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Adenosine Analog
3’-O-Propargyladenosine is an adenosine analog that primarily targets adenosine receptors, acting as a vasodilator and exhibiting potential anti-cancer properties. It serves as a valuable tool in research applications involving click chemistry, due to its alkyne functional group, which facilitates copper-catalyzed azide-alkyne cycloaddition (CuAAc) with azide-containing molecules. This compound is instrumental in the study of biochemical pathways and therapeutic interventions related to adenosine signaling and vascular biology. -
Adenosine Analog
N6-Bz-5'-O-DMTr-3'-deoxyadenosine-2'-O-CED-phosphoramidite is an adenosine analog that primarily targets adenosine receptors. It exhibits biological activities such as smooth muscle relaxation and has demonstrated potential in inhibiting cancer progression. This compound is useful in various research applications, particularly in the development of nucleic acid-based therapeutics and the study of adenosine receptor signaling pathways. -
Adenosine Analog
5’-O-(4,4’-Dimethoxytrityl)-2’-beta-C-methyl adenosine is an adenosine analog that primarily acts as a smooth muscle vasodilator. This compound exhibits significant biological activities, including the inhibition of cancer progression. It serves as a valuable tool in research applications related to cardiovascular research, cancer therapies, and the study of adenosine receptor signaling pathways. -
Adenosine Analog
N6-Benzoyl-2'-O-tert-butyldimethylsilyl-3'-O-DMT-adenosine is an adenosine analog that primarily targets adenosine receptors. It exhibits significant smooth muscle vasodilatory effects and has demonstrated potential in inhibiting cancer progression. This compound is valuable for research applications focusing on vascular biology, oncology, and the investigation of adenosine signaling pathways. -
Adenosine Analog
N-[[4-(Trifluoromethyl)phenyl]methyl]adenosine is an adenosine analog known for its smooth muscle vasodilatory effects. This compound has demonstrated potential in inhibiting cancer progression, making it valuable for research in oncology and cardiovascular studies. Its biological activity positions it as a key reagent for investigating adenosine receptor pathways and their implications in various therapeutic contexts. -
Adenosine Analog
8-Benzyloxyadenosine is an adenosine analog that primarily targets adenosine receptors to elicit biological responses. This compound exhibits significant smooth muscle vasodilatory effects and has demonstrated potential in inhibiting cancer progression. It serves as a valuable tool for research in cardiovascular biology and cancer therapeutics. -
Adenosine Analog
5-Methyl-4’-thiouridine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant vasodilatory effects, promoting smooth muscle relaxation, and has shown potential in inhibiting cancer progression. Its applications in research encompass studies on cardiovascular function and cancer therapeutics. -
Adenosine Analog
8-Bromo-5’-O-(4-cyanobenzyl)-2’,3’-di-O-isopropylidene adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits smooth muscle vasodilatory activity and has potential applications in cancer research due to its ability to inhibit cancer progression. Its structural modifications make it a valuable tool for studying adenosine signaling pathways in various biological systems. -
Adenosine Analog
2'-O-t-Butyldimethylsilyladenosine is an adenosine analog that primarily targets adenosine receptors. This compound functions as a smooth muscle vasodilator and has demonstrated potential in inhibiting cancer progression. It is valuable for research applications in vascular biology and oncology, contributing to studies on therapeutic pathways involving adenosine signaling. -
Adenosine Analog
2-Benzylthioadenosine is an adenosine analog that primarily acts on adenosine receptors. It is known for its vasodilatory effects on smooth muscle and has been investigated for its potential to inhibit cancer progression. This compound is valuable in research applications related to cardiovascular health and oncology, contributing to the understanding of adenosine signaling pathways. -
Biochemical Assay Reagent
Adenosine 2'-PEG-Biotin is a biochemical assay reagent that acts as a bioisostere of endogenous adenosine, allowing it to engage adenosine receptors effectively. This compound plays a crucial role in regulating various cell signaling pathways, facilitating research into its applications as a bioprobe, biosensor, or diagnostic reagent. Its incorporation of biotin also enhances its utility in various biochemical assays and detection methodologies. -
Adenosine Analog
N6-Benzoyl-2',3'-isopropylidene adenosine is an adenosine analog targeting adenosine receptors. This compound exhibits significant smooth muscle vasodilatory activity and has demonstrated potential in inhibiting cancer progression. Its applications in research include studying vascular physiology and cancer biology, making it a valuable tool in the investigation of therapeutic strategies involving adenosine modulation. -
Adenosine Analog
2'-O-Acetyl-3,5-bis-O-(2,4-dichlorobenzyl)adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant smooth muscle vasodilatory activity and has potential applications in inhibiting cancer progression. Its mechanism of action makes it a valuable tool for researchers studying cardiovascular function and cancer therapeutics. -
Adenosine Analog
5′-O-[(4-Cyanophenyl)methyl]-2′,3′-O-(1-methylethylidene)adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits vasodilatory properties and demonstrates potential in inhibiting cancer cell proliferation. It is a valuable tool in research exploring the effects of adenosine signaling in cardiovascular diseases and cancer therapy. -
Adenosine Analog
N4-Benzoyl-5'-O-DMT-2'-O-propargyl adenosine is an adenosine analog that acts primarily as a smooth muscle vasodilator. This compound has demonstrated potential in inhibiting cancer progression, making it valuable for various biological research applications. Its distinctive structural properties facilitate the study of adenosine receptor interactions and signaling pathways, contributing to the understanding of cardiovascular physiology and tumor biology. -
Adenosine Analog
N6-Benzyl-2’-C-methyladenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits vasodilatory effects in smooth muscle and demonstrates potential in inhibiting cancer progression. It serves as a valuable tool in studies focusing on cardiovascular function and