Gallic acid (BioDeep_00000000108)

 

Secondary id: BioDeep_00000400141, BioDeep_00000859718

human metabolite PANOMIX_OTCML-2023 blood metabolite natural product


代谢物信息卡片


3,4,5-trihydroxybenzoic acid

化学式: C7H6O5 (170.0215)
中文名称: 鞣酸, 没食子酸, 五倍子酸
谱图信息: 最多检出来源 Homo sapiens(plant) 22.77%

Reviewed

Last reviewed on 2024-07-01.

Cite this Page

Gallic acid. BioDeep Database v3. PANOMIX ltd, a top metabolomics service provider from China. https://query.biodeep.cn/s/gallic_acid (retrieved 2024-12-22) (BioDeep RN: BioDeep_00000000108). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0).

分子结构信息

SMILES: c1(c(cc(cc1O)C(=O)O)O)O
InChI: InChI=1S/C7H6O5/c8-4-1-3(7(11)12)2-5(9)6(4)10/h1-2,8-10H,(H,11,12)

描述信息

Gallic acid is an odorless white solid. Sinks in water. (USCG, 1999)
Gallic acid is a trihydroxybenzoic acid in which the hydroxy groups are at positions 3, 4, and 5. It has a role as an astringent, a cyclooxygenase 2 inhibitor, a plant metabolite, an antioxidant, an antineoplastic agent, a human xenobiotic metabolite, an EC 1.13.11.33 (arachidonate 15-lipoxygenase) inhibitor, an apoptosis inducer and a geroprotector. It is a conjugate acid of a gallate.
Gallic acid is a metabolite found in or produced by Escherichia coli (strain K12, MG1655).
Gallic Acid is a natural product found in Visnea mocanera, Ardisia paniculata, and other organisms with data available.
Gallic acid is a metabolite found in or produced by Saccharomyces cerevisiae.
A colorless or slightly yellow crystalline compound obtained from nutgalls. It is used in photography, pharmaceuticals, and as an analytical reagent.
See also: Gallic acid monohydrate (active moiety of); Paeonia lactiflora root (part of); Galium aparine whole (part of) ... View More ...
Gallic acid is an organic acid, also known as 3,4,5-trihydroxybenzoic acid, found in gallnuts, sumac, witch hazel, tea leaves, oak bark, and other plants. The chemical formula is C6H2(OH)3CO2H. Gallic acid is widely distributed in plants and is found both free and as part of tannins. It is commonly used in the pharmaceutical industry. Gallic acid can also be used to synthesize the hallucinogenic alkaloid mescaline, also known as 3,4,5-trimethoxyphenethylamine. Salts and esters of gallic acid are termed gallates. Gallic acid has been found to be s metabolite of Aspergillus (PMID:24031294).
A trihydroxybenzoic acid in which the hydroxy groups are at positions 3, 4, and 5.
Present in red wine. Japan approved food antioxidant additive

Gallic acid. CAS Common Chemistry. CAS, a division of the American Chemical Society, n.d. https://commonchemistry.cas.org/detail?cas_rn=149-91-7 (retrieved 2024-07-01) (CAS RN: 149-91-7). Licensed under the Attribution-Noncommercial 4.0 International License (CC BY-NC 4.0).
Gallic acid (3,4,5-Trihydroxybenzoic acid) is a natural polyhydroxyphenolic compound and an free radical scavenger to inhibit cyclooxygenase-2 (COX-2)[1]. Gallic acid has various activities, such as antimicrobial, antioxidant, antimicrobial, anti-inflammatory, and anticance activities[2].
Gallic acid (3,4,5-Trihydroxybenzoic acid) is a natural polyhydroxyphenolic compound and an free radical scavenger to inhibit cyclooxygenase-2 (COX-2)[1]. Gallic acid has various activities, such as antimicrobial, antioxidant, antimicrobial, anti-inflammatory, and anticance activities[2].

