Orit Gutman

1.6k total citations · 1 hit paper
27 papers, 1.3k citations indexed

About

Orit Gutman is a scholar working on Molecular Biology, Cell Biology and Genetics. According to data from OpenAlex, Orit Gutman has authored 27 papers receiving a total of 1.3k indexed citations (citations by other indexed papers that have themselves been cited), including 21 papers in Molecular Biology, 10 papers in Cell Biology and 5 papers in Genetics. Recurrent topics in Orit Gutman's work include Protein Kinase Regulation and GTPase Signaling (7 papers), Lipid Membrane Structure and Behavior (6 papers) and Virus-based gene therapy research (5 papers). Orit Gutman is often cited by papers focused on Protein Kinase Regulation and GTPase Signaling (7 papers), Lipid Membrane Structure and Behavior (6 papers) and Virus-based gene therapy research (5 papers). Orit Gutman collaborates with scholars based in Israel, Germany and United States. Orit Gutman's co-authors include Yoav I. Henis, Hagit Niv, Yoel Kloog, Huasong Lu, Tiantian Wu, Kunxin Luo, Yi Lu, Qiang Zhou, Dmitry Shvartsman and Marcelo Ehrlich and has published in prestigious journals such as Journal of Biological Chemistry, Journal of Neuroscience and The Journal of Cell Biology.

In The Last Decade

Orit Gutman

27 papers receiving 1.3k citations

Hit Papers

Phase separation of TAZ compartmentalizes the transcripti... 2020 2026 2022 2024 2020 50 100 150 200 250

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Orit Gutman Israel 18 1.1k 395 141 108 103 27 1.3k
Marilyn Goudreault Canada 16 885 0.8× 585 1.5× 99 0.7× 45 0.4× 57 0.6× 19 1.3k
Simon DOWLER United Kingdom 12 1.1k 1.0× 773 2.0× 88 0.6× 119 1.1× 195 1.9× 14 1.5k
Hille Tekotte United Kingdom 16 1.6k 1.5× 501 1.3× 113 0.8× 34 0.3× 110 1.1× 22 1.9k
Deborah L. Cadena United States 8 1.0k 1.0× 272 0.7× 63 0.4× 64 0.6× 96 0.9× 10 1.3k
Helen Pickersgill Netherlands 7 1.6k 1.5× 194 0.5× 129 0.9× 66 0.6× 88 0.9× 12 1.8k
Piergiorgio Percipalle Sweden 25 2.0k 1.9× 564 1.4× 73 0.5× 55 0.5× 107 1.0× 65 2.3k
Yuntao S. Mao United States 15 1.8k 1.7× 220 0.6× 81 0.6× 91 0.8× 363 3.5× 17 2.2k
Andrey Efimov United States 14 737 0.7× 738 1.9× 52 0.4× 88 0.8× 56 0.5× 21 1.3k
Andrew H. Huber United States 14 1.9k 1.8× 456 1.2× 58 0.4× 79 0.7× 213 2.1× 23 2.3k
Christian Baarlink Germany 10 675 0.6× 466 1.2× 54 0.4× 58 0.5× 100 1.0× 10 949

