1. Signaling Pathways
  2. Metabolic Enzyme/Protease
  3. Endogenous Metabolite

Endogenous Metabolite

Endogenous metabolites refer to the collective set of small-molecule chemical substances present within organelles, cells, organs, biological fluids, or entire organisms; their molecular weights are typically less than 1500 Da. These endogenous metabolites—including lipids, amino acids, short peptides, nucleic acids, carbohydrates, alcohols, and organic acids—not only participate in signal transduction governing genomic function but also receive upstream signals from the environment, thereby bridging the interrelationships among genotype, environment, and phenotype. Based on their biological functions, microbial endogenous metabolites can be broadly classified into two categories: primary metabolites and secondary metabolites. Primary metabolites are the core molecules essential for supporting microbial growth and proliferation; they serve to provide energy to the microbes or act as precursors and cofactors for the synthesis of biological macromolecules. In contrast, microbial secondary metabolites are a class of low-molecular-weight products that are not strictly essential for microbial growth. Nevertheless, microbial secondary metabolites include numerous substances—such as antibiotics, anti-tumor agents, and cholesterol-lowering agents—that are of critical importance to human health[1][2][3]. Furthermore, the metabolome of a biological organism is influenced by a variety of endogenous factors, including age, sex, body composition, genetic background, and underlying pathological states. The small-molecule metabolites within an organism are diverse and highly distinct; their levels are typically subject to the synergistic regulation of a vast array of enzymes and transport proteins, undergoing processes of synthesis, transformation, degradation, and compartmentalized distribution. Metabolomics research based on endogenous metabolites has been widely applied in the fields of metabolic disorders, neurodegenerative diseases, cancer, cardiovascular diseases, and infectious diseases, where these metabolites hold potential utility as biomarkers or therapeutic targets[1][2][3].