同义名列表

62 个代谢物同义名

GALLIC ACID (CONSTITUENT OF GRAPE SEEDS OLIGOMERIC PROANTHOCYANIDINS); InChI=1/C7H6O5/c8-4-1-3(7(11)12)2-5(9)6(4)10/h1-2,8-10H,(H,11,12; Gallic acid, certified reference material, TraceCERT(R); 3-10-00-02070 (Beilstein Handbook Reference); 3,4,5-trihydroxybenzoic acid (ACD/Name 4.0); Kyselina 3,4,5-trihydroxybenzoova [Czech]; 3,4,5-Trihydroxybenzoic acid, anhydrous; Gallic acid, 97.5-102.5\\% (titration); Kyselina 3,4,5-trihydroxybenzoova; Benzoic acid, 3,4,5-trihydroxy-; 3,4,5-trihydroxy-Benzoic acid; 3,4,5-Trihydroxybenzoic acid;; Benzoic acid,4,5-trihydroxy-; Pyrogallol-5-carboxylic acid; Gallic acid, puriss., 98.0\\%; 3,4,5-Trihydroxybenzoic acid; 3,4,5-Trihydroxybenzoicacid; 3,4,5-Trihydroxybenzoate, X; 3,5-Trihydroxybenzoic acid; 3,4,5-trihydroxy-Benzoate; 3,4,5-hydroxybenzoic acid; 5-Trihydroxybenzoic acid; Pyrogallol-5-carboxylate; 3,4,5-Trihydroxybenzoate; Kyselina gallova [Czech]; GALLIC ACID ANHYDROUS; GALLIC ACID [WHO-DD]; Gallic acid polymer; GALLIC ACID [INCI]; GALLIC ACID [HSDB]; Gallic acid, tech.; Gallic acid tech.; WLN: QVR CQ DQ EQ; Spectrum2_000399; Spectrum5_000108; GALLIC ACID [MI]; Gallic acid [NF]; Spectrum3_000254; Spectrum4_001544; Kyselina gallova; Tox21_111089_1; Gallic Acid, F; DivK1c_006403; Oprea1_087792; Tox21_111089; KBio2_003390; Tox21_202515; KBio3_001168; KBio1_001347; KBio2_005958; KBio2_000822; Acid, Gallic; gallic-acid; Gallic Acid; AI3-16412; gallate; Gallic; GALOP; GDE; Gallic acid; Gallate; Gallic acid



数据库引用编号

32 个数据库交叉引用编号

分类词条

相关代谢途径

Reactome(0)

BioCyc(0)

PlantCyc(0)

代谢反应

1 个相关的代谢反应过程信息。

Reactome(0)

BioCyc(0)

WikiPathways(1)

Plant Reactome(0)

INOH(0)

PlantCyc(0)

COVID-19 Disease Map(0)

PathBank(0)

PharmGKB(0)

1763 个相关的物种来源信息

在这里通过桑基图来展示出与当前的这个代谢物在我们的BioDeep知识库中具有相关联信息的其他代谢物。在这里进行关联的信息来源主要有:

  • PubMed: 来源于PubMed文献库中的文献信息,我们通过自然语言数据挖掘得到的在同一篇文献中被同时提及的相关代谢物列表,这个列表按照代谢物同时出现的文献数量降序排序,取前10个代谢物作为相关研究中关联性很高的代谢物集合展示在桑基图中。
  • NCBI Taxonomy: 通过文献数据挖掘,得到的代谢物物种来源信息关联。这个关联信息同样按照出现的次数降序排序,取前10个代谢物作为高关联度的代谢物集合展示在桑吉图上。
  • Chemical Taxonomy: 在物质分类上处于同一个分类集合中的其他代谢物
  • Chemical Reaction: 在化学反应过程中,存在为当前代谢物相关联的生化反应过程中的反应底物或者反应产物的关联代谢物信息。

