Clément Oyeniran
Biochemistry, Genetics and Molecular Biology · The Ohio State University
Publications
48
Citations
691
Est. group size
—
Recurring co-author estimate
Active years
16
Publishing since 2010
This researcher's available public record centers on a single study examining how a protein called SMYD3 affects the sensitivity of small cell lung cancer cells to a type of DNA damage (alkylation damage), through chemical modifications (methylation and phosphorylation) of another protein, RNF113A. The listed publications are mostly supplementary figures, data files, and tables associated with this one research article rather than a broad set of distinct studies. Prospective students should note that the bibliographic record provided is limited and largely reflects components of a single published paper rather than a long-term, diverse research program.
Publication output was low and sporadic from 2017-2022, then spiked sharply in 2023 (22 items, mostly supplementary materials tied to one paper) before dropping again in 2024 and rising somewhat in 2025.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Figure 4 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Figure 2 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Figure 3 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Figure 5 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Figure 7 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Figure 1 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Figure 6 from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2025
- Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Supplementary Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Supplementary Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Supplementary Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Supplementary Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Supplementary Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Supplementary Data from SMYD3 Impedes Small Cell Lung Cancer Sensitivity to Alkylation Damage through RNF113A Methylation–Phosphorylation Cross-talk
2023
- Journal of Lipid Research×2
- bioRxiv (Cold Spring Harbor Laboratory)×2
- The Journal of Immunology×2
- Nature×1
- Journal of Allergy and Clinical Immunology×1
- Kenneth P. Nephew
Biochemistry, Genetics and Molecular Biology · Indiana University
- Min Chen
Biochemistry, Genetics and Molecular Biology · The Ohio State University
- Heather M. O’Hagan
Biochemistry, Genetics and Molecular Biology · Indiana University
- Ilaria Cosentini
Biochemistry, Genetics and Molecular Biology · The Ohio State University
- Ming Li
Biochemistry, Genetics and Molecular Biology · Indiana University
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 19, 2026.
Claim or correct this profile