Benzoic acid compound ointment
Requires a prescription from a doctor or prescriber
Official documents, adverse reaction reporting, and safety monitoring
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MHRA alerts for Benzoic acid + Salicylic acid
Safety monitoring data
Yellow Card reports
The MHRA Yellow Card scheme collects reports of suspected side effects from healthcare professionals and patients. View the Drug Analysis Profile (iDAP) for real-world adverse reaction data.
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Data from the MHRA Yellow Card scheme. A reported reaction does not necessarily mean the medicine caused it. Contains public sector information licensed under the Open Government Licence v3.0.
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5 branded products available
Therapeutically similar medicines
Similarity is based on WHO Anatomical Therapeutic Chemical (ATC) classification and on a factual NHS dm+d therapeutic-grouping code prefix. Source data: NHS dm+d via TRUD (OGL v3.0), WHO ATC/DDD Index.
NHS prescribing volume and spending trends
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Supply & safety information
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Pharmacy links redirect to the retailer's own search and do not represent real-time stock levels. Shortage and safety information sourced from MHRA drug safety updates (gov.uk, Crown Copyright under OGL v3.0).
Codes for healthcare professionals and prescribing systems
These codes are used by healthcare IT systems and prescribers to identify this medicine.
NHS UK identifiers
SNOMED CT and dm+d codes from NHS TRUD (Technology Reference data Update Distribution), licensed under the Open Government Licence v3.0. BNF code shown is the factual mapping value distributed by NHS Business Services Authority (NHSBSA) in the dm+d supplementary file under OGL v3.0; it is not affiliated with, nor licensed from, the publishers of the British National Formulary.
Active and completed clinical studies from ClinicalTrials.gov
Source: ClinicalTrials.gov, a database of the U.S. National Library of Medicine (NLM), National Institutes of Health (NIH). Data accessed via ClinicalTrials.gov API v2. Trial information is provided for research purposes and does not constitute medical advice.
Academic studies and reviews for this medicine's active substance
Showing all 24 studies.
Reviews & meta-analyses: 1 · 1998–2026
Showing all 24 studies, sorted by most relevant.
Yujun Peng, Jianfei Yang, Xin Li, et al.
Annual review of plant biology, 2021
- Biological Phenomena
- Arabidopsis
- Arabidopsis Proteins
E. E. Sergeev, Y. Rodikova, E. Zhizhina
Catalysis in Industry, 2024
Hiroko Sawada, Ie-Sung Shim, Kenji Usui
Plant Science, 2006
N. Elangovan, Renjith Thomas, S. Sowrirajan, et al.
Journal of the Indian Chemical Society, 2021
P. Król, R. Igielski, Stephan Pollmann, et al.
Journal of plant physiology, 2015
- Acetates
- Cyclopentanes
- Fatty Acids, Unsaturated
Jie Wu, Wentao Zhu, Qiao Zhao
Journal of integrative plant biology, 2022
- Arabidopsis
- Arabidopsis Proteins
- Phenylalanine
Yazhi Gao, Wei Liu, Xiaoxiong Wang, et al.
Plant physiology and biochemistry : PPB, 2018
- Benzofurans
- Cinnamates
- Photosynthesis
Laurence Fraissinet-Tachet, Rachel Baltz, Julie Chong, et al.
FEBS Letters, 1998
- Plants, Toxic
- Benzoates
- Catalysis
Y. Nehela, Naglaa A. Taha, A. Elzaawely, et al.
Journal of Fungi, 2021
Tomato early blight, caused by Alternaria solani, is a destructive foliar fungal disease. Herein, the potential defensive roles of benzoic acid (BA) and two of its hydroxylated derivatives, ρ-hydroxybenzoic acid (HBA), and protocatechuic acid (PCA) against A. solani were investigated. All tested compounds showed strong dose-dependent fungistatic activity against A. solani and significantly reduced the disease development. Benzoic acid, and its hydroxylated derivatives, enhanced vegetative growth and yield traits. Moreover, BA and its derivatives induce the activation of enzymatic (POX, PPO, CAT, SlAPXs, and SlSODs) and non-enzymatic (phenolics, flavonoids, and carotenoids) antioxidant defense machinery to maintain reactive oxygen species (ROS) homeostasis within infected leaves. Additionally, BA and its hydroxylated derivatives induce the accumulation of salicylic acid (SA) and its biosynthetic genes including isochorismate synthase (SlICS), aldehyde oxidases (SlAO1 and SlAO2), and phenylalanine ammonia-lyases (SlPAL1, SlPAL2, SlPAL3, SlPAL5, and SlPAL6). Higher SA levels were associated with upregulation of pathogenesis-related proteins (SlPR-1, SlPR1a2, SlPRB1-2, SlPR4, SlPR5, SlPR6), nonexpressor of pathogenesis-related protein 1 (SlNPR1), and salicylic acid-binding protein (SlSABP2). These findings outline the potential application of BA and its hydroxylated derivatives as a sustainable alternative control strategy for early blight disease and also deciphering the physiological and biochemical mechanisms behind their protective role.
Abstract licence: CC BY
Zeyuan Zou, Q. Fan, Xiaochen Zhou, et al.
Journal of agricultural and food chemistry, 2024
- Salicylic Acid
- Camellia sinensis
- Phenylalanine
Sources: aggregated from Europe PMC (EMBL-EBI), OpenAlex, Crossref, PubMed and other open scholarly databases. Retracted articles are excluded. Study information is provided for research purposes and does not constitute medical advice.
Scientific data (pharmacology, interactions, ADME) is not yet available for this medicine. Clinical sections are sourced from the NHS dm+d database.