点击图上的相关代谢物的名称,可以跳转到相关代谢物的信息页面。

亚细胞结构定位 关联基因列表
Cytoplasm 12 ACE, ALB, ANG, FASN, MAPK14, MSMP, PIK3C3, PPARG, RELA, TP53, TYR, VEGFA
Peripheral membrane protein 2 ACHE, CYP1B1
Endoplasmic reticulum membrane 1 CYP1B1
Cytoplasmic vesicle, autophagosome 1 PIK3C3
Nucleus 9 ACHE, ALB, ANG, ERH, MAPK14, PPARG, RELA, TP53, VEGFA
autophagosome 1 PIK3C3
cytosol 11 ALB, ANG, FASN, IL1B, LIPE, MAPK14, PIK3C3, PPARG, RELA, SLC2A4, TP53
phosphatidylinositol 3-kinase complex, class III 1 PIK3C3
trans-Golgi network 1 SLC2A4
centrosome 2 ALB, TP53
nucleoplasm 4 MAPK14, PPARG, RELA, TP53
RNA polymerase II transcription regulator complex 1 PPARG
Cell membrane 5 ACE, ACHE, LIPE, MGAM, SLC2A4
Multi-pass membrane protein 1 SLC2A4
Synapse 1 ACHE
cell surface 2 ACHE, VEGFA
glutamatergic synapse 3 MAPK14, PIK3C3, RELA
Golgi apparatus 4 ACHE, ALB, FASN, VEGFA
growth cone 1 ANG
neuromuscular junction 1 ACHE
neuronal cell body 1 ANG
sarcolemma 1 SLC2A4
Cytoplasm, cytosol 2 IL1B, LIPE
Lysosome 3 ACE, IL1B, TYR
Presynapse 1 SLC2A4
endosome 2 ACE, PIK3C3
plasma membrane 5 ACE, ACHE, FASN, MGAM, SLC2A4
Membrane 10 ACE, ACHE, CYP1B1, FASN, LIPE, MGAM, PIK3C3, SLC2A4, TP53, VEGFA
apical plasma membrane 1 MGAM
caveola 1 LIPE
extracellular exosome 5 ACE, ALB, FASN, MGAM, SLC2A4
endoplasmic reticulum 3 ALB, TP53, VEGFA
extracellular space 8 ACE, ACHE, ALB, ANG, CXCL8, IL1B, MSMP, VEGFA
perinuclear region of cytoplasm 4 ACHE, PPARG, SLC2A4, TYR
adherens junction 1 VEGFA
mitochondrion 3 CYP1B1, MAPK14, TP53
protein-containing complex 2 ALB, TP53
intracellular membrane-bounded organelle 3 CYP1B1, PPARG, TYR
Microsome membrane 1 CYP1B1
Single-pass type I membrane protein 2 ACE, TYR
Secreted 9 ACE, ACHE, ALB, ANG, CXCL8, IL1B, MGAM, MSMP, VEGFA
extracellular region 9 ACE, ACHE, ALB, ANG, CXCL8, IL1B, MAPK14, MGAM, VEGFA
Single-pass membrane protein 1 MGAM
Mitochondrion matrix 1 TP53
mitochondrial matrix 1 TP53
Extracellular side 1 ACHE
anchoring junction 1 ALB
transcription regulator complex 2 RELA, TP53
Cytoplasm, cytoskeleton, microtubule organizing center, centrosome 1 TP53
external side of plasma membrane 2 ACE, SLC2A4
Secreted, extracellular space, extracellular matrix 1 VEGFA
multivesicular body 1 SLC2A4
actin cytoskeleton 1 ANG
T-tubule 1 SLC2A4
nucleolus 2 ANG, TP53
Melanosome membrane 1 TYR
midbody 2 ERH, PIK3C3
clathrin-coated pit 1 SLC2A4
