OpenAlex Citation Counts

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OpenAlex is a bibliographic catalogue of scientific papers, authors and institutions accessible in open access mode, named after the Library of Alexandria. It's citation coverage is excellent and I hope you will find utility in this listing of citing articles!

If you click the article title, you'll navigate to the article, as listed in CrossRef. If you click the Open Access links, you'll navigate to the "best Open Access location". Clicking the citation count will open this listing for that article. Lastly at the bottom of the page, you'll find basic pagination options.

Requested Article:

Electrical impedance-based contractile stress measurement of human iPSC-Cardiomyocytes
Xian Wang, Li Wang, Wenkun Dou, et al.
Biosensors and Bioelectronics (2020) Vol. 166, pp. 112399-112399
Closed Access | Times Cited: 21

Showing 21 citing articles:

Microengineered platforms for characterizing the contractile function of in vitro cardiac models
Wenkun Dou, Manpreet Malhi, Qili Zhao, et al.
Microsystems & Nanoengineering (2022) Vol. 8, Iss. 1
Open Access | Times Cited: 46

Flexible 3D printed microwires and 3D microelectrodes for heart-on-a-chip engineering
Qinghua Wu, Peikai Zhang, Gerard O’Leary, et al.
Biofabrication (2023) Vol. 15, Iss. 3, pp. 035023-035023
Open Access | Times Cited: 26

High-Throughput Cardiomyocytes Biosensing: From Single-Parameter Detection to Integrated Mechano-Electrophysiological Platforms
Lei Zhang, Junlei Han, Feng Zhang, et al.
ACS Applied Electronic Materials (2025)
Closed Access | Times Cited: 1

Heart-on-a-chip systems: disease modeling and drug screening applications
Derrick Butler, Darwin R. Reyes
Lab on a Chip (2024) Vol. 24, Iss. 5, pp. 1494-1528
Closed Access | Times Cited: 7

Scalable and Robust Hollow Nanopillar Electrode for Enhanced Intracellular Action Potential Recording
Jiaru Fang, Dongxin Xu, Hao Wang, et al.
Nano Letters (2022) Vol. 23, Iss. 1, pp. 243-251
Closed Access | Times Cited: 24

Interferometric Biosensor for High Sensitive Label-Free Recording of HiPS Cardiomyocytes Contraction in Vitro
Alessio Boschi, Giuseppina Iachetta, Salvatore Buonocore, et al.
Nano Letters (2024) Vol. 24, Iss. 22, pp. 6451-6458
Open Access | Times Cited: 5

A microdevice platform for characterizing the effect of mechanical strain magnitudes on the maturation of iPSC-Cardiomyocytes
Wenkun Dou, Li Wang, Manpreet Malhi, et al.
Biosensors and Bioelectronics (2020) Vol. 175, pp. 112875-112875
Closed Access | Times Cited: 38

iPSC-cardiomyocytes in the preclinical prediction of candidate pharmaceutical toxicity
Tim Y. T. Lee, John G. Coles, Jason T. Maynes
Frontiers in Pharmacology (2024) Vol. 15
Open Access | Times Cited: 4

Hydrogel sensing platforms for monitoring contractility in in vitro cardiac models
Junxiu Lu, Xiatong Pan, Wenhong Zhang, et al.
Nanoscale (2025)
Closed Access

Real-Time Monitoring of Changes in Cardiac Contractility Using Silicon Cantilever Arrays Integrated with Strain Sensors
Mingming Dong, Nomin‐Erdene Oyunbaatar, Pooja P. Kanade, et al.
ACS Sensors (2021) Vol. 6, Iss. 10, pp. 3556-3563
Closed Access | Times Cited: 18

Quantifying the Compressive Force of 3D Cardiac Tissues via Calculating the Volumetric Deformation of Built‐In Elastic Gelatin Microspheres
Chuanjiang He, Xinwei Wei, Tao Liang, et al.
Advanced Healthcare Materials (2021) Vol. 10, Iss. 16
Closed Access | Times Cited: 13

Building blocks of microphysiological system to model physiology and pathophysiology of human heart
Hanna Vuorenpää, Miina Björninen, Hannu Välimäki, et al.
Frontiers in Physiology (2023) Vol. 14
Open Access | Times Cited: 5

Emerging biotechnologies for screening electromechanical signals of cardiomyocytes
Si Tang, Lingyu Sun, Huiyao Shi, et al.
Aggregate (2024)
Open Access | Times Cited: 1

Current Developments of Electroconductive Scaffolds for Cardiac Tissue Engineering
Jorge A. Roacho-Pérez, Michelle G. Santoyo-Suárez, Adriana G. Quiroz-Reyes, et al.
(2024), pp. 911-938
Closed Access | Times Cited: 1

Integrating conductive electrodes into hydrogel-based microfluidic chips for real-time monitoring of cell response
Ayda Pourmostafa, Anant Bhusal, Niranjan Haridas Menon, et al.
Frontiers in Bioengineering and Biotechnology (2024) Vol. 12
Open Access | Times Cited: 1

IPG-based field potential measurement of cultured cardiomyocytes for optogenetic applications
Ting-Wei Wang, Yen‐Ling Sung, Hsiao-Wei Chu, et al.
Biosensors and Bioelectronics (2021) Vol. 179, pp. 113060-113060
Closed Access | Times Cited: 7

Quartz Crystal Microbalance Technology Coupled with Impedance for the Dynamic Monitoring of the Cardiomyocyte Beating Function and Drug Screening
Zhenzhen Zhou, Xiaoyu Zhang, Tiean Zhou, et al.
Biosensors (2023) Vol. 13, Iss. 2, pp. 198-198
Open Access | Times Cited: 1

Current Developments of Electroconductive Scaffolds for Cardiac Tissue Engineering
Jorge A. Roacho-Pérez, Michelle G. Santoyo-Suárez, Adriana G. Quiroz-Reyes, et al.
(2023), pp. 1-28
Closed Access | Times Cited: 1

Pacemaker translocations and power laws in 2D stem cell-derived cardiomyocyte cultures
Christopher Dunham, Madelynn E. Mackenzie, Haruko Nakano, et al.
PLoS ONE (2022) Vol. 17, Iss. 3, pp. e0263976-e0263976
Open Access | Times Cited: 2

A Microdevice For Simultaneous Measurement of Cardiac Contraction and Electrophysiology
Wenkun Dou, Manpreet Malhi, Jason T. Maynes, et al.
2022 IEEE 35th International Conference on Micro Electro Mechanical Systems Conference (MEMS) (2022), pp. 279-282
Closed Access

Micro systems for probing cellular forces and cellular mechanical properties
Yi Zhao
Elsevier eBooks (2021), pp. 1-22
Closed Access

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