Countries citing papers authored by Orit Gutman

Since Specialization
Citations

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

Fields of papers citing papers by Orit Gutman

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Orit Gutman

This figure shows the co-authorship network connecting the top 25 collaborators of Orit Gutman. A scholar is included among the top collaborators of Orit Gutman 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 Orit Gutman. Orit Gutman 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.
Gutman, Orit, et al.. (2022). Complex Formation Among TGF-β Receptors in Live Cell Membranes Measured by Patch-FRAP. Methods in molecular biology. 2488. 23–34. 3 indexed citations
2.
Sternberg, Hasana, et al.. (2021). Formation of self-organizing functionally distinct Rho of plants domains involves a reduced mobile population. PLANT PHYSIOLOGY. 187(4). 2485–2508. 11 indexed citations
3.
Gutman, Orit, Yuan Zhou, R. Rosler, et al.. (2020). Noncatalytic Bruton's tyrosine kinase activates PLCγ2 variants mediating ibrutinib resistance in human chronic lymphocytic leukemia cells. Journal of Biological Chemistry. 295(17). 5717–5736. 24 indexed citations
4.
Lu, Yi, Tiantian Wu, Orit Gutman, et al.. (2020). Phase separation of TAZ compartmentalizes the transcription machinery to promote gene expression. Nature Cell Biology. 22(4). 453–464. 265 indexed citations breakdown →
5.
Gutman, Orit, et al.. (2016). The residue at position 5 of the N-terminal region of Src and Fyn modulates their myristoylation, palmitoylation, and membrane interactions. Molecular Biology of the Cell. 27(24). 3926–3936. 15 indexed citations
6.
Walliser, Claudia, Kyrylo Tron, Orit Gutman, et al.. (2015). Rac-mediated Stimulation of Phospholipase Cγ2 Amplifies B Cell Receptor-induced Calcium Signaling. Journal of Biological Chemistry. 290(28). 17056–17072. 13 indexed citations
7.
Shvartsman, Dmitry, John C. Donaldson, Marcelo Ehrlich, et al.. (2013). Src-mediated caveolin-1 phosphorylation affects the targeting of active Src to specific membrane sites. Molecular Biology of the Cell. 24(24). 3881–3895. 50 indexed citations
8.
Ehrlich, Marcelo, Orit Gutman, Petra Knaus, & Yoav I. Henis. (2012). Oligomeric interactions of TGF‐β and BMP receptors. FEBS Letters. 586(14). 1885–1896. 71 indexed citations
9.
Sorek, Nadav, Oshik Segev, Orit Gutman, et al.. (2010). An S-Acylation Switch of Conserved G Domain Cysteines Is Required for Polarity Signaling by ROP GTPases. Current Biology. 20(10). 914–920. 66 indexed citations
10.
Sorek, Nadav, Oshik Segev, Orit Gutman, et al.. (2010). An S-Acylation Switch of Conserved G Domain Cysteines Is Required for Polarity Signaling by ROP GTPases. Current Biology. 20(14). 1326–1326. 4 indexed citations
11.
Gutman, Orit, et al.. (2009). Differential Regulation of Phospholipase C-β2 Activity and Membrane Interaction by Gαq, Gβ1γ2, and Rac2. Journal of Biological Chemistry. 285(6). 3905–3915. 27 indexed citations
12.
Groffen, Alexander J., Emma Connell, Jan R.T. van Weering, et al.. (2008). DOC2B Acts as a Calcium Switch and Enhances Vesicle Fusion. Journal of Neuroscience. 28(27). 6794–6806. 49 indexed citations
13.
Shvartsman, Dmitry, John C. Donaldson, Begoña Díaz, et al.. (2007). Src kinase activity and SH2 domain regulate the dynamics of Src association with lipid and protein targets. The Journal of Cell Biology. 178(4). 675–686. 50 indexed citations
14.
Shvartsman, Dmitry, Orit Gutman, A. Tietz, & Yoav I. Henis. (2006). Cyclodextrins but not Compactin Inhibit the Lateral Diffusion of Membrane Proteins Independent of Cholesterol. Traffic. 7(7). 917–926. 61 indexed citations
15.
Illenberger, Daria, Claudia Walliser, Orit Gutman, et al.. (2003). Rac2 Regulation of Phospholipase C-β2 Activity and Mode of Membrane Interactions in Intact Cells. Journal of Biological Chemistry. 278(10). 8645–8652. 60 indexed citations
16.
Niv, Hagit, Orit Gutman, Yoav I. Henis, & Yoel Kloog. (1999). Membrane Interactions of a Constitutively Active GFP-Ki-Ras 4B and Their Role in Signaling. Journal of Biological Chemistry. 274(3). 1606–1613. 104 indexed citations
17.
Gutman, Orit, et al.. (1995). Dynamic or Stable Interactions of Influenza Hemagglutinin Mutants with Coated Pits. Journal of Biological Chemistry. 270(36). 21075–21081. 30 indexed citations
18.
Gutman, Orit, Tsafi Danieli, Judith M. White, & Yoav I. Henis. (1993). Effects of exposure to low pH on the lateral mobility of influenza hemagglutinin expressed at the cell surface: correlation between mobility inhibition and inactivation. Biochemistry. 32(1). 101–106. 36 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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