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:

Wetting regulates autophagy of phase-separated compartments and the cytosol
Jaime Agudo‐Canalejo, Sebastian W. Schultz, Haruka Chino, et al.
Nature (2021) Vol. 591, Iss. 7848, pp. 142-146
Closed Access | Times Cited: 198

Showing 1-25 of 198 citing articles:

Autophagy in inflammation, infection, and immunometabolism
Vojo Deretić
Immunity (2021) Vol. 54, Iss. 3, pp. 437-453
Open Access | Times Cited: 529

The mechanisms and roles of selective autophagy in mammals
Jose Norberto S. Vargas, Maho Hamasaki, Tsuyoshi Kawabata, et al.
Nature Reviews Molecular Cell Biology (2022) Vol. 24, Iss. 3, pp. 167-185
Closed Access | Times Cited: 477

A conceptual framework for understanding phase separation and addressing open questions and challenges
Tanja Mittag, Rohit V. Pappu
Molecular Cell (2022) Vol. 82, Iss. 12, pp. 2201-2214
Open Access | Times Cited: 445

Autophagy genes in biology and disease
Hayashi Yamamoto, Sidi Zhang, Noboru Mizushima
Nature Reviews Genetics (2023) Vol. 24, Iss. 6, pp. 382-400
Open Access | Times Cited: 297

Mechanisms of Selective Autophagy
Trond Lamark, Terje Johansen
Annual Review of Cell and Developmental Biology (2021) Vol. 37, Iss. 1, pp. 143-169
Open Access | Times Cited: 255

Autophagy in liver diseases: A review
Hui Qian, Xiaojuan Chao, Jessica A. Williams, et al.
Molecular Aspects of Medicine (2021) Vol. 82, pp. 100973-100973
Open Access | Times Cited: 223

Capillary forces generated by biomolecular condensates
Bernardo Gouveia, Yoonji Kim, Joshua W. Shaevitz, et al.
Nature (2022) Vol. 609, Iss. 7926, pp. 255-264
Closed Access | Times Cited: 156

Autophagosome biogenesis comes out of the black box
Chunmei Chang, Liv Jensen, James H. Hurley
Nature Cell Biology (2021) Vol. 23, Iss. 5, pp. 450-456
Open Access | Times Cited: 130

CCT2 is an aggrephagy receptor for clearance of solid protein aggregates
Xinyu Ma, Caijing Lu, Yuting Chen, et al.
Cell (2022) Vol. 185, Iss. 8, pp. 1325-1345.e22
Open Access | Times Cited: 117

Membrane surfaces regulate assembly of ribonucleoprotein condensates
Wilton T. Snead, Ameya P. Jalihal, Therese M. Gerbich, et al.
Nature Cell Biology (2022) Vol. 24, Iss. 4, pp. 461-470
Open Access | Times Cited: 117

Endocytosis of Coacervates into Liposomes
Tiemei Lu, Susanne Liese, Ludo L. J. Schoenmakers, et al.
Journal of the American Chemical Society (2022) Vol. 144, Iss. 30, pp. 13451-13455
Open Access | Times Cited: 78

In situ structural analysis reveals membrane shape transitions during autophagosome formation
Anna Bieber, Cristina Capitanio, Philipp S. Erdmann, et al.
Proceedings of the National Academy of Sciences (2022) Vol. 119, Iss. 39
Open Access | Times Cited: 68

Molecular regulation of autophagosome formation
Yan Hu, Fulvio Reggiori
Biochemical Society Transactions (2022) Vol. 50, Iss. 1, pp. 55-69
Open Access | Times Cited: 67

Essence determines phenomenon: Assaying the material properties of biological condensates
Wang Zheng, Jizhong Lou, Hong Zhang
Journal of Biological Chemistry (2022) Vol. 298, Iss. 4, pp. 101782-101782
Open Access | Times Cited: 64

Non-specific adhesive forces between filaments and membraneless organelles
Thomas J. Böddeker, Kathryn A. Rosowski, Doris Berchtold, et al.
Nature Physics (2022) Vol. 18, Iss. 5, pp. 571-578
Open Access | Times Cited: 64

Phase separation properties of RPA combine high-affinity ssDNA binding with dynamic condensate functions at telomeres
Vincent Spegg, Ανδρέας Παναγόπουλος, Merula Stout, et al.
Nature Structural & Molecular Biology (2023) Vol. 30, Iss. 4, pp. 451-462
Open Access | Times Cited: 49

Molecular Mechanisms of Macroautophagy, Microautophagy, and Chaperone-Mediated Autophagy
Hayashi Yamamoto, Takahide Matsui
Journal of Nippon Medical School (2023) Vol. 91, Iss. 1, pp. 2-9
Open Access | Times Cited: 43

Coacervate Droplets for Synthetic Cells
Zi Lin, Thomas Beneyton, Jean‐Christophe Baret, et al.
Small Methods (2023) Vol. 7, Iss. 12
Open Access | Times Cited: 41

How to drink like a liposome
Jianhui Liu, Ben Zhong Tang
Nature Reviews Chemistry (2023) Vol. 7, Iss. 1, pp. 5-6
Closed Access | Times Cited: 36

Sequence-dependent material properties of biomolecular condensates and their relation to dilute phase conformations
Dinesh Sundaravadivelu Devarajan, Jiahui Wang, Beata Szała-Mendyk, et al.
Nature Communications (2024) Vol. 15, Iss. 1
Open Access | Times Cited: 33

Membrane prewetting by condensates promotes tight-junction belt formation
Karina Pombo‐García, Omar Adame-Arana, Cécilie Martin-Lemaitre, et al.
Nature (2024) Vol. 632, Iss. 8025, pp. 647-655
Open Access | Times Cited: 14

Surface tension and viscosity of protein condensates quantified by micropipette aspiration
Huan Wang, Fleurie M. Kelley, Dragomir Milovanović, et al.
Biophysical Reports (2021) Vol. 1, Iss. 1, pp. 100011-100011
Open Access | Times Cited: 79

Biomolecular condensates at sites of DNA damage: More than just a phase
Vincent Spegg, Matthias Altmeyer
DNA repair (2021) Vol. 106, pp. 103179-103179
Open Access | Times Cited: 73

NCOA4 drives ferritin phase separation to facilitate macroferritinophagy and microferritinophagy
Tomoko Ohshima, Hayashi Yamamoto, Yuriko Sakamaki, et al.
The Journal of Cell Biology (2022) Vol. 221, Iss. 10
Open Access | Times Cited: 64

Myricetin slows liquid–liquid phase separation of Tau and activates ATG5-dependent autophagy to suppress Tau toxicity
Bin Dai, Tao Zhong, Zhixian Chen, et al.
Journal of Biological Chemistry (2021) Vol. 297, Iss. 4, pp. 101222-101222
Open Access | Times Cited: 55

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