and add information pulled from faculty CVs. Then we let you slice it however you want: choose which sources to build from, write your own formulas, weight journals, adjust for department size.

More accurate, and honest about where it isn’t. We focus on a smaller set of schools so we can verify everything carefully. Faculty lists come from department websites rather than being inferred from publication records, so we know who should be in the data before we go looking. When we can’t find data on someone, we record the gap instead of dropping them. Every number comes with a coverage rate you can check against ground truth.

Everything in Trackademia is built from seven units. AI merges duplicate records across sources and tags each publication so these categories hold up:

  • Publication — citation counts, authors, journal, peer review status, and more
  • Publication group — versions of the same work combined into one entity, such as a working paper and the article it became
  • Academic
  • Department
  • University
  • Field
  • Journal

There are two modes. In Database mode you browse the underlying records and filter by any of the seven units. In Analytics mode you get graphs and comparisons, and you switch views to compare two departments, compare one department against the average of the others, or see them all at once. Tabs let you focus on a particular level of the data.

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Academic

Jeremy M. Baskin

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Academic

RankUnknown
As ofnot recorded
DepartmentCornell Chemistry
UniversityCornell
FieldChemistry
Scholarprofile

Totals

Publications84
Citations12,737
h-index39 · Scholar
Citations per year in post
Years in postno first year on the CV

Coverage

Works with a count84 of 84
Share100%

Top venues 45 venues

The 8 holding the most of these works; 37 more hold at least one.

Proceedings of the National Academy of Scienc…7
ACS Chemical Biology6
Journal of the American Chemical Society5
The Journal of Cell Biology5
Nature Cell Biology4
ACS Central Science3
Current Opinion in Chemical Biology3
Nature Chemical Biology3

Publications per year

Works this academic published in each year, by the year each work appeared; an undated work is in no year, and a work two colleagues wrote counts for each of them. The kind, works and year filters decide which works are here at all.

Citations per year

Citations received in each year, from this academic’s verified Scholar profile, which counts every citation to everything they ever wrote: no publication filter reaches this line - not the kinds, not the works switch, not the year window on publication - and no journal weight either. It is a profile total, so it does not match the works listed below.

Publications 84 works

Every work these filters select, most cited first and the works with no count at the end: a work nobody has a figure for is unknown, never a zero to be ranked among the works that have one, and it prints an em dash. Each figure is that work’s own citations - Scholar’s count where there is one, else OpenAlex’s - and is not weighted.

