Anna Greka

9.0k total citations · 3 hit papers
48 papers, 4.3k citations indexed

About

Anna Greka is a scholar working on Molecular Biology, Nephrology and Sensory Systems. According to data from OpenAlex, Anna Greka has authored 48 papers receiving a total of 4.3k indexed citations (citations by other indexed papers that have themselves been cited), including 33 papers in Molecular Biology, 19 papers in Nephrology and 12 papers in Sensory Systems. Recurrent topics in Anna Greka's work include Renal Diseases and Glomerulopathies (18 papers), Ion Channels and Receptors (12 papers) and Ion Transport and Channel Regulation (9 papers). Anna Greka is often cited by papers focused on Renal Diseases and Glomerulopathies (18 papers), Ion Channels and Receptors (12 papers) and Ion Transport and Channel Regulation (9 papers). Anna Greka collaborates with scholars based in United States, Germany and South Korea. Anna Greka's co-authors include Peter Mündel, David E. Clapham, Vassilios J. Bezzerides, Suhas A. Kotecha, I. Scott Ramsey, Jillian L. Shaw, Haejin Yoon, Marcia C. Haigis, Elena Oancea and Betsy Navarro and has published in prestigious journals such as Nature, Science and Proceedings of the National Academy of Sciences.

In The Last Decade

Anna Greka

47 papers receiving 4.3k citations

Hit Papers

The mitochondria-targeted... 2016 2026 2019 2022 2016 2021 2021 100 200 300 400

Author Peers

Peers are selected by citation overlap in the author's most active subfields. citations · hero ref

Author Last Decade Papers Cites
Anna Greka 2.3k 1.3k 944 515 467 48 4.3k
Chou-Long Huang 4.1k 1.8× 1.4k 1.1× 592 0.6× 173 0.3× 1.1k 2.3× 84 6.3k
Robert F. Spurney 1.8k 0.8× 883 0.7× 102 0.1× 309 0.6× 469 1.0× 82 3.3k
C. Chris Yun 2.8k 1.2× 163 0.1× 154 0.2× 251 0.5× 336 0.7× 90 3.6k
Xin Ma 2.1k 0.9× 81 0.1× 972 1.0× 270 0.5× 273 0.6× 169 4.1k
Yoji Sato 2.6k 1.1× 81 0.1× 751 0.8× 176 0.3× 402 0.9× 123 4.2k
Erik Gylfe 3.5k 1.5× 467 0.4× 188 0.2× 109 0.2× 833 1.8× 202 6.8k
Brian Zambrowicz 3.4k 1.5× 360 0.3× 47 0.0× 294 0.6× 342 0.7× 82 6.8k
Naoki Sawada 2.0k 0.9× 142 0.1× 68 0.1× 266 0.5× 342 0.7× 81 3.8k
Lan Mao 2.5k 1.1× 74 0.1× 141 0.1× 175 0.3× 389 0.8× 84 5.1k
Toshimasa Onaya 2.3k 1.0× 200 0.2× 51 0.1× 244 0.5× 449 1.0× 209 5.5k

Countries citing papers authored by Anna Greka

Since Specialization
Citations

This map shows the geographic impact of Anna Greka'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 Anna Greka with the expected number of citations based on a country's size and research output (numbers larger than one mean the country cites Anna Greka more than expected).

Fields of papers citing papers by Anna Greka

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

This network shows the impact of papers produced by Anna Greka. 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 Anna Greka. The network helps show where Anna Greka may publish in the future.

