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:

NAC transcription factor ONAC066 positively regulates disease resistance by suppressing the ABA signaling pathway in rice
Qing Liu, Shijuan Yan, Wenjie Huang, et al.
Plant Molecular Biology (2018) Vol. 98, Iss. 4-5, pp. 289-302
Closed Access | Times Cited: 75

Showing 1-25 of 75 citing articles:

Transcription Factors Associated with Abiotic and Biotic Stress Tolerance and Their Potential for Crops Improvement
Elamin Hafiz Baillo, Roy Njoroge Kimotho, Zhengbin Zhang, et al.
Genes (2019) Vol. 10, Iss. 10, pp. 771-771
Open Access | Times Cited: 488

Phytohormones as Growth Regulators During Abiotic Stress Tolerance in Plants
Ayman El Sabagh, Mohammad Sohidul Islam, Akbar Hossain, et al.
Frontiers in Agronomy (2022) Vol. 4
Open Access | Times Cited: 176

NAC transcription factors in plant immunity
Xi Yuan, Hui Wang, Jiating Cai, et al.
Phytopathology Research (2019) Vol. 1, Iss. 1
Open Access | Times Cited: 175

Salicylic acid (SA)-mediated plant immunity against biotic stresses: An insight on molecular components and signaling mechanism
Sapna Mishra, Rajib Roychowdhury, Shatrupa Ray, et al.
Plant Stress (2024) Vol. 11, pp. 100427-100427
Open Access | Times Cited: 31

Phytohormonal signaling in plant resilience: advances and strategies for enhancing abiotic stress tolerance
Shubranil Das, Susmita Shil, Jome Rime, et al.
Plant Growth Regulation (2025)
Open Access | Times Cited: 1

Multiple roles of NAC transcription factors in plant development and stress responses
Haiyan Xiong, Haidong He, Yu Chang, et al.
Journal of Integrative Plant Biology (2025)
Closed Access | Times Cited: 1

Abscisic acid is a substrate of the ABC transporter encoded by the durable wheat disease resistance gene Lr34
Simon G. Krattinger, Joohyun Kang, Stephanie Bräunlich, et al.
New Phytologist (2019) Vol. 223, Iss. 2, pp. 853-866
Open Access | Times Cited: 101

NAC Transcription Factors as Positive or Negative Regulators during Ongoing Battle between Pathogens and Our Food Crops
Zhiyuan Bian, Huanhuan Gao, Chongying Wang
International Journal of Molecular Sciences (2020) Vol. 22, Iss. 1, pp. 81-81
Open Access | Times Cited: 72

Interaction of PpWRKY46 and PpWRKY53 regulates energy metabolism in MeJA primed disease resistance of peach fruit
Nana Ji, Yanfei Li, Hongbin Wang, et al.
Plant Physiology and Biochemistry (2022) Vol. 171, pp. 157-168
Closed Access | Times Cited: 32

The NAC transcription factor ONAC083 negatively regulates rice immunity against Magnaporthe oryzae by directly activating transcription of the RING‐H2 gene OsRFPH2‐6
Yan Bi, Hui Wang, Xi Yuan, et al.
Journal of Integrative Plant Biology (2022) Vol. 65, Iss. 3, pp. 854-875
Closed Access | Times Cited: 27

The role of NAC genes in response to biotic stresses in plants
Ribal Masri, E. Kiss
Physiological and Molecular Plant Pathology (2023) Vol. 126, pp. 102034-102034
Open Access | Times Cited: 15

Transcription factor NAC78 cooperates with NAC78 interacting protein 6 to confer drought tolerance in rice
Xiangzhen Yu, Yunjie Xie, Lanning Wang, et al.
PLANT PHYSIOLOGY (2024) Vol. 196, Iss. 2, pp. 1642-1658
Closed Access | Times Cited: 5

The NAC transcription factor PagNAC17 enhances salt tolerance in poplar by alleviating photosynthetic inhibition
Jiechen Wang, Congcong Cui, Siyue Qi, et al.
Plant Physiology and Biochemistry (2025) Vol. 221, pp. 109645-109645
Closed Access

Unraveling key genes and pathways involved in Verticillium wilt resistance by integrative GWAS and transcriptomic approaches in Upland cotton
M. Israr Khan, Daowu Hu, Shuai Dai, et al.
Functional & Integrative Genomics (2025) Vol. 25, Iss. 1
Closed Access

Pitaya HpWRKY3 Is Associated with Fruit Sugar Accumulation by Transcriptionally Modulating Sucrose Metabolic Genes HpINV2 and HpSuSy1
Wei Wei, Mei-nv Cheng, Liang-jie Ba, et al.
International Journal of Molecular Sciences (2019) Vol. 20, Iss. 8, pp. 1890-1890
Open Access | Times Cited: 53

Research progress on function of NAC transcription factors in tomato (Solanum lycopersicum L.)
Na Chen, Qin Shao, Qineng Lu, et al.
Euphytica (2023) Vol. 219, Iss. 1
Closed Access | Times Cited: 14

miR164–NAC21/22 module regulates the resistance of Malus hupehensis against Alternaria alternata by controlling jasmonic acid signaling
Tingting Zhou, Lifang Cao, Kaixu Hu, et al.
Plant Science (2023) Vol. 330, pp. 111635-111635
Closed Access | Times Cited: 14

OsNAC3 regulates seed germination involving abscisic acid pathway and cell elongation in rice
Cheng‐Wei Huang, Jia Zhao, Qianqian Huang, et al.
New Phytologist (2023) Vol. 241, Iss. 2, pp. 650-664
Closed Access | Times Cited: 13

Rice breeding for low input agriculture
Subroto Das Jyoti, Gurjeet Singh, Anjan Kumar Pradhan, et al.
Frontiers in Plant Science (2024) Vol. 15
Open Access | Times Cited: 4

Plant NAC transcription factors in the battle against pathogens
Boxiao Dong, Ye Liu, Gan Huang, et al.
BMC Plant Biology (2024) Vol. 24, Iss. 1
Open Access | Times Cited: 4

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