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:

The heart of the neural crest: cardiac neural crest cells in development and regeneration
Rajani M. George, Gabriel Maldonado-Velez, Anthony B. Firulli
Development (2020) Vol. 147, Iss. 20
Open Access | Times Cited: 56

Showing 1-25 of 56 citing articles:

Single-cell transcriptomic analysis identifies murine heart molecular features at embryonic and neonatal stages
Wei Feng, Abha Bais, Haoting He, et al.
Nature Communications (2022) Vol. 13, Iss. 1
Open Access | Times Cited: 50

Gastrulation-stage gene expression in Nipbl +/− mouse embryos foreshadows the development of syndromic birth defects
Stephenson Chea, Jesse Kreger, Martha E. Lopez‐Burks, et al.
Science Advances (2024) Vol. 10, Iss. 12
Open Access | Times Cited: 9

The ECM as a driver of heart development and repair
Christopher J. Derrick, Emily S. Noël
Development (2021) Vol. 148, Iss. 5
Open Access | Times Cited: 42

A combined human gastruloid model of cardiogenesis and neurogenesis
Zachary T. Olmsted, Janet L. Paluh
iScience (2022) Vol. 25, Iss. 6, pp. 104486-104486
Open Access | Times Cited: 38

Zebrafish Congenital Heart Disease Models: Opportunities and Challenges
Di-Xuan Yang, Zhen-Jie Jian, Changfa Tang, et al.
International Journal of Molecular Sciences (2024) Vol. 25, Iss. 11, pp. 5943-5943
Open Access | Times Cited: 6

Prdm6 controls heart development by regulating neural crest cell differentiation and migration
Lingjuan Hong, Na Li, Victor Gasque, et al.
JCI Insight (2022) Vol. 7, Iss. 4
Open Access | Times Cited: 20

KCTD1/KCTD15 complexes control ectodermal and neural crest cell functions, and their impairment causes aplasia cutis
Jackelyn R. Raymundo, Hui Zhang, Giovanni Smaldone, et al.
Journal of Clinical Investigation (2023) Vol. 134, Iss. 4
Open Access | Times Cited: 11

The avian embryo as a time-honoured animal model in developmental, biomedical and agricultural research
Warren W. Burggren, Edward M. Dzialowski, Barbara Tzschentke
Philosophical Transactions of the Royal Society B Biological Sciences (2025) Vol. 380, Iss. 1920
Closed Access

Extracellular matrix in cardiac morphogenesis, fibrosis, and regeneration
Ashwini Punde, Amey Rayrikar, Shreya Maity, et al.
Cells and Development (2025), pp. 204023-204023
Closed Access

The Cardiac Neural Crest Cells in Heart Development and Congenital Heart Defects
Shannon Erhardt, Mingjie Zheng, Xiaolei Zhao, et al.
Journal of Cardiovascular Development and Disease (2021) Vol. 8, Iss. 8, pp. 89-89
Open Access | Times Cited: 26

In vitro models of the human heart
Pablo Hofbauer, Stefan M. Jahnel, Sasha Mendjan
Development (2021) Vol. 148, Iss. 16
Open Access | Times Cited: 25

Development of the Human Arterial Valves: Understanding Bicuspid Aortic Valve
Deborah J. Henderson, Lorraine Eley, Jasmin E. Turner, et al.
Frontiers in Cardiovascular Medicine (2022) Vol. 8
Open Access | Times Cited: 14

The cell surface hyaluronidase TMEM2 plays an essential role in mouse neural crest cell development and survival
Toshihiro Inubushi, Yuichiro Nakanishi, Makoto Abe, et al.
PLoS Genetics (2022) Vol. 18, Iss. 7, pp. e1009765-e1009765
Open Access | Times Cited: 13

Congenital aortic valve stenosis: from pathophysiology to molecular genetics and the need for novel therapeutics
Jun Yasuhara, Karlee Schultz, Amee M. Bigelow, et al.
Frontiers in Cardiovascular Medicine (2023) Vol. 10
Open Access | Times Cited: 7

Dbh+ catecholaminergic cardiomyocytes contribute to the structure and function of the cardiac conduction system in murine heart
Tianyi Sun, Alexander Grassam-Rowe, Zhaoli Pu, et al.
Nature Communications (2023) Vol. 14, Iss. 1
Open Access | Times Cited: 7

Roles of cardiac neural crest cells in cardiovascular development and associated congenital defects-an integrated review
Worku Abie Liyew, Fentahun Adane, Amsalu Taye Wondemagegn, et al.
Translational Research in Anatomy (2024) Vol. 36, pp. 100304-100304
Open Access | Times Cited: 2

Zebrafish arterial valve development occurs through direct differentiation of second heart field progenitors
Christopher J. Derrick, Lorraine Eley, Ahlam Alqahtani, et al.
Cardiovascular Research (2024)
Open Access | Times Cited: 2

Mechanistic Insights into Axenfeld–Rieger Syndrome from Zebrafish foxc1 and pitx2 Mutants
Curtis R. French
International Journal of Molecular Sciences (2021) Vol. 22, Iss. 18, pp. 10001-10001
Open Access | Times Cited: 15

LATS1/2 control TGFB-directed epithelial-to-mesenchymal transition in the murine dorsal cranial neuroepithelium through YAP regulation
Idaliz M. Martínez Traverso, Jeffrey D. Steimle, Xiaolei Zhao, et al.
Development (2022) Vol. 149, Iss. 18
Open Access | Times Cited: 10

LncRNA-Smad7mediates cross-talk between Nodal/TGF-β and BMP signaling to regulate cell fate determination of pluripotent and multipotent cells
Xiaohui Kong, Kun Yan, Pujuan Deng, et al.
Nucleic Acids Research (2022) Vol. 50, Iss. 18, pp. 10526-10543
Open Access | Times Cited: 10

Epigenetic Regulation of Cardiac Neural Crest Cells
Shun Yan, Jin Lu, Kai Jiao
Frontiers in Cell and Developmental Biology (2021) Vol. 9
Open Access | Times Cited: 11

The origin, progress, and application of cell‐based cardiac regeneration therapy
Danping Zhuo, Ienglam Lei, Wenjun Li, et al.
Journal of Cellular Physiology (2023) Vol. 238, Iss. 8, pp. 1732-1755
Closed Access | Times Cited: 4

Charting the Path: Navigating Embryonic Development to Potentially Safeguard against Congenital Heart Defects
José Bragança, Rute Pinto, Bárbara M. Silva, et al.
Journal of Personalized Medicine (2023) Vol. 13, Iss. 8, pp. 1263-1263
Open Access | Times Cited: 4

Aortic Valve Embryology, Mechanobiology and Second Messenger Pathways: Implications for Clinical Practice
Maximiliaan L. Notenboom, L. Van Hoof, Art Schuermans, et al.
(2024)
Open Access | Times Cited: 1

Aortic Valve Embryology, Mechanobiology, and Second Messenger Pathways: Implications for Clinical Practice
Maximiliaan L. Notenboom, L. Van Hoof, Art Schuermans, et al.
Journal of Cardiovascular Development and Disease (2024) Vol. 11, Iss. 2, pp. 49-49
Open Access | Times Cited: 1

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