YearTitleVenueKindCitations
2007Copper-free click chemistry for dynamic in vivo imagingProceedings of the National Academy of Sciencesarticle2,550
2008In vivo imaging of membrane-associated glycans in developing zebrafishSciencearticle1,295
2006A comparative study of bioorthogonal reactions with azidesACS Chemical Biologyarticle1,090
2010Copper-free click chemistry in living animalsProceedings of the National Academy of Sciencesarticle873
2008Second-generation difluorinated cyclooctynes for copper-free click chemistryJournal of the American Chemical Societyarticle797
2004Copper−Diamine-Catalyzed N-Arylation of Pyrroles, Pyrazoles, Indazoles, Imidazoles, and TriazolesThe Journal of Organic Chemistryarticle778
2007Bioorthogonal click chemistry: Covalent labeling in living systemsQSAR & Combinatorial Sciencearticle481
2007Redirecting lipoic acid ligase for cell surface protein labeling with small-molecule probesNature Biotechnologyarticle480
2012PtdIns4P synthesis by PI4KIIIα at the plasma membrane and its impact on plasma membrane identityThe Journal of Cell Biologyarticle342
2002An efficient copper catalyst for the formation of sulfones from sulfinic acid salts and aryl iodidesOrganic Lettersarticle251
2010Live-cell imaging of cellular proteins by a strain-promoted azide–alkyne cycloadditionChemBioChemarticle225
2017In vitro anticancer activity and in vivo biodistribution of rhenium (I) tricarbonyl aqua complexesJournal of the American Chemical Societyarticle219
2006Metabolic labeling of glycans with azido sugars for visualization and glycoproteomicsMethods in enzymology on CD-ROM/Methods in enzymologyarticle208
2010Visualizing enveloping layer glycans during zebrafish early embryogenesisProceedings of the National Academy of Sciencesarticle194
2012Fluorophore targeting to cellular proteins via enzyme-mediated azide ligation and strain-promoted cycloadditionJournal of the American Chemical Societyarticle178
2016The leukodystrophy protein FAM126A (hyccin) regulates PtdIns (4) P synthesis at the plasma membraneNature Cell Biologyarticle159
2008Copper-free click chemistry for the in situ crosslinking of photodegradable star polymersChemical Communicationsarticle151
2009Selective enrichment of azide-containing peptides from complex mixturesJournal of Proteome Researcharticle138
2012Imaging the sialome during zebrafish development with copper-free click chemistryChemBioChemarticle137
2011Metabolic labeling of fucosylated glycans in developing zebrafishACS Chemical Biologyarticle136
2009Compositions and methods for modification of biomoleculesarticle126
2002A mild, convenient synthesis of sulfinic acid salts and sulfonamides from alkyl and aryl halidesTetrahedron Lettersarticle120
2015Plasticity of PI4KIIIα interactions at the plasma membraneEMBO Reportsarticle106
2010Copper-Free Click Chemistry: Bioorthogonal Reagents for Tagging Azidesarticle106
2019A real-time, click chemistry imaging approach reveals stimulus-specific subcellular locations of phospholipase D activityProceedings of the National Academy of Sciencesarticle103
2020Lipids: chemical tools for their synthesis, modification, and analysisChemical Society Reviewsarticle102
2017Architecture of the human PI4KIIIα lipid kinase complexProceedings of the National Academy of Sciencesarticle92
2017Clickable substrate mimics enable imaging of phospholipase D activityACS Central Sciencearticle92
2014Structural insights into assembly and regulation of the plasma membrane phosphatidylinositol 4-kinase complexDevelopmental Cellarticle80
2018Greasing the wheels of lipid biology with chemical toolsTrends in Biochemical Sciencesarticle77
2022Lipid expansion microscopyJournal of the American Chemical Societyarticle76
2020Spatiotemporal control of phosphatidic acid signaling with optogenetic, engineered phospholipase DsThe Journal of Cell Biologyarticle63
2016A chemoenzymatic strategy for imaging cellular phosphatidic acid synthesisAngewandte Chemiearticle63
2009Crosslinking studies of protein-protein interactions in nonribosomal peptide biosynthesisChemistry & Biologyarticle61
2022Photoaffinity labeling approaches to elucidate lipid–protein interactionsCurrent Opinion in Chemical Biologyarticle54
2021Optical Control of Phosphatidic Acid SignalingACS Central Sciencearticle44
2014Rare deleterious mutations of the gene EFR3A in autism spectrum disordersarticle42
2021The chemistry and biology of phosphatidylinositol 4-phosphate at the plasma membraneBioorganic & Medicinal Chemistryarticle39
2025Synthetic lipid biologyChemical Reviewsarticle35
2021PLEKHA4 Promotes Wnt/β-Catenin Signaling–Mediated G1–S Transition and Proliferation in MelanomaCancer Researcharticle35
2023Activity-based directed evolution of a membrane editor in mammalian cellsNature Chemistryarticle34
2022Imaging and editing the phospholipidomeAccounts of Chemical Researcharticle34
2022A chemoproteomics approach to profile phospholipase D-derived phosphatidyl alcohol interactionsACS Chemical Biologyarticle27