Golgi-associated vesicle 1 TYR
Cytoplasm, perinuclear region 1 SLC2A4
Membrane raft 1 SLC2A4
Cytoplasm, cytoskeleton 1 TP53
GABA-ergic synapse 1 PIK3C3
extracellular matrix 1 VEGFA
Peroxisome 1 PIK3C3
basement membrane 2 ACHE, ANG
sarcoplasmic reticulum 1 SLC2A4
Nucleus, PML body 1 TP53
PML body 1 TP53
secretory granule 2 IL1B, VEGFA
axoneme 1 PIK3C3
nuclear speck 1 MAPK14
Late endosome 1 PIK3C3
receptor complex 1 PPARG
ciliary basal body 1 ALB
chromatin 3 PPARG, RELA, TP53
phagocytic vesicle membrane 1 PIK3C3
Chromosome 1 ANG
centriole 1 ALB
brush border membrane 1 ACE
Nucleus, nucleolus 1 ANG
spindle pole 2 ALB, MAPK14
blood microparticle 1 ALB
sperm midpiece 1 ACE
Lipid-anchor, GPI-anchor 1 ACHE
site of double-strand break 1 TP53
Endomembrane system 1 SLC2A4
Lipid droplet 1 LIPE
Membrane, caveola 1 LIPE
phagophore assembly site 1 PIK3C3
phosphatidylinositol 3-kinase complex, class III, type I 1 PIK3C3
phosphatidylinositol 3-kinase complex, class III, type II 1 PIK3C3
Cytoplasmic vesicle membrane 1 SLC2A4
tertiary granule membrane 1 MGAM
Melanosome 2 FASN, TYR
Cytoplasm, Stress granule 1 ANG
cytoplasmic stress granule 1 ANG
side of membrane 1 ACHE
germ cell nucleus 1 TP53
replication fork 1 TP53
basal plasma membrane 1 ACE
clathrin-coated vesicle 1 SLC2A4
trans-Golgi network transport vesicle 1 SLC2A4
ficolin-1-rich granule lumen 1 MAPK14
secretory granule lumen 1 MAPK14
endoplasmic reticulum lumen 1 ALB
nuclear matrix 1 TP53
transcription repressor complex 1 TP53
platelet alpha granule lumen 2 ALB, VEGFA
endocytic vesicle 1 ANG
Secreted, extracellular exosome 1 IL1B
presynaptic endosome 1 PIK3C3
methylosome 1 ERH
vesicle membrane 1 SLC2A4
[Isoform 1]: Nucleus 1 TP53
synaptic cleft 1 ACHE
ficolin-1-rich granule membrane 1 MGAM
postsynaptic endosome 1 PIK3C3
Autolysosome 1 PIK3C3
angiogenin-PRI complex 1 ANG
[Angiotensin-converting enzyme, soluble form]: Secreted 1 ACE
[Isoform Testis-specific]: Cell membrane 1 ACE
insulin-responsive compartment 1 SLC2A4
[N-VEGF]: Cytoplasm 1 VEGFA
[VEGFA]: Secreted 1 VEGFA
[Isoform L-VEGF189]: Endoplasmic reticulum 1 VEGFA
[Isoform VEGF121]: Secreted 1 VEGFA
[Isoform VEGF165]: Secreted 1 VEGFA
VEGF-A complex 1 VEGFA
NF-kappaB p50/p65 complex 1 RELA
[Isoform H]: Cell membrane 1 ACHE
NF-kappaB complex 1 RELA
glycogen granule 1 FASN
ciliary transition fiber 1 ALB