Cat. No. Product Name Effect Purity Chemical Structure
  • HY-N7092S
    D-Fructose-13C6
    99.90%
    D-Fructose-13C6 is the 13C labeled D-Fructose. D-Fructose (D(-)-Fructose) is a naturally occurring monosaccharide found in many plants.
    D-Fructose-<sup>13</sup>C<sub>6</sub>
  • HY-30267
    4-Hydroxyphenyl acetate
    99.88%
    4-Hydroxyphenyl acetate (4-HPA) is a natural antioxidant and protects cells from oxidative stress-induced necrosis. 4-Hydroxyphenyl acetate blocks the increase of cellular ROS induced by oxidative stress, and up-regulates NQO1 and HO-1 genes by stabilizing and inducing the nuclear translocation of NRF2 transcription factor.
    4-Hydroxyphenyl acetate
  • HY-N7148
    γ-Tocopherol
    99.63%
    γ-Tocopherol (D-γ-Tocopherol) is a potent cyclooxygenase (COX) inhibitor. γ-Tocopherol is a naturally occurring form of Vitamin E in many plant seeds, such as corn oil and soybeans. γ-Tocopherol possesses antiinflammatory properties and anti-cancer activity.
    γ-Tocopherol
  • HY-134426
    DL-β-Hydroxybutyryl coenzyme A lithium
    98.02%
    DL-β-Hydroxybutyryl coenzyme A lithium is an intermediate in the fermentation of butyric acid and the metabolism of lysine and tryptophan, and is produced from β-hydroxybutyric acid by short-chain-CoA synthase.
    DL-β-Hydroxybutyryl coenzyme A lithium
  • HY-W012926
    Dihydrouracil
    99.94%
    Dihydrouracil (5,6-Dihydrouracil), a metabolite of Uracil, can be used as a marker for identification of dihydropyrimidine dehydrogenase (DPD)-deficient.
    Dihydrouracil
  • HY-128851B
    Coenzyme A sodium
    99.46%
    Coenzyme A (CoASH) sodium is a ubiquitous and essential cofactor, which is an acyl group carrier and carbonyl-activating group for the citric acid cycle and fatty acid metabolism. Coenzyme A plays a central role in the oxidation of pyruvate in the citric acid cycle and the metabolism of carboxylic acids, including short- and long-chain fatty acids.
    Coenzyme A sodium
  • HY-128746
    2,6-Diaminoheptanedioic acid
    99.96%
    2,6-Diaminopimelic acid is a endogenous metabolite produced in bacteria and is a component of cell wall. 2,6-Diaminopimelic acid is essential for microbial metabolism and is a potential marker for quantification of microbial proteins .
    2,6-Diaminoheptanedioic acid
  • HY-113493
    4-Pyridoxic acid
    99.82%
    4-Pyridoxic acid is an endogenous substrate of renal organic anion transporters (OAT1/3) and a catabolite of vitamin B6. 4-Pyridoxic acid is excreted through OAT1/3-mediated tubular active secretion, which can reflect OAT1/3 activity. Elevated plasma concentrations of 4-Pyridoxic acid are associated with decreased OAT1/3 activity in chronic kidney disease (CKD) and can be used as a biomarker to reflect the severity of knee osteoarthritis (KOA) and lumbar spondylosis (LS).
    4-Pyridoxic acid
  • HY-112948
    2-Methylbutyrylcarnitine
    99.83%
    2-Methylbutyrylcarnitine is a fatty acid metabolite. 2-Methylbutyrylcarnitine is found mainly in the blood and urine of humans and animals and is produced through the pyruvate carboxylation pathway. 2-Methylbutyrylcarnitine exhibits high level in the plasma of subjects with steatohepatitis (NASH) and can be used as an indicator for the diagnosis of metabolic diseases.
    2-Methylbutyrylcarnitine
  • HY-N9445
    Lacto-N-neotetraose
    99.92%
    Lacto-N-neotetraose (LNnT) is an endogenous metabolite. Lacto-N-neotetraose can inhibit TNF-α induced IL-8 secretion in immature epithelial cells. Lacto-N-neotetraose has anti-inflammatory avtivity, and can improve the wound closure.
    Lacto-N-neotetraose
  • HY-W007566
    5-Methoxyindole-3-acetic acid
    99.62%
    5-Methoxyindole-3-acetic acid is a metabolite of Melatonin (HY-B0075). 5-Methoxyindole-3-acetic acid significantly prolongs the estrous cycle, increases uterine weight, and induces ovarian follicular cysts in female rats, while also regulating the levels of related hormones.
    5-Methoxyindole-3-acetic acid
  • HY-113063
    3-Methyl-2-oxovaleric acid
    99.68%
    3-Methyl-2-oxovaleric acid is a degradation product from Isoleucine. 3-Methyl-2-oxovaleric acid is a biomarker of mustard airway diseases (MADs) and uric acid stone.
    3-Methyl-2-oxovaleric acid
  • HY-B1511R
    Cyclic AMP (Standard)
    Cyclic AMP (Standard) is the analytical standard of Cyclic AMP. Cyclic AMP (Cyclic adenosine monophosphate), adenosine triphosphate derivative, is an intracellular signaling molecule responsible for directing cellular responses to extracellular signals. Cyclic AMP is an important second messenger in many biological processes.
    Cyclic AMP (Standard)
  • HY-N0148A
    Rutin hydrate
    98.99%
    Rutin (Rutoside) hydrate is a flavonoid found in many plants and shows a wide range of biological activities including anti-inflammatory, antidiabetic, antioxidant, neuroprotective, nephroprotective, hepatoprotective and reducing Aβ oligomer activities. Rutin hydrate can cross the blood brain barrier. Rutin hydrate attenuates vancomycin-induced renal tubular cell apoptosis via suppression of apoptosis, mitochondrial dysfunction, and oxidative stress.
    Rutin hydrate
  • HY-N0473S
    L-Tyrosine-d4
    99.49%
    L-Tyrosine-d4 is a deuterium labeled L-Tyrosine. L-Tyrosine is a non-essential amino acid which can inhibit citrate synthase activity in the posterior cortex.
    L-Tyrosine-d<sub>4</sub>
  • HY-128965
    N-Glycolylneuraminic acid
    99.76%
    N-Glycolylneuraminic acid is a nonhuman sialic acid molecule synthesized in pigs but not in humans. N-Glycolylneuraminic acid works as a decoy receptor of N-Glycolylneuraminic acid-binding influenza A viruses (IAVs).
    N-Glycolylneuraminic acid
  • HY-126995
    Glycohyodeoxycholic acid
    99.86%
    Glycohyodeoxycholic acid is a glycine-conjugated bile acid and also a metabolite of Hyodeoxycholic acid (HY-N0169). The serum level of Glycohyodeoxycholic acid is negatively correlated with the severity of non-alcoholic fatty liver disease. Glycohyodeoxycholic acid can be used in research related to non-alcoholic fatty liver disease.
    Glycohyodeoxycholic acid
  • HY-13715R
    Norepinephrine (Standard)
    Norepinephrine (Standard) is the analytical standard of Norepinephrine. This product is intended for research and analytical applications. Norepinephrine (Levarterenol; L-Noradrenaline) is a potent adrenergic receptor (AR) agonist. Norepinephrine activates α1, α2, β1 receptors.
    Norepinephrine (Standard)
  • HY-B0987
    Ascorbyl palmitate
    99.62%
    Ascorbyl palmitate is an orally active ester formed from ascorbic acid and palmitic acid, used as an antioxidant and food additive. Ascorbyl palmitate in preventing fat and oil oxidation is more efficient than Butylated hydroxyanisole (HY-B1066) and Butylated hydroxytoluene (HY-Y0172). Ascorbyl palmitate mitigates inhibition of collagen synthesis by select calcium and sodium channel blockers. Ascorbyl palmitate induces Apoptosis in human umbilical vein endothelial cells (HUVECs). Ascorbyl palmitate ameliorates inflammatory diseases by inhibition of NLRP3 inflammasome.
    Ascorbyl palmitate
  • HY-12695B
    Guanosine 5'-triphosphate trisodium salt hydrate
    Guanosine 5'-triphosphate (5'-GTP) trisodium salt hydrate is a G protein (G proteins) signaling activator and a high-energy precursor in the biosynthesis of nucleotide units in DNA and RNA. Guanosine 5'-triphosphate trisodium salt hydrate can promote myogenic cell differentiation by upregulating miRNA (miR133a, miR133b) and myogenic regulatory factor expression, and by inducing human myogenic precursor cells to release exosomes containing guanosine molecules. Guanosine-5'-triphosphate disodium salt hydrate holds promise for research in biosynthesis and skeletal muscle regeneration.
    Guanosine 5'-triphosphate trisodium salt hydrate
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