2021Induced proximity tools for precise manipulation of lipid signalingCurrent Opinion in Chemical Biologyarticle26
2017Thieme Chemistry Journals Awardees: Where Are They Now? One-Pot Synthesis of Versatile Buckle Units for Click Chemistry: 4, 8-Diazacyclononynes (DACNs)Synlettarticle26
2023NME3 binds to phosphatidic acid and mediates PLD6-induced mitochondrial tetheringThe Journal of Cell Biologyarticle25
2022A palmitoylation code controls PI4KIIIα complex formation and PI(4,5)P2 homeostasis at the plasma membraneJournal of Cell Sciencearticle24
2018Ex uno plura: differential labeling of phospholipid biosynthetic pathways with a single bioorthogonal alcoholBiochemistryarticle24
2024Mapping the global interactome of the ARF family reveals spatial organization in cellular signaling pathwaysJournal of Cell Sciencearticle22
2024Ultralow background membrane editors for spatiotemporal control of phosphatidic acid metabolism and signalingACS Central Sciencearticle22
2020Clickable galactose analogues for imaging glycans in developing zebrafishACS Chemical Biologyarticle22
2021Click chemistry–enabled CRISPR screening reveals GSK3 as a regulator of PLD signalingProceedings of the National Academy of Sciencesarticle21
2020IMPACT: Imaging phospholipase d activity with clickable alcohols via transphosphatidylationMethods in enzymology on CD-ROM/Methods in enzymologyarticle21
2020ESCRT-III and ER–PM contacts maintain lipid homeostasisMolecular Biology of the Cellarticle21
2022Click chemistry and optogenetic approaches to visualize and manipulate phosphatidic acid signalingJournal of Biological Chemistryarticle19
2020A MAP for PI3K activation on endosomes: CELL SIGNALLINGNature Cell Biologyarticle18
2025Emerging approaches for studying lipid dynamics, metabolism, and interactions in cellsAnnual Review of Biochemistryarticle17
2024Imaging interorganelle phospholipid transport by extended synaptotagmins using bioorthogonally tagged lipidsACS Chemical Biologyarticle13
2022Organelle-selective membrane labeling through phospholipase D-mediated transphosphatidylationJACS Auarticle13
2025Photoaffinity labeling reveals a role for the unusual triply acylated phospholipid N-Acylphosphatidylethanolamine in lactate homeostasisJournal of the American Chemical Societyarticle12
2024Wnt/β-catenin signaling within multiple cell types dependent upon kramer regulates Drosophila intestinal stem cell proliferationiSciencearticle12
2023Chemical approaches for measuring and manipulating lipids at the organelle levelarticle9
2024Super‐Resolution Imaging of Clickable Lipids With Lipid Expansion Microscopy (LExM)Current Protocolsarticle8
2022Proximity labeling reveals spatial regulation of the anaphase-promoting complex/cyclosome by a microtubule adaptorACS Chemical Biologyarticle8
2026Structural innovation in the evolution of plant chemical defenseProceedings of the National Academy of Sciencesarticle6
2024A phosphorylation-controlled switch confers cell cycle-dependent protein relocalizationNature Cell Biologyarticle6
2026Membrane editing with proximity labeling reveals regulators of lipid homeostasisNature Chemical Biologyarticle5
2025Barcode-free multiplex plasmid sequencing using Bayesian analysis and nanopore sequencingeLifearticle5
2024Interactome analysis identifies the role of BZW2 in promoting endoplasmic reticulum-mitochondria contact and mitochondrial metabolismMolecular & Cellular Proteomicsarticle5
2025sPLA2-IIA modifies progranulin deficiency phenotypes in mouse modelsarticle4
2025All roads lead to OSBP: Lipid metabolismNature Chemical Biologyarticle4
2021There is a lock for every key: MEMBRANE PROTEINSNature Chemical Biologyarticle4
2026Chemical biology approaches for revealing interorganelle lipid transport pathwaysarticle3
2025Discovery, Optimization, and Anticancer Activity of Lipid-Competitive Pleckstrin Homology Domain-Containing Family A InhibitorsJournal of Medicinal Chemistryarticle3
2023Adding a Chemical Biology Twist to CRISPR ScreeningIsrael Journal of Chemistryarticle3
2020For Wnt signaling, fucosylation of LRP6 is a bitter pillCell chemical biologyarticle3
2022Phosphoinositide phosphorylation sans kinase: MEMBRANE DYNAMICSNature Cell Biologyarticle2
2022PLEKHA5 regulates mitotic progression by promoting APC/C localization to microtubulesbioRxiv (Cold Spring Harbor Laboratory)article2
2026Phosphatidylserine and RhoB connect PI4P and PA metabolism to maintain plasma membrane identityThe Journal of Cell Biologyarticle1
2026Cullin-3 adaptor SHKBP1 inhibits SQSTM1/p62 oligomerization and Keap1 sequestrationThe Journal of Cell Biologyarticle1
2024Dynamic network regulating phosphatidic acid homeostasis revealed using membrane editing coupled to proximity labelingbioRxiv (Cold Spring Harbor Laboratory)article1
2022Organelle-selective membrane labeling through PLD-mediated transphosphatidylationChemRxivarticle1
2021A look at the lives of lipidsCurrent Opinion in Chemical Biologyarticle1
2019Getting a Grip on Greasy MoleculesTrends in Biochemical Sciencesarticle1