文献列表

  • Cuicui Xu, Xinke Wang, Jinlong Han, Zhengwei Gu, Qingmei Guo. LMD and LC-MS-based chemical constituents and pharmacological effects assessment for two different processing methods of the root of Paeonia lactiflora Pall. Journal of pharmaceutical and biomedical analysis. 2024 Aug; 245(?):116184. doi: 10.1016/j.jpba.2024.116184. [PMID: 38692214]
  • Yi Yang, Zhijing Ye, Yunxuan Qin, Sreeni Pathirana, Leandro Dias Araujo, Neill J Culley, Paul A Kilmartin. Effects of post-fermentation addition of green tea extract for sulfur dioxide replacement on Sauvignon Blanc wine phenolic composition, antioxidant capacity, colour, and mouthfeel attributes. Food chemistry. 2024 Jul; 447(?):138976. doi: 10.1016/j.foodchem.2024.138976. [PMID: 38492300]
  • Wei-Ting Wang, Yan-Yu Zhang, Zi-Rui Li, Juan-Min Li, Hai-Shan Deng, Yuan-Yuan Li, Hua-Yi Yang, Chi Chou Lau, Yi-Jing Yao, Hu-Dan Pan, Liang Liu, Ying Xie, Hua Zhou. Syringic acid attenuates acute lung injury by modulating macrophage polarization in LPS-induced mice. Phytomedicine : international journal of phytotherapy and phytopharmacology. 2024 Jul; 129(?):155591. doi: 10.1016/j.phymed.2024.155591. [PMID: 38692075]
  • Muhammad Nafees, Muhammad Azhar Ali, Linlin Qiu, Ying Yin, Meiling Xu, Guobing Wang, Shafaqat Ali, Hongyan Guo. Mechanistic approach of tannery wastewater and sulfadiazine mutual toxicity in wheat (Triticum aestivum L.) and mitigation through exogenous application of gallic acid. Chemosphere. 2024 Jun; 358(?):142203. doi: 10.1016/j.chemosphere.2024.142203. [PMID: 38697571]
  • Ran Cheng, Xiaowan Wang, Lihua Huang, Zhisheng Lu, Aijun Wu, Shan Guo, Chuang Li, Wei Mao, Ying Xie, Peng Xu, Ruimin Tian. Novel insights into the protective effects of leonurine against acute kidney injury: Inhibition of ER stress-associated ferroptosis via regulating ATF4/CHOP/ACSL4 pathway. Chemico-biological interactions. 2024 May; 395(?):111016. doi: 10.1016/j.cbi.2024.111016. [PMID: 38670420]
  • Xing Yang, Chunsheng Li, Shuang Liu, Yunlong Li, Xinyu Zhang, Qiang Wang, Jin Ye, Yong Lu, Yujie Fu, Jiating Xu. Gallic acid-loaded HFZIF-8 for tumor-targeted delivery and thermal-catalytic therapy. Nanoscale. 2024 May; 16(19):9496-9508. doi: 10.1039/d4nr01102c. [PMID: 38651386]
  • Yilin Zheng, Yuqi Geng, Wenlong Hou, Zhe Li, Caihong Cheng, Xiuping Wang, Yuedong Yang. Study on the Antifungal Activity of Gallic Acid and Its Azole Derivatives against Fusarium graminearum. Molecules (Basel, Switzerland). 2024 Apr; 29(9):. doi: 10.3390/molecules29091996. [PMID: 38731487]
  • Jiajing Duan, Xiuxia Zheng, Ran Tao, Long Li, Fengzhong Wang, Yufeng Sun, Bei Fan. Development of a Monoclonal Antibody-Based Indirect Competitive Enzyme-Linked Immunosorbent Assay for the Rapid Detection of Gallic Acid. Biosensors. 2024 Apr; 14(4):. doi: 10.3390/bios14040182. [PMID: 38667175]
  • Yu Wang, Shengjun Han, Zongwei Hao, Zongyan Gu, Chao Li, Zongjun Wu, Zhongyun Zhao, Yaqing Xiao, Yingnan Liu, Kang Liu, Mingming Zheng, Yiqun Du, Yibin Zhou, Zhenyu Yu. Preparation of the black rice starch-gallic acid complexes by ultrasound treatment: Physicochemical properties, multiscale structure, and in vitro digestibility. International journal of biological macromolecules. 2024 Apr; 263(Pt 2):130331. doi: 10.1016/j.ijbiomac.2024.130331. [PMID: 38403209]
  • Weiguo Chen, Yishuang Lu, Xiaoya Sun, Jiafu Leng, Shuai Lin, Xin He, Chunfeng Zhang, Chunsu Yuan. A multifunctional CaCO3 bioreactor coated with coordination polymers enhances cancer immunotherapy. Journal of controlled release : official journal of the Controlled Release Society. 2024 Apr; 368(?):780-796. doi: 10.1016/j.jconrel.2024.03.026. [PMID: 38499091]
