OpenAlex Citation Counts

OpenAlex Citations Logo

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:

Forming and waking dormant cells: The ppGpp ribosome dimerization persister model
Thomas K. Wood, Sooyeon Song
Biofilm (2020) Vol. 2, pp. 100018-100018
Open Access | Times Cited: 64

Showing 1-25 of 64 citing articles:

Targeting the Holy Triangle of Quorum Sensing, Biofilm Formation, and Antibiotic Resistance in Pathogenic Bacteria
Ronit Vogt Sionov, Doron Steinberg
Microorganisms (2022) Vol. 10, Iss. 6, pp. 1239-1239
Open Access | Times Cited: 104

Bacterial persisters: molecular mechanisms and therapeutic development
Hongxia Niu, Jiaying Gu, Ying Zhang
Signal Transduction and Targeted Therapy (2024) Vol. 9, Iss. 1
Open Access | Times Cited: 50

Evolution of Bacterial Tolerance Under Antibiotic Treatment and Its Implications on the Development of Resistance
Jordy Evan Sulaiman, Henry Lam
Frontiers in Microbiology (2021) Vol. 12
Open Access | Times Cited: 75

De novo gene synthesis by an antiviral reverse transcriptase
Stephen Tang, Valentin Conte, Dennis J. Zhang, et al.
Science (2024) Vol. 386, Iss. 6717
Open Access | Times Cited: 13

‘Viable but non‐culturable cells’ are dead
Sooyeon Song, Thomas K. Wood
Environmental Microbiology (2021) Vol. 23, Iss. 5, pp. 2335-2338
Closed Access | Times Cited: 43

Antibiotic tolerance is associated with a broad and complex transcriptional response in E. coli
Heather S. Deter, Tahmina Hossain, Nicholas C. Butzin
Scientific Reports (2021) Vol. 11, Iss. 1
Open Access | Times Cited: 38

Sleeping ribosomes: Bacterial signaling triggers RaiA mediated persistence to aminoglycosides
Manon Lang, Evelyne Krin, Chloé Korlowski, et al.
iScience (2021) Vol. 24, Iss. 10, pp. 103128-103128
Open Access | Times Cited: 37

A link between aging and persistence
Audrey Menegaz Proenca, Camilla U. Rang, Lin Chao
Antimicrobial Agents and Chemotherapy (2025)
Open Access

Undecanoic Acid, Lauric Acid, and N-Tridecanoic Acid Inhibit Escherichia coli Persistence and Biofilm Formation
Xing Jin, Jiacheng Zhou, Gabriella Richey, et al.
Journal of Microbiology and Biotechnology (2021) Vol. 31, Iss. 1, pp. 130-136
Open Access | Times Cited: 31

The Primary Physiological Roles of Autoinducer 2 in Escherichia coli Are Chemotaxis and Biofilm Formation
Sooyeon Song, Thomas K. Wood
Microorganisms (2021) Vol. 9, Iss. 2, pp. 386-386
Open Access | Times Cited: 27

Combatting Persister Cells With Substituted Indoles
Sooyeon Song, Thomas K. Wood
Frontiers in Microbiology (2020) Vol. 11
Open Access | Times Cited: 30

Antibiotic tolerance, persistence, and resistance of the evolved minimal cell, Mycoplasma mycoides JCVI-Syn3B
Tahmina Hossain, Heather S. Deter, Eliza J. Peters, et al.
iScience (2021) Vol. 24, Iss. 5, pp. 102391-102391
Open Access | Times Cited: 23

Toxin/antitoxin systems induce persistence and work in concert with restriction/modification systems to inhibit phage
Laura Fernández-García, Sooyeon Song, Joy Kirigo, et al.
Microbiology Spectrum (2023) Vol. 12, Iss. 1
Open Access | Times Cited: 10

Are we really studying persister cells?
Sooyeon Song, Thomas K. Wood
Environmental Microbiology Reports (2020) Vol. 13, Iss. 1, pp. 3-7
Closed Access | Times Cited: 24

Advances in yeast preservation: physiological aspects for cell perpetuation
Antonio A. Câmara, Anderson S. Sant’Ana
Current Opinion in Food Science (2020) Vol. 38, pp. 62-70
Closed Access | Times Cited: 22

Single-cell analysis reveals that cryptic prophage protease LfgB protects Escherichia coli during oxidative stress by cleaving antitoxin MqsA
Laura Fernández-García, Xinyu Gao, Joy Kirigo, et al.
Microbiology Spectrum (2024) Vol. 12, Iss. 2
Open Access | Times Cited: 2

Diverse physiological roles of the MqsR/MqsA toxin/antitoxin system
Viviana Sanchez‐Torres, Joy Kirigo, Thomas K. Wood
Deleted Journal (2024) Vol. 1, Iss. 1
Open Access | Times Cited: 2

Implications of lytic phage infections inducing persistence
Viviana Sanchez‐Torres, Joy Kirigo, Thomas K. Wood
Current Opinion in Microbiology (2024) Vol. 79, pp. 102482-102482
Closed Access | Times Cited: 2

Ribosomal dormancy at the nexus of ribosome homeostasis and protein synthesis
Saloni Koli, Sunil Shetty
BioEssays (2024) Vol. 46, Iss. 7
Open Access | Times Cited: 2

Small Alarmone Synthetases RelP and RelQ of Staphylococcus aureus Are Involved in Biofilm Formation and Maintenance Under Cell Wall Stress Conditions
Andrea Salzer, Daniela Keinhörster, Christina Kästle, et al.
Frontiers in Microbiology (2020) Vol. 11
Open Access | Times Cited: 19

Ribosome inactivation by Escherichia coli GTPase RsgA inhibits T4 phage
Laura Fernández‐García, María Tomás, Thomas K. Wood
Frontiers in Microbiology (2023) Vol. 14
Open Access | Times Cited: 6

Effect of subinhibitory exposure to quaternary ammonium compounds on the ciprofloxacin susceptibility of Escherichia coli strains in animal husbandry
Helder Maertens, Kristel Demeyere, Koen De Reu, et al.
BMC Microbiology (2020) Vol. 20, Iss. 1
Open Access | Times Cited: 16

Bacterial survivors: evaluating the mechanisms of antibiotic persistence
Xiaoyi Shi, Ashraf Zarkan
Microbiology (2022) Vol. 168, Iss. 12
Closed Access | Times Cited: 9

Purine metabolism regulates Vibrio splendidus persistence associated with protein aggresome formation and intracellular tetracycline efflux
Yanan Li, Thomas K. Wood, Weiwei Zhang, et al.
Frontiers in Microbiology (2023) Vol. 14
Open Access | Times Cited: 5

Escherichia coli cryptic prophages sense nutrients to influence persister cell resuscitation
Sooyeon Song, Jun‐Seob Kim, Ryota Yamasaki, et al.
Environmental Microbiology (2021) Vol. 23, Iss. 11, pp. 7245-7254
Open Access | Times Cited: 12

Page 1 - Next Page

Scroll to top