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enfenamic acid (Tromaril / enfenamic acid)

✓ Approved

Unichem · 小分子 · 小分子

什么是 enfenamic acid?

enfenamic acid 是一种小分子,由Unichem研发。该药已获批,用于治疗相关适应症。

药物档案

商品名Tromaril, enfenamic acid
公司Unichem
药物类别小分子
状态Approved

治疗适应症

enfenamic acid 针对 1 个适应症,涉及 1 个治疗领域。

治疗领域疾病/病症分期
Hepatobiliary disordersHepatitis✓ Approved

相关研究文献

PubMedJournal of inherited metabolic disease2026-08-05

Baat-Deficient Mice Recapitulate Elevated 7α-Hydroxy-3-Oxo-4-Cholestenoic Acid Observed in a Japanese Patient With BAAT Deficiency.

Koga Soma S, Takei Hajime H, Tamura Ryutaro R, Takaki Yugo Y et al.

Bile acid Coenzyme A: amino acid N-acyltransferase (BAAT) catalyzes the conjugation of bile acids with taurine or glycine, a process essential for bile acid solubility and intestinal lipid absorption. Mutations in BAAT cause an inborn error of bile acid metabolism, typically characterized by reduced conjugated bile acids and fat-soluble vitamin deficiency. However, several clinical features of BAAT deficiency cannot be fully explained by impaired conjugation alone, suggesting the presence of broader metabolic disturbances. In this study, we analyzed serum bile acid and intermediate profiles in a Japanese patient with genetically confirmed BAAT deficiency and identified a marked elevation of 7α-hydroxy-3-oxo-4-cholestenoic acid (7-HOCA), a key intermediate in bile acid synthesis. To investigate the metabolic consequences of BAAT loss, we generated a hepatic Baat knockdown mouse model using adeno-associated virus serotype 8-mediated delivery of Nme2Cas9 and Baat-targeting sgRNA. This model faithfully recapitulated the accumulation of 7-HOCA observed in the patient, together with a significant reduction in amino acid-conjugated bile acids. Integrated analyses combining bile acid profiling, quantitative PCR, and stable-isotope tracing of cholesterol demonstrated enhanced cholesterol flux toward bile acid biosynthetic pathways and upregulation of bile acid synthetic enzymes in Baat-deficient livers. These findings indicate that BAAT deficiency leads to dysregulated bile acid synthesis in addition to defective conjugation. Together, our results reveal a previously unrecognized metabolic phenotype of BAAT deficiency and provide mechanistic insight into its pathophysiology, establishing a novel in vivo model for studying bile acid metabolism beyond simple conjugation defects.

PMID 42554252
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PubMedApplied and environmental microbiology2026-08-05

Exploring Lachancea thermotolerans biodiversity: insights into lactic acid production and carbon metabolism in response to oxygen availability.

