Luying Peng

4.5k total citations · 1 hit paper
74 papers, 3.0k citations indexed

About

Luying Peng is a scholar working on Molecular Biology, Cardiology and Cardiovascular Medicine and Cancer Research. According to data from OpenAlex, Luying Peng has authored 74 papers receiving a total of 3.0k indexed citations (citations by other indexed papers that have themselves been cited), including 55 papers in Molecular Biology, 23 papers in Cardiology and Cardiovascular Medicine and 9 papers in Cancer Research. Recurrent topics in Luying Peng's work include Cardiac electrophysiology and arrhythmias (12 papers), Congenital heart defects research (10 papers) and Mitochondrial Function and Pathology (9 papers). Luying Peng is often cited by papers focused on Cardiac electrophysiology and arrhythmias (12 papers), Congenital heart defects research (10 papers) and Mitochondrial Function and Pathology (9 papers). Luying Peng collaborates with scholars based in China, United States and Germany. Luying Peng's co-authors include Jing Lin, Robert S. Green, Zhongrong Li, Ian R. Holzman, Zhenjuan He, Wei Chen, Li Li, Leif Hertz, Yihan Chen and Zhigang Li and has published in prestigious journals such as Journal of Biological Chemistry, Nature Communications and Molecular Cell.

In The Last Decade

Luying Peng

66 papers receiving 3.0k citations

Hit Papers

Butyrate Enhances the Intestinal Barrier by Facilitating ... 2009 2026 2014 2020 2009 400 800 1.2k

Peers — A (Enhanced Table)

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

Name h Career Trend Papers Cites
Luying Peng China 20 2.1k 675 354 290 281 74 3.0k
Kassem Makki Sweden 9 1.7k 0.8× 1.1k 1.7× 526 1.5× 365 1.3× 251 0.9× 12 3.3k
Stefan Ehrentraut Germany 23 1.7k 0.8× 517 0.8× 178 0.5× 194 0.7× 296 1.1× 81 3.1k
Narayanan Parameswaran United States 36 2.7k 1.3× 631 0.9× 234 0.7× 292 1.0× 541 1.9× 99 4.7k
Kylie Kavanagh United States 27 1.3k 0.6× 1.1k 1.7× 273 0.8× 181 0.6× 230 0.8× 91 2.8k
Kyung‐Ah Kim South Korea 30 2.5k 1.2× 965 1.4× 283 0.8× 267 0.9× 406 1.4× 118 3.9k
Yun Ji China 31 1.4k 0.7× 654 1.0× 295 0.8× 150 0.5× 167 0.6× 93 3.0k
Gianluca Matteoli Belgium 32 1.6k 0.8× 443 0.7× 229 0.6× 262 0.9× 509 1.8× 85 4.7k
Renato Tadeu Nachbar Brazil 16 1.4k 0.7× 824 1.2× 354 1.0× 239 0.8× 176 0.6× 27 2.6k
Shuhong Guo United States 22 1.7k 0.8× 513 0.8× 335 0.9× 214 0.7× 316 1.1× 34 3.4k

Countries citing papers authored by Luying Peng

Since Specialization
Citations

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

Fields of papers citing papers by Luying Peng

Since Specialization
Physical SciencesHealth SciencesLife SciencesSocial Sciences

