Timothy C. Kenny

869 total citations · 1 hit paper
21 papers, 520 citations indexed

About

Timothy C. Kenny is a scholar working on Molecular Biology, Cell Biology and Clinical Biochemistry. According to data from OpenAlex, Timothy C. Kenny has authored 21 papers receiving a total of 520 indexed citations (citations by other indexed papers that have themselves been cited), including 14 papers in Molecular Biology, 5 papers in Cell Biology and 4 papers in Clinical Biochemistry. Recurrent topics in Timothy C. Kenny's work include Mitochondrial Function and Pathology (9 papers), Endoplasmic Reticulum Stress and Disease (5 papers) and Metabolism and Genetic Disorders (4 papers). Timothy C. Kenny is often cited by papers focused on Mitochondrial Function and Pathology (9 papers), Endoplasmic Reticulum Stress and Disease (5 papers) and Metabolism and Genetic Disorders (4 papers). Timothy C. Kenny collaborates with scholars based in United States, Italy and Singapore. Timothy C. Kenny's co-authors include Doris Germain, Maria Gomez-Jenkins, Amanda J. Craig, Augusto Villanueva, Giovanni Manfredi, Kıvanç Birsoy, Edmund C. Jenkins, Artem Khan, Richard K. Hite and Yuyang Liu and has published in prestigious journals such as Nature, Cell and Nature Genetics.

In The Last Decade

Timothy C. Kenny

21 papers receiving 516 citations

Hit Papers

Cellular and organismal function of choline metabolism 2025 2026 2025 4 8 12

Peers — A (Enhanced Table)

Peers by citation overlap · career bar shows stage (early→late) cites · hero ref

Name h Career Trend Papers Cites
Timothy C. Kenny United States 13 350 98 93 71 60 21 520
Priyanka Maiti United States 11 750 2.1× 77 0.8× 127 1.4× 69 1.0× 125 2.1× 14 836
Douglas F. Dluzen United States 12 400 1.1× 238 2.4× 46 0.5× 46 0.6× 113 1.9× 18 639
John Marentette United States 12 289 0.8× 117 1.2× 34 0.4× 80 1.1× 54 0.9× 27 540
Claire Hughes United Kingdom 9 449 1.3× 75 0.8× 95 1.0× 44 0.6× 53 0.9× 14 740
Krishna Seshu Tummala Spain 8 286 0.8× 101 1.0× 93 1.0× 244 3.4× 60 1.0× 9 727
Ilias Gkikas Greece 6 250 0.7× 69 0.7× 32 0.3× 201 2.8× 58 1.0× 9 442
Patricia de la Cruz‐Ojeda Spain 12 355 1.0× 126 1.3× 38 0.4× 83 1.2× 58 1.0× 21 523
Maya Z. Springer United States 5 277 0.8× 75 0.8× 62 0.7× 197 2.8× 45 0.8× 6 416
Alexandra Kukat Germany 11 661 1.9× 43 0.4× 139 1.5× 81 1.1× 156 2.6× 12 773
Katharina Senft Germany 7 523 1.5× 34 0.3× 134 1.4× 67 0.9× 138 2.3× 8 617

Countries citing papers authored by Timothy C. Kenny

Since Specialization
Citations

This map shows the geographic impact of Timothy C. Kenny's research. It shows the number of citations coming from papers published by authors working in each country. You can also color the map by specialization and compare the number of citations received by Timothy C. Kenny with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Timothy C. Kenny more than expected).

Fields of papers citing papers by Timothy C. Kenny

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Timothy C. Kenny. Nodes represent research fields, and links connect fields that are likely to share authors. Colored nodes show fields that tend to cite the papers produced by Timothy C. Kenny. The network helps show where Timothy C. Kenny may publish in the future.

Co-authorship network of co-authors of Timothy C. Kenny

This figure shows the co-authorship network connecting the top 25 collaborators of Timothy C. Kenny. A scholar is included among the top collaborators of Timothy C. Kenny based on the total number of citations received by their joint publications. Widths of edges represent the number of papers authors have co-authored together. Node borders signify the number of papers an author published with Timothy C. Kenny. Timothy C. Kenny is excluded from the visualization to improve readability, since they are connected to all nodes in the network.