  • Qizhu Chen, Qiuping Qian, Hongbo Xu, Hao Zhou, Linjie Chen, Nannan Shao, Kai Zhang, Tao Chen, Haijun Tian, Zhiguang Zhang, Morgan Jones, Kenny Yat Hong Kwan, Mathew Sewell, Shuying Shen, Xiangyang Wang, Moonis Ali Khan, Pooyan Makvandi, Shengwei Jin, Yunlong Zhou, Aimin Wu. Mitochondrial-Targeted Metal-Phenolic Nanoparticles to Attenuate Intervertebral Disc Degeneration: Alleviating Oxidative Stress and Mitochondrial Dysfunction. ACS nano. 2024 Mar; 18(12):8885-8905. doi: 10.1021/acsnano.3c12163. [PMID: 38465890]
  • Aziz Zouhri, Toufik Bouddine, Naoual El Menyiy, Yahya El-Mernissi, Hassan Laaroussi, Mohamed Chebaibi, Hassan Amhamdi, Abdelhay Elharrak, Hiba-Allah Nafidi, Baye Sitotaw, Yousef A Bin Jardan, Mohammed Bourhia, Lhoussain Hajji. Chemical composition and potential antioxidant, anti-inflammatory, and analgesic efficacy of Cistus albidus L. Acta pharmaceutica (Zagreb, Croatia). 2024 Mar; 74(1):81-99. doi: 10.2478/acph-2024-0002. [PMID: 38554388]
  • Jayshree V Changade, Harsha Thanvi, Chandrashekhar Raut, Manasi Chavan, Prachi Prasad, Vaibhav S Ladke. In vitro Evaluation of Anti-Cancer Potential of Different Solvent Extracts Derived from Clerodendrum Infortunatum Linn against Cervical Cancer. Asian Pacific journal of cancer prevention : APJCP. 2024 Mar; 25(3):1065-1075. doi: 10.31557/apjcp.2024.25.3.1065. [PMID: 38546089]
  • Yuting Sun, Qianping Chen, Rui Dang, Yujuan Xie, Xuemei Cheng, Xuemei Huang, Shaojie Zhou, Changhong Wang. Skin irritation assessment and potential mechanism of Capparis spinosa L. fruits. Journal of ethnopharmacology. 2024 Mar; 321(?):117510. doi: 10.1016/j.jep.2023.117510. [PMID: 38030023]
  • Siluana Katia Tischer Seraglio, Mayara Schulz, Bibiana Silva, Carolina Turnes Pasini Deolindo, Rodrigo Barcellos Hoff, Luciano Valdemiro Gonzaga, Roseane Fett, Ana Carolina Oliveira Costa. Chemical Constituents and Antioxidant Potential of Red Guava (Psidium cattleianum Sabine) from Southern Brazil in Different Edible Ripening Stages. Plant foods for human nutrition (Dordrecht, Netherlands). 2024 Mar; 79(1):166-172. doi: 10.1007/s11130-024-01141-6. [PMID: 38252363]
  • Cem Baltacıoğlu, Hande Baltacıoğlu, İlhami Okur, Mehmet Yetişen, Hami Alpas. Recovery of phenolic compounds from peach pomace using conventional solvent extraction and different emerging techniques. Journal of food science. 2024 Mar; 89(3):1672-1683. doi: 10.1111/1750-3841.16972. [PMID: 38343298]
  • N D H Cheong, E Mohamed, N Haron, S N Camalxaman, A Abdullah, M I Mohamad Yusof, A R Ishak, S Ab-Rahim, Z Eshak, A R Tualeka. Phytochemical quantification and HPLC analysis of Parkia speciosa pod extract. The Medical journal of Malaysia. 2024 Mar; 79(Suppl 1):34-39. doi: ". [PMID: 38555883]
  • Muhammad Bilal Azmi, Muhammad Yahya Noori, Syed Danish Haseen Ahmed, Bader Saud Alotaibi, Sadaf Naeem, Mohsin Kazi, Muhammad Islam, Abdul Wadood. Exploring Zingiber officinale bioactive compounds for inhibitory effects on Streptococcus pneumoniae capsular polysaccharide biosynthesis proteins: In silico study. Pakistan journal of pharmaceutical sciences. 2024 Mar; 37(2):275-289. doi: ". [PMID: 38767094]
  • Omayma A R AboZaid, Mostafa A Abdel-Maksoud, Ibrahim A Saleh, Mohamed A El-Tayeb, Sawsan M El-Sonbaty, Faten E Shoker, Maha A Salem, Ayat M Emad, Samson Mani, Arunagiri Kuha Deva Magendhra Rao, Mohamed A Mamdouh, Mohamed H Kotob, Mohammed Aufy, Ahmad S Kodous. Targeting the NF-κB p65/Bcl-2 signaling pathway in hepatic cellular carcinoma using radiation assisted synthesis of zinc nanoparticles coated with naturally isolated gallic acid. Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie. 2024 Mar; 172(?):116274. doi: 10.1016/j.biopha.2024.116274. [PMID: 38364738]
