Publications
20
Citations
266
Est. group size
~4
Recurring co-author estimate
Active years
7
Publishing since 2020
Typically publishes in teams of ~23 · 0% small-team papers (≤3 authors) · across 5 venues
- Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
Cancer Research · 2025
- Supplementary Materials and Methods from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S7 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S1 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S3 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Data from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S2 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S4 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S5 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Figure S6 from Recharacterization of the Tumor Suppressive Mechanism of RSL3 Identifies the Selenoproteome as a Druggable Pathway in Colorectal Cancer
2025
- Conditional lethality profiling reveals anticancer mechanisms of action and drug-nutrient interactions
Science Advances · 2024
- Conditional lethality profiling reveals anticancer mechanisms of action and drug-nutrient interactions
bioRxiv (Cold Spring Harbor Laboratory) · 2023
- CRISPR screens in physiologic medium reveal conditionally essential genes in human cells
Cell Metabolism · 2021
- CRISPR/Cas9 Screening to Identify Conditionally Essential Genes in Human Cell Lines
Methods in molecular biology · 2021
- CRISPR screens in physiologic medium reveal conditionally essential genes in human cells
bioRxiv (Cold Spring Harbor Laboratory) · 2020
- bioRxiv (Cold Spring Harbor Laboratory)×4
- Cell Metabolism×2
- Nature×1
- Cancer Research×1
- Science Advances×1
- Yuezhong Zhang
Nursing · University of Michigan
- Stephen L. DeAngelo
Nursing · University of Michigan
- Cristina Castillo
Nursing · University of Michigan
- Liang Zhao
Nursing · University of Michigan
- Hannah N. Bell
Nursing · University of Michigan
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 25, 2026.
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