Jacobs Theo R TR, Setati Mathabatha E ME, Camarasa Carole C, Divol Benoit B

Lactic acid production by Lachancea thermotolerans offers a promising biological strategy to restore wine acidity often compromised by climate change, yet this metabolic trait remains highly variable and poorly controlled. This study systematically evaluated the impact of controlled oxygenation regimes on fermentation performance and primary metabolism in three genetically distinct L. thermotolerans strains. Oxygen availability drastically altered metabolic fluxes. Under continuous aerobic conditions, carbon was redirected toward biomass formation (9- to 13-fold increase), with reduced ethanol and lactic acid yields, as well as increased succinic acid, acetoin, and 2,3-butanediol, whereas fully anaerobic conditions lowered fermentation performance but substantially increased lactic acid. These results confirmed that L. thermotolerans is a weakly Crabtree-positive yeast with mixed respiratory-fermentative metabolism. Carbon redistribution under aerobic conditions was not fully compensated by measured metabolites, resulting in substantially decreased carbon recovery (~70%) and suggesting undetermined respiratory CO2 production alongside diversion of carbon toward undetermined intracellular components. This imbalance was supported by a decline in cell density following peak growth, consistent with potential redox imbalance or oxidative stress. Lactic acid production occurred primarily under oxygen limitation, independent of ethanol formation, indicating a regulated, facultative adaptive response rather than a constitutive fermentation product. Strain-dependent differences further revealed distinct carbon allocation strategies. While oxygen strongly influenced metabolic behavior, pulse strategies showed limited, condition-dependent effects, highlighting the importance of timing and intensity for modulating lactic acid production. Overall, oxygen is a powerful lever to modulate metabolic fluxes in L. thermotolerans, but its application for predictable bio-acidification requires further optimization.IMPORTANCEWine acidity is increasingly difficult to maintain under climate change, creating a need for reliable biological solutions. Some strains of Lachancea thermotolerans can produce lactic acid during fermentation, but this metabolic trait is inconsistent and difficult to control. This study shows that oxygen availability is a key factor shaping how this yeast uses carbon, shifting it between growth and lactic acid production. Under the continuous aerobic condition, carbon flux was redirected toward biomass, whereas the fully anaerobic condition favored lactic acid production but reduced fermentation performance. Importantly, pulsed oxygen additions did not provide consistent control of lactic acid production, but they revealed trends that highlight the importance of timing and intensity. These findings show that lactic acid production is a flexible response to environmental conditions rather than a constitutive trait. This work provides a foundation for developing strategies to better control lactic acid production through timed oxygen addition during fermentation.

PMID 42554494
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PubMedMacromolecular bioscience2026-08-05

Phosphonic Acid-Enriched Nanogels as High Relaxivity Platforms for Enhanced Magnetic Resonance Imaging and Drug Delivery.

Liu Chanyuan C, Li Zhifang Z, Jiang Yujiao Y, Hu Xuelan X et al.

Clinically small-molecule magnetic resonance imaging (MRI) contrast agents face limitations due to safety concerns, low relaxivity, narrow imaging windows, and restricted targeting capabilities. This study synthesized biocompatible nanogels via the polymerization of N-vinyl caprolactam and vinyl phosphonic acid. The nanogels containing phosphonic acid groups could tightly bind with Mn2+, which could improve the biosafety by preventing the release of free Mn2+. Meanwhile, the strong ligand effect improved the longitudinal relaxivity of encapsulated Mn2+ to 29.8 mM- 1s- 1, which was roughly 3.5 times, 10.6 times, and 6.6 times higher than that of manganese chloride (MnCl2), mangafodipir (MnDPDP) and gadolinium diethylenetriaminepentaacetic acid (Gd-DTPA), respectively. These nanogels exhibited the capability of targeting bone metastases and bone tissues in vivo owing to the phosphonic acid groups. Moreover, these nanogels-based contrast agents prolonged the effective imaging window due to the increased circulation time. They also exhibited a loading capacity for clinical hydrophobic drugs, such as atovaquone (ATO), thereby potentially improving the pharmacokinetics. This work highlights the prospect of poly(vinyl phosphonic acid) based nanogels as multifunctional nanoplatforms for diagnostic and therapeutic applications.

PMID 42554216
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PubMedAngewandte Chemie (International ed. in English)2026-08-05

Dynamic Fluorescence Visualization of Nonequilibrium Supramolecular Assembly Regulated by a Proton Reservoir.

Wang Qian Q, Xu Hanren H, An Hongyu H, Jiang Jianfeng J et al.

