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:

A recoverable state of axon injury persists for hours after spinal cord contusion in vivo
Philip R. Williams, Bogdan-Nicolae Marincu, Catherine D. Sorbara, et al.
Nature Communications (2014) Vol. 5, Iss. 1
Open Access | Times Cited: 117

Showing 1-25 of 117 citing articles:

Spinal Cord Injury: Pathophysiology, Multimolecular Interactions, and Underlying Recovery Mechanisms
Anam Anjum, Muhammad Dain Yazid, Muhammad Daud, et al.
International Journal of Molecular Sciences (2020) Vol. 21, Iss. 20, pp. 7533-7533
Open Access | Times Cited: 833

Intrinsic Control of Axon Regeneration
Zhigang He, Yishi Jin
Neuron (2016) Vol. 90, Iss. 3, pp. 437-451
Open Access | Times Cited: 553

Manufacturing of Human Extracellular Vesicle-Based Therapeutics for Clinical Use
Mario Gimona, Karin Pachler, Sandra Laner‐Plamberger, et al.
International Journal of Molecular Sciences (2017) Vol. 18, Iss. 6, pp. 1190-1190
Open Access | Times Cited: 259

Axon Regeneration in the Central Nervous System: Facing the Challenges from the Inside
Michele Curcio, Frank Bradke
Annual Review of Cell and Developmental Biology (2018) Vol. 34, Iss. 1, pp. 495-521
Closed Access | Times Cited: 188

Central nervous system regeneration
Supraja G. Varadarajan, John L. Hunyara, Natalie R. Hamilton, et al.
Cell (2022) Vol. 185, Iss. 1, pp. 77-94
Open Access | Times Cited: 162

Acute and non-resolving inflammation associate with oxidative injury after human spinal cord injury
Tobias Zrzavy, Carmen Schwaiger, Isabella Wimmer, et al.
Brain (2020) Vol. 144, Iss. 1, pp. 144-161
Open Access | Times Cited: 145

Small Molecule SARM1 Inhibitors Recapitulate the SARM1−/− Phenotype and Allow Recovery of a Metastable Pool of Axons Fated to Degenerate
Robert Hughes, Todd Bosanac, Xianrong Mao, et al.
Cell Reports (2021) Vol. 34, Iss. 1, pp. 108588-108588
Open Access | Times Cited: 140

Autophagy induction stabilizes microtubules and promotes axon regeneration after spinal cord injury
Miao He, Yuetong Ding, Chen Chu, et al.
Proceedings of the National Academy of Sciences (2016) Vol. 113, Iss. 40, pp. 11324-11329
Open Access | Times Cited: 167

Natural Killer Cells Degenerate Intact Sensory Afferents following Nerve Injury
Alexander J. Davies, Hyoung Woo Kim, Rafael González‐Cano, et al.
Cell (2019) Vol. 176, Iss. 4, pp. 716-728.e18
Open Access | Times Cited: 125

In vivo imaging of neuronal calcium during electrode implantation: Spatial and temporal mapping of damage and recovery
James R. Eles, Alberto L. Vazquez, Takashi D.Y. Kozai, et al.
Biomaterials (2018) Vol. 174, pp. 79-94
Open Access | Times Cited: 87

The fate and function of oligodendrocyte progenitor cells after traumatic spinal cord injury
Greg J. Duncan, Sohrab B. Manesh, Brett J. Hilton, et al.
Glia (2019) Vol. 68, Iss. 2, pp. 227-245
Closed Access | Times Cited: 83

Neurons differentiate magnitude and location of mechanical stimuli
Benjamin M. Gaub, Krishna Chaitanya Kasuba, Émilie Macé, et al.
Proceedings of the National Academy of Sciences (2019) Vol. 117, Iss. 2, pp. 848-856
Open Access | Times Cited: 81

Calcium Influx through Plasma-Membrane Nanoruptures Drives Axon Degeneration in a Model of Multiple Sclerosis
Maarten E. Witte, Adrian-Minh Schumacher, Christoph Mahler, et al.
Neuron (2019) Vol. 101, Iss. 4, pp. 615-624.e5
Open Access | Times Cited: 80

The role of PI3K/Akt signalling pathway in spinal cord injury
Chun-Lin Xiao, Wenchao Yin, Yanchun Zhong, et al.
Biomedicine & Pharmacotherapy (2022) Vol. 156, pp. 113881-113881
Closed Access | Times Cited: 50

Applications of Stem Cell-Derived Extracellular Vesicles in Nerve Regeneration
Burçak Yavuz, Esra Cansever Mutlu, Zubair Ahmed, et al.
International Journal of Molecular Sciences (2024) Vol. 25, Iss. 11, pp. 5863-5863
Open Access | Times Cited: 8

Nodes, paranodes and neuropathies
Janev Fehmi, Steven S. Scherer, Hugh J. Willison, et al.
Journal of Neurology Neurosurgery & Psychiatry (2017) Vol. 89, Iss. 1, pp. 61-71
Open Access | Times Cited: 67

Cytotoxic Immunity in Peripheral Nerve Injury and Pain
Alexander J. Davies, Simon Rinaldi, Michael Costigan, et al.
Frontiers in Neuroscience (2020) Vol. 14
Open Access | Times Cited: 60

An injectable heparin-Laponite hydrogel bridge FGF4 for spinal cord injury by stabilizing microtubule and improving mitochondrial function
Chenggui Wang, Zhe Gong, Xianpeng Huang, et al.
Theranostics (2019) Vol. 9, Iss. 23, pp. 7016-7032
Open Access | Times Cited: 58

Biological Functions and Therapeutic Potential of Autophagy in Spinal Cord Injury
Hai-Yang Liao, Zhiqiang Wang, Rui Ran, et al.
Frontiers in Cell and Developmental Biology (2021) Vol. 9
Open Access | Times Cited: 47

Fluorogenic Chemical Probes for Wash-free Imaging of Cell Membrane Damage in Ferroptosis, Necrosis, and Axon Injury
Philipp Mauker, Daniela Beckmann, Annabel Kitowski, et al.
Journal of the American Chemical Society (2024)
Closed Access | Times Cited: 8

Fast direct neuronal signaling via the IL-4 receptor as therapeutic target in neuroinflammation
Christina F. Vogelaar, Shibajee Mandal, Steffen Lerch, et al.
Science Translational Medicine (2018) Vol. 10, Iss. 430
Open Access | Times Cited: 59

Attenuation of Axonal Degeneration by Calcium Channel Inhibitors Improves Retinal Ganglion Cell Survival and Regeneration After Optic Nerve Crush
Vinícius Toledo Ribas, Jan Christoph Koch, Uwe Michel, et al.
Molecular Neurobiology (2016) Vol. 54, Iss. 1, pp. 72-86
Closed Access | Times Cited: 53

Injured Axons Instruct Schwann Cells to Build Constricting Actin Spheres to Accelerate Axonal Disintegration
Adrien Vaquié, Alizée Sauvain, Mert Duman, et al.
Cell Reports (2019) Vol. 27, Iss. 11, pp. 3152-3166.e7
Open Access | Times Cited: 53

Analysis of YFP(J16)-R6/2 reporter mice and postmortem brains reveals early pathology and increased vulnerability of callosal axons in Huntington's disease
Rodolfo G. Gatto, Yaping Chu, Allen Q. Ye, et al.
Human Molecular Genetics (2015) Vol. 24, Iss. 18, pp. 5285-5298
Open Access | Times Cited: 50

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