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:

Genome-wide association studies identify 137 genetic loci for DNA methylation biomarkers of aging
Daniel L. McCartney, Josine L. Min, Rebecca C. Richmond, et al.
Genome biology (2021) Vol. 22, Iss. 1
Open Access | Times Cited: 189

Showing 1-25 of 189 citing articles:

Measuring biological age using omics data
Jarod Rutledge, Hamilton Oh, Tony Wyss‐Coray
Nature Reviews Genetics (2022) Vol. 23, Iss. 12, pp. 715-727
Open Access | Times Cited: 301

Sex differences in biological aging with a focus on human studies
Sara Hägg, Juulia Jylhävä
eLife (2021) Vol. 10
Open Access | Times Cited: 298

Genome-wide analyses of 200,453 individuals yield new insights into the causes and consequences of clonal hematopoiesis
Siddhartha Kar, Pedro M. Quirós, Muxin Gu, et al.
Nature Genetics (2022) Vol. 54, Iss. 8, pp. 1155-1166
Open Access | Times Cited: 223

DNA methylation-based predictors of health: applications and statistical considerations
Paul Yousefi, Matthew Suderman, Ryan Langdon, et al.
Nature Reviews Genetics (2022) Vol. 23, Iss. 6, pp. 369-383
Closed Access | Times Cited: 143

DNA methylation GrimAge version 2
Ake T. Lu, Alexandra M. Binder, Joshua Zhang, et al.
Aging (2022)
Open Access | Times Cited: 140

Epigenetic scores for the circulating proteome as tools for disease prediction
Danni A. Gadd, Robert F. Hillary, Daniel L. McCartney, et al.
eLife (2022) Vol. 11
Open Access | Times Cited: 76

Physical activity is associated with slower epigenetic ageing—Findings from the Rhineland study
Fabienne A.U. Fox, Dan Liu, Monique M.B. Breteler, et al.
Aging Cell (2023) Vol. 22, Iss. 6
Open Access | Times Cited: 49

Multi-ancestry meta-analysis and fine-mapping in Alzheimer’s disease
Julie Lake, Caroline Warly Solsberg, Jonggeol Jeffrey Kim, et al.
Molecular Psychiatry (2023) Vol. 28, Iss. 7, pp. 3121-3132
Open Access | Times Cited: 47

Somatic mutation as an explanation for epigenetic aging
Zane Koch, Adam Li, Daniel S. Evans, et al.
Nature Aging (2025)
Open Access | Times Cited: 4

Germline risk of clonal haematopoiesis
Alexander J. Silver, Alexander G. Bick, Michael R. Savona
Nature Reviews Genetics (2021) Vol. 22, Iss. 9, pp. 603-617
Open Access | Times Cited: 67

Epigenetic Age and the Risk of Incident Atrial Fibrillation
Jason D. Roberts, Eric Vittinghoff, Ake T. Lu, et al.
Circulation (2021) Vol. 144, Iss. 24, pp. 1899-1911
Open Access | Times Cited: 66

Assessing the causal role of epigenetic clocks in the development of multiple cancers: a Mendelian randomization study
Fernanda Morales Berstein, Daniel L. McCartney, Ake T Lu, et al.
eLife (2022) Vol. 11
Open Access | Times Cited: 58

Genetic loci and metabolic states associated with murine epigenetic aging
Khyobeni Mozhui, Ake T. Lu, Caesar Z. Li, et al.
eLife (2022) Vol. 11
Open Access | Times Cited: 46

The role of adolescent lifestyle habits in biological aging: A prospective twin study
Anna Kankaanpää, Asko Tolvanen, Aino Heikkinen, et al.
eLife (2022) Vol. 11
Open Access | Times Cited: 41

Biomarkers selection and mathematical modeling in biological age estimation
Solim Essomandan Clémence Bafei, Chong Shen
npj Aging (2023) Vol. 9, Iss. 1
Open Access | Times Cited: 38

ExplaiNAble BioLogical Age (ENABL Age): an artificial intelligence framework for interpretable biological age
Wei Qiu, Hugh Chen, Matt Kaeberlein, et al.
The Lancet Healthy Longevity (2023) Vol. 4, Iss. 12, pp. e711-e723
Open Access | Times Cited: 34

Genetic Evidence for Causal Effects of Socioeconomic, Lifestyle, and Cardiometabolic Factors on Epigenetic-Age Acceleration
Lijie Kong, Chaojie Ye, Yiying Wang, et al.
The Journals of Gerontology Series A (2023) Vol. 78, Iss. 7, pp. 1083-1091
Open Access | Times Cited: 29

Multivariate genome-wide analysis of aging-related traits identifies novel loci and new drug targets for healthy aging
Daniel B. Rosoff, Lucas A. Mavromatis, Andrew S. Bell, et al.
Nature Aging (2023) Vol. 3, Iss. 8, pp. 1020-1035
Open Access | Times Cited: 27

Epigenetic Age Mediates the Association of Life's Essential 8 With Cardiovascular Disease and Mortality
M. A. Carbonneau, Yi Li, Brenton Prescott, et al.
Journal of the American Heart Association (2024) Vol. 13, Iss. 11
Open Access | Times Cited: 14

Exploring machine learning strategies for predicting cardiovascular disease risk factors from multi-omic data
Gabin Drouard, Juha Mykkänen, Jarkko S. Heiskanen, et al.
BMC Medical Informatics and Decision Making (2024) Vol. 24, Iss. 1
Open Access | Times Cited: 10

Probabilistic inference of epigenetic age acceleration from cellular dynamics
Jan Dabrowski, Emma. J. Yang, Samuel Crofts, et al.
Nature Aging (2024)
Open Access | Times Cited: 9

Epigenetic age acceleration and risk of aortic valve stenosis: a bidirectional Mendelian randomization study
Wanqian Pan, Qi Huang, Le Zhou, et al.
Clinical Epigenetics (2024) Vol. 16, Iss. 1
Open Access | Times Cited: 8

Causal association of epigenetic aging and COVID-19 severity and susceptibility: A bidirectional Mendelian randomization study
Wenchang Xu, Fengjun Zhang, Yingzhou Shi, et al.
Frontiers in Medicine (2022) Vol. 9
Open Access | Times Cited: 37

Aging and cancer epigenetics: Where do the paths fork?
Raúl F. Pérez, Juan Ramón Tejedor, Agustín F. Fernández, et al.
Aging Cell (2022) Vol. 21, Iss. 10
Open Access | Times Cited: 33

Cardiovascular health and four epigenetic clocks
Yun-Hsiang Lo, Wan‐Yu Lin
Clinical Epigenetics (2022) Vol. 14, Iss. 1
Open Access | Times Cited: 31

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