Living systems sustain nonequilibrium supramolecular assemblies through continuous energy input and concomitant dissipation, with adenosine triphosphate (ATP) serving as a universal chemical fuel that regulates dynamic processes by coupling hydrolysis to downstream chemical or conformational changes. Biomimetic recreation of this behavior remains challenging because fuel-mediated regulation in artificial assemblies is typically coupled to building-block structure, limiting independent control over assembly dynamics and real-time monitoring. Here we report amphiphile-based fluorescent assemblies regulated by a time-programmable proton reservoir, where the fuel-consuming esterification-hydrolysis cycle is decoupled from the building blocks and controls assembly through programmed acid availability. The amphiphilic building blocks undergo stimulus-responsive assembly with fluorescence color tunable from blue to green, yellow, and white, and quantum yields spanning 1.7%-71.9%. The proton reservoir temporarily holds acid in hydrolysable esterified forms and subsequently regenerates acid over prescribed timescales; by molecular design, the acid-masking period is tuned from 0 to 250 min and acid regeneration from 10 to 120 min. Coupling this cycle to the fluorescent assembly regulates nonequilibrium organization, enables catalytic nucleophilic reactions, and provides an intrinsic optical signal for visualizing fuel consumption and assembly transformation in real time.

PMID 42554497
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PubMedFrontiers in microbiology2026-08-05

The role of the gut microbiota-uric acid metabolism axis in high-altitude hyperuricemia: dysregulation mechanisms, pathway associations and therapeutic perspectives.

Shi Chuankai C, Li Lemeng L, Ge Wenping W, Gao Yuan Y et al.

High-altitude areas (≥2500 m) are characterized by low oxygen concentrations, which leads more people affected by high uronic acid in the blood. This review systematically investigates the "gut microbiota-uric acid metabolism axis" as a potential target for inhibiting Hyperuricemia (HUA). This review introduces the four functions of the axis: direct reduction of uric acid, intestinal excretion, regulation of uricase expression, and the intestinal-renal axis signal; then investigates how hypoxia alters all of these paths. In addition, this review illustrates how this axis is related to the classical metabolic pathway of purine synthesis, renal excretion, lactate metabolism, inflammatory-oxidative stress and genetic susceptibility. Adaptation difference: Native highlanders and migrants show different degrees of adjustment to life in the mountains, and migrants are relatively more prone to axis dysfunction. Finally, this review introduces targeted intervention strategies, such as probiotics, prebiotics, fecal microbiota transplantation, and their combination with uric acid-lowering or anti-inflammatory drugs, and put forward a population-stratified precision intervention framework. Overall, this paper provides a theoretical foundation and novel direction for understanding and preventing plateau HUA.

PMID 42553399
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PubMedBrazilian journal of veterinary medicine2026-08-05

Optimizing osteochondral decalcification and histological processing in ovine joint models.

Faraldo Natália Camargo NC, Ribeiro Marcela Dos Santos MDS, Apolonio Emanuel Vitor Pereira EVP, Ferrari Lorena Cardozo LC et al.

Decalcification is a critical step in bone and cartilage histology that directly influences tissue preservation and staining quality. This study aimed to establish an efficient decalcification protocol for ovine stifle joint tissues while optimizing their morphological preservation and staining performance. Samples from the distal femoral condyles of four sheep were allocated to three experimental groups according to the decalcification protocol: 2% ethylenediaminetetraacetic acid (EDTA), 0.1% nitric acid, and a combination of both reagents. Samples were evaluated at different time points for mineral removal, preservation of cellular and tissue architecture, and staining quality using hematoxylin and eosin and Safranin O/Fast Green techniques. Histological preservation was assessed using the O'Driscoll scoring criteria. The 0.1% nitric acid protocol demonstrated the best balance between decalcification efficiency and tissue preservation, achieving satisfactory mineral removal within 48 h while maintaining cartilage and subchondral bone morphology. In contrast, EDTA requires longer decalcification periods (5-7 days), resulting in slower mineral removal and mild, progressive loss of cellular detail over time. The combined EDTA-nitric acid protocol promoted rapid decalcification but caused substantial tissue degradation, reducing histological quality. Histological evaluation confirmed that the preservation of hyaline cartilage architecture, chondrocyte morphology, extracellular matrix staining, and osteochondral organization was superior in the nitric acid group. These findings indicate that 0.1% nitric acid is a reliable and time-efficient protocol for decalcifying ovine osteochondral tissues, enabling adequate histological evaluation while preserving tissue integrity. This study provides a practical methodological reference for the histological processing of ovine joint tissues in experimental and translational research settings.

PMID 42553617
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