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

Co-authorship network of co-authors of Luying Peng

This figure shows the co-authorship network connecting the top 25 collaborators of Luying Peng. A scholar is included among the top collaborators of Luying Peng 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 Luying Peng. Luying Peng 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
2.
Qian, Tian, Jianhua He, Shuzhong He, et al.. (2025). Prediction and verification of arsenic phytoavailability in paddy soil based on CD-MUSIC model in the Xiangjiang River Basin. Journal of Hazardous Materials. 493. 138092–138092. 2 indexed citations
3.
Yi, Na, Hongrong Wang, Xiao Tao, et al.. (2025). RNA-binding protein SAMD4A targets FGF2 to regulate cardiomyocyte lineage specification from human embryonic stem cells. Stem Cell Research & Therapy. 16(1). 144–144.
4.
Lin, Fang, Xiaoting Liang, Chenyu Li, et al.. (2024). Unmasking Protein Phosphatase 2A Regulatory Subunit B as a Crucial Factor in the Progression of Dilated Cardiomyopathy. Biomedicines. 12(8). 1887–1887.
5.
Jing, Yanping, Jie An, Jiping Huang, et al.. (2024). BIOACCUMULATION, SUBCELLULAR DISTRIBUTION AND CHEMICAL MORPHOLOGY OF CADMIUM IN SCUTELLARIA BAICALENSIS GEORGI BASED ON ICP-MS. Applied Ecology and Environmental Research. 22(4). 3539–3562.
6.
Hu, Yi, et al.. (2024). Functional role of circRNA CHRC through miR-431-5p/KLF15 signaling axis in the progression of heart failure. Journal of genetics and genomics. 51(8). 844–854. 6 indexed citations
7.
Huang, Jia‐Qi, Juan Hua, Luying Peng, Liping Bai, & Shi‐Hong Luo. (2024). The Diterpene Isopimaric Acid Modulates the Phytohormone Pathway to Promote Oryza sativa L. Rice Seedling Growth. Current Issues in Molecular Biology. 46(9). 9772–9784. 1 indexed citations
9.
Kappenberg, Franziska, Sureshkumar Perumal Srinivasan, Jürgen Hescheler, et al.. (2023). Transcriptome-based prediction of drugs, inhibiting cardiomyogenesis in human induced pluripotent stem cells. Cell Death Discovery. 9(1). 321–321.
10.
Wo, Da, Jingxiao Chen, Xiaohui Zhou, et al.. (2023). Inhibition of a novel Dickkopf-1-LDL receptor–related proteins 5 and 6 axis prevents diabetic cardiomyopathy in mice. European Heart Journal. 45(9). 688–703. 8 indexed citations
11.
Srinivasan, Sureshkumar Perumal, Harshal Nemade, Luying Peng, et al.. (2022). Epigenetic mechanisms of Strip2 in differentiation of pluripotent stem cells. Cell Death Discovery. 8(1). 447–447. 3 indexed citations
12.
Wang, Duo, Chang Liu, Huan Liu, et al.. (2021). ERG1 plays an essential role in rat cardiomyocyte fate decision by mediating AKT signaling. Stem Cells. 39(4). 443–457. 6 indexed citations
13.
Li, Zhigang, Chang Liu, Huan Liu, et al.. (2020). Kcnh2 mediates FAK/AKT‐FOXO3A pathway to attenuate sepsis‐induced cardiac dysfunction. Cell Proliferation. 54(2). e12962–e12962. 19 indexed citations
14.
Wang, Duo, Yumei Wang, Huan Liu, et al.. (2019). Laminin promotes differentiation of rat embryonic stem cells into cardiomyocytes by activating the integrin/FAK/PI3K p85 pathway. Journal of Cellular and Molecular Medicine. 23(5). 3629–3640. 14 indexed citations
15.
Li, Zhigang, Huifang Zhu, Chang Liu, et al.. (2019). GSK‐3β inhibition protects the rat heart from the lipopolysaccharide‐induced inflammation injury via suppressing FOXO3A activity. Journal of Cellular and Molecular Medicine. 23(11). 7796–7809. 24 indexed citations
16.
Wang, Duo, Chang Liu, Yumei Wang, et al.. (2017). Regulation of Histone Acetylation on Expression Profiles of Potassium Channels During Cardiomyocyte Differentiation From Mouse Embryonic Stem Cells. Journal of Cellular Biochemistry. 118(12). 4460–4467. 3 indexed citations
17.
Wang, Duo, Chang Liu, Yumei Wang, et al.. (2017). Impact of miR‐26b on cardiomyocyte differentiation in P19 cells through regulating canonical/non‐canonical Wnt signalling. Cell Proliferation. 50(6). 14 indexed citations
18.
Xiao, Junjie, Dandan Liang, Hong Zhang, et al.. (2010). Inhibition of mitochondrial translocator protein prevents atrial fibrillation. European Journal of Pharmacology. 632(1-3). 60–64. 12 indexed citations
19.
Li, Jun, Biao Yan, Zhaoxia Huo, et al.. (2010). β2- but not β1-adrenoceptor activation modulates intracellular oxygen availability. The Journal of Physiology. 588(16). 2987–2998. 31 indexed citations
20.
Peng, Luying, et al.. (2009). Butyrate Enhances the Intestinal Barrier by Facilitating Tight Junction Assembly via Activation of AMP-Activated Protein Kinase in Caco-2 Cell Monolayers. Journal of Nutrition. 139(9). 1619–1625. 1477 indexed citations breakdown →

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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