Co-authorship network of co-authors of Anna Greka

This figure shows the co-authorship network connecting the top 25 collaborators of Anna Greka. A scholar is included among the top collaborators of Anna Greka 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 Anna Greka. Anna Greka 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.
Kim, Choah, Katlyn R. Gabriel, Matthew Brown, et al.. (2025). FAF2 is a bifunctional regulator of peroxisomal homeostasis and saturated lipid responses. Science Advances. 11(27). eadu9104–eadu9104. 1 indexed citations
2.
Marshall, Jamie L., Teia Noel, Qingbo S. Wang, et al.. (2022). High-resolution Slide-seqV2 spatial transcriptomics enables discovery of disease-specific cell neighborhoods and pathways. iScience. 25(4). 104097–104097. 47 indexed citations
3.
Noel, Teia, Qingbo S. Wang, Anna Greka, & Jamie L. Marshall. (2022). Principles of Spatial Transcriptomics Analysis: A Practical Walk-Through in Kidney Tissue. Frontiers in Physiology. 12. 809346–809346. 22 indexed citations
4.
Sidhom, Eriene-Heidi, Choah Kim, Maria Kost‐Alimova, et al.. (2021). Targeting a Braf/Mapk pathway rescues podocyte lipid peroxidation in CoQ-deficiency kidney disease. Journal of Clinical Investigation. 131(5). 30 indexed citations
5.
Xia, Shiyu, Zhibin Zhang, Venkat Giri Magupalli, et al.. (2021). Gasdermin D pore structure reveals preferential release of mature interleukin-1. Nature. 593(7860). 607–611. 423 indexed citations breakdown →
6.
Plant, Leigh D., et al.. (2021). PIP2 regulation of TRPC5 channel activation and desensitization. Journal of Biological Chemistry. 296. 100726–100726. 42 indexed citations
7.
Zhou, Yiming, Choah Kim, Juan Lorenzo Pablo, et al.. (2021). TRPC5 Channel Inhibition Protects Podocytes in Puromycin-Aminonucleoside Induced Nephrosis Models. Frontiers in Medicine. 8. 721865–721865. 13 indexed citations
8.
Marshall, Jamie L., Benjamin R. Doughty, Vidya Subramanian, et al.. (2020). HyPR-seq: Single-cell quantification of chosen RNAs via hybridization and sequencing of DNA probes. Proceedings of the National Academy of Sciences. 117(52). 33404–33413. 24 indexed citations
9.
Subramanian, Ayshwarya, Eriene-Heidi Sidhom, Maheswarareddy Emani, et al.. (2019). Single cell census of human kidney organoids shows reproducibility and diminished off-target cells after transplantation. Nature Communications. 10(1). 5462–5462. 139 indexed citations
10.
Pablo, Juan Lorenzo & Anna Greka. (2019). Charting a TRP to Novel Therapeutic Destinations for Kidney Diseases. Trends in Pharmacological Sciences. 40(12). 911–918. 12 indexed citations
11.
Christov, Marta, Abbe R. Clark, Braden Corbin, et al.. (2018). Inducible podocyte-specific deletion of CTCF drives progressive kidney disease and bone abnormalities. JCI Insight. 3(4). 14 indexed citations
12.
Sieber, Jonas, Nicolas Wieder, Abbe R. Clark, et al.. (2017). GDC-0879, a BRAFV600E Inhibitor, Protects Kidney Podocytes from Death. Cell chemical biology. 25(2). 175–184.e4. 15 indexed citations
13.
Buvall, Lisa, Jonas Sieber, С. Г. Андреева, et al.. (2016). Synaptopodin Is a Coincidence Detector of Tyrosine versus Serine/Threonine Phosphorylation for the Modulation of Rho Protein Crosstalk in Podocytes. Journal of the American Society of Nephrology. 28(3). 837–851. 38 indexed citations
14.
Yoon, Kyoung Wan, Sanguine Byun, Eun‐Jeong Kwon, et al.. (2015). Control of signaling-mediated clearance of apoptotic cells by the tumor suppressor p53. Science. 349(6247). 1261669–1261669. 174 indexed citations
15.
Mündel, Peter & Anna Greka. (2015). Developing therapeutic ‘arrows’ with the precision of William Tell. Current Opinion in Nephrology & Hypertension. 24(4). 1–1. 14 indexed citations
16.
Greka, Anna & Peter Mündel. (2012). Calcium Regulates Podocyte Actin Dynamics. Seminars in Nephrology. 32(4). 319–326. 58 indexed citations
17.
Rhee, Eugene P., Amanda Souza, Laurie Farrell, et al.. (2010). Metabolite Profiling Identifies Markers of Uremia. Journal of the American Society of Nephrology. 21(6). 1041–2051. 145 indexed citations
18.
Wei, Changli, Mehmet M. Altintas, Jing Li, et al.. (2006). Induction of TRPC6 Channel in Acquired Forms of Proteinuric Kidney Disease. Journal of the American Society of Nephrology. 18(1). 29–36. 243 indexed citations
19.
Bezzerides, Vassilios J., I. Scott Ramsey, Suhas A. Kotecha, Anna Greka, & David E. Clapham. (2004). Rapid vesicular translocation and insertion of TRP channels. Nature Cell Biology. 6(8). 709–720. 441 indexed citations
20.
Oancea, Elena, Vassilios J. Bezzerides, Anna Greka, & David E. Clapham. (2003). Mechanism of Persistent Protein Kinase D1 Translocation and Activation. Developmental Cell. 4(4). 561–574. 45 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.

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