All Works

20 of 20 papers shown
1.
Khan, Artem, et al.. (2025). Solute carriers: The gatekeepers of metabolism. Cell. 188(4). 869–884. 7 indexed citations
2.
Kenny, Timothy C., et al.. (2025). Cellular and organismal function of choline metabolism. Nature Metabolism. 7(1). 35–52. 12 indexed citations breakdown →
3.
Kenny, Timothy C., et al.. (2024). Structural basis of lipid head group entry to the Kennedy pathway by FLVCR1. Nature. 629(8012). 710–716. 19 indexed citations
4.
Kenny, Timothy C. & Kıvanç Birsoy. (2024). Mitochondria and Cancer. Cold Spring Harbor Perspectives in Medicine. 14(12). a041534–a041534. 7 indexed citations
5.
Khan, Artem, Gökhan Ünlü, Yuyang Liu, et al.. (2024). Metabolic gene function discovery platform GeneMAP identifies SLC25A48 as necessary for mitochondrial choline import. Nature Genetics. 56(8). 1614–1623. 14 indexed citations
6.
Kenny, Timothy C., Artem Khan, Søren Heissel, et al.. (2023). Integrative genetic analysis identifies FLVCR1 as a plasma-membrane choline transporter in mammals. Cell Metabolism. 35(6). 1057–1071.e12. 34 indexed citations
7.
Young, Richard A., et al.. (2022). Ambulatory Medication Safety in Primary Care: A Systematic Review. The Journal of the American Board of Family Medicine. 35(3). 610–628. 8 indexed citations
8.
Earleywine, Mitch, et al.. (2022). Scoping Review of Experiential Measures from Psychedelic Research and Clinical Trials. Journal of Psychoactive Drugs. 55(4). 501–517. 13 indexed citations
9.
Kenny, Timothy C., et al.. (2020). Clinical Outreach: Stepping Out of the Library. Journal of Hospital Librarianship. 20(2). 133–145. 2 indexed citations
10.
Jenkins, Edmund C., Maria Gomez-Jenkins, Gabriella Casalena, et al.. (2020). Proteasome mapping reveals sexual dimorphism in tissue‐specific sensitivity to protein aggregations. EMBO Reports. 21(4). e48978–e48978. 29 indexed citations
11.
Jenkins, Edmund C., Gabriella Casalena, Maria Gomez-Jenkins, et al.. (2020). Raloxifene is a Female-specific Proteostasis Therapeutic in the Spinal Cord. Endocrinology. 162(2). 5 indexed citations
12.
Gomez-Jenkins, Maria, et al.. (2019). SOD1 is essential for oncogene-driven mammary tumor formation but dispensable for normal development and proliferation. Oncogene. 38(29). 5751–5765. 49 indexed citations
13.
Kenny, Timothy C., Maria Gomez-Jenkins, & Doris Germain. (2019). Mitohormesis, UPRmt, and the Complexity of Mitochondrial DNA Landscapes in Cancer. Cancer Research. 79(24). 6057–6066. 48 indexed citations
14.
Kenny, Timothy C., Amanda J. Craig, Augusto Villanueva, & Doris Germain. (2019). Mitohormesis Primes Tumor Invasion and Metastasis. Cell Reports. 27(8). 2292–2303.e6. 77 indexed citations
15.
Kenny, Timothy C., Hank Schmidt, Kerin B. Adelson, et al.. (2017). Patient-derived Interstitial Fluids and Predisposition to Aggressive Sporadic Breast Cancer through Collagen Remodeling and Inactivation of p53. Clinical Cancer Research. 23(18). 5446–5459. 17 indexed citations
16.
Kenny, Timothy C. & Doris Germain. (2017). From discovery of the CHOP axis and targeting ClpP to the identification of additional axes of the UPRmt driven by the estrogen receptor and SIRT3. Journal of Bioenergetics and Biomembranes. 49(4). 297–305. 25 indexed citations
17.
Kenny, Timothy C., Giovanni Manfredi, & Doris Germain. (2017). The Mitochondrial Unfolded Protein Response as a Non-Oncogene Addiction to Support Adaptation to Stress during Transformation in Cancer and Beyond. Frontiers in Oncology. 7. 159–159. 26 indexed citations
18.
Kenny, Timothy C., Peter C. Hart, Moira Ragazzi, et al.. (2017). Selected mitochondrial DNA landscapes activate the SIRT3 axis of the UPRmt to promote metastasis. Oncogene. 36(31). 4393–4404. 79 indexed citations
19.
Kenny, Timothy C., et al.. (2016). Widespread Implications of ACOSOG Z0011: Effect on Total Mastectomy Patients. The American Surgeon. 82(1). 53–58. 11 indexed citations
20.
Papa, Luena, et al.. (2015). Mitochondrial dysfunction in breast cancer. 137–137. 2 indexed citations

Rankless uses publication and citation data sourced from OpenAlex, an open and comprehensive bibliographic database. While OpenAlex provides broad and valuable coverage of the global research landscape, it—like all bibliographic datasets—has inherent limitations. These include incomplete records, variations in author disambiguation, differences in journal indexing, and delays in data updates. As a result, some metrics and network relationships displayed in Rankless may not fully capture the entirety of a scholar's output or impact.

Explore authors with similar magnitude of impact

Rankless by CCL
2026