  • Zedong Xiang, Huida Guan, Xiang Zhao, Qi Xie, Zhejun Xie, Fujie Cai, Rui Dang, Manlin Li, Changhong Wang. Dietary gallic acid as an antioxidant: A review of its food industry applications, health benefits, bioavailability, nano-delivery systems, and drug interactions. Food research international (Ottawa, Ont.). 2024 Mar; 180(?):114068. doi: 10.1016/j.foodres.2024.114068. [PMID: 38395544]
  • Mamoon Ur Rasheed, Syed Ali Raza Naqvi, Fahad Al-Asmari, Muhammad Abdul Rahim, Mohamed Fawzy Ramadan. Phytochemicals, Health-Promoting Effects, and Enzyme Inhibition Traits of Phlomis stewartii Extracts. Molecules (Basel, Switzerland). 2024 Feb; 29(5):. doi: 10.3390/molecules29051049. [PMID: 38474560]
  • Roberta Cassano, Federica Curcio, Roberta Sole, Silvia Mellace, Sonia Trombino. Gallic Acid-Based Hydrogels for Phloretin Intestinal Release: A Promising Strategy to Reduce Oxidative Stress in Chronic Diabetes. Molecules (Basel, Switzerland). 2024 Feb; 29(5):. doi: 10.3390/molecules29050929. [PMID: 38474441]
  • Jiyeon Kim, Bo Kyung Kim, Sang Hyun Moh, Goo Jang, Jae Yong Ryu. Investigation of the General Molecular Mechanisms of Gallic Acid via Analyses of Its Transcriptome Profile. International journal of molecular sciences. 2024 Feb; 25(4):. doi: 10.3390/ijms25042303. [PMID: 38396979]
  • Nimra Riasat, Muniba Jadoon, Nosheen Akhtar, Marya Nawaz Kiani, Humaira Fatima, Mostafa A Abdel-Maksoud, Syeda Masooma Ali, Akram A Alfuraydi, M Junaid Dar, Ihsan Ul Haq. Polyphenolic characterization and biological assessment of Acacia nilotica (L.) wild. Ex delilie: An In vitro and In vivo appraisal of wound healing potential. Journal of ethnopharmacology. 2024 Feb; ?(?):117842. doi: 10.1016/j.jep.2024.117842. [PMID: 38310987]
  • Zijing Wu, Yang Liu, Rongfu Huang, Weixiong Huang. Mechanistic investigation of the electricity and gallic acid synergistically accelerated Fe(III)/Fe(II) cycle for the degradation of carbamazepine. Chemosphere. 2024 Feb; 349(?):140915. doi: 10.1016/j.chemosphere.2023.140915. [PMID: 38070611]
  • Judun Zheng, Tianjun Chen, Ke Wang, Cheng Peng, Minghai Zhao, Qiulin Xie, Bin Li, Hongsheng Lin, Zheng Zhao, Zhisheng Ji, Ben Zhong Tang, Yuhui Liao. Engineered Multifunctional Zinc-Organic Framework-Based Aggregation-Induced Emission Nanozyme for Accelerating Spinal Cord Injury Recovery. ACS nano. 2024 Jan; 18(3):2355-2369. doi: 10.1021/acsnano.3c10541. [PMID: 38197586]
  • Shuang Liu, Yu Sun, Jin Ye, Chunsheng Li, Qiang Wang, Mengting Liu, Yujie Cui, Chen Wang, Guanqiao Jin, Yujie Fu, Jiating Xu, Xinqiang Liang. Targeted Delivery of Active Sites by Oxygen Vacancy-Engineered Bimetal Silicate Nanozymes for Intratumoral Aggregation-Potentiated Catalytic Therapy. ACS nano. 2024 Jan; 18(2):1516-1530. doi: 10.1021/acsnano.3c08780. [PMID: 38172073]
  • Francisco Flávio da Silva Lopes, Jorge Luís Eloi Silva, Natália de Morais Pereira Eloi, Ana Lívya Moreira Rodrigues, Marcus Vinícius Ferreira da Silva, Renato Almeida Montes, Sara Ingrid Caetano Gomes Barbosa, Daniela Ribeiro Alves, Lucas Soares Frota, Selene Maia Morais. Chemical Characterization, Phenolic Compounds Quantification, and Assessment of Antioxidant and Anti-Acetylcholinesterase Activities of Byrsonima sericea DC fruits. Chemistry & biodiversity. 2024 Jan; ?(?):e202301760. doi: 10.1002/cbdv.202301760. [PMID: 38217459]
  • Eirini Stini, Dimitrios Tsimogiannis, Vassiliki Oreopoulou. The Valorisation of Melissa officinalis Distillation By-Products for the Production of Polyphenol-Rich Formulations. Molecules (Basel, Switzerland). 2024 Jan; 29(2):. doi: 10.3390/molecules29020377. [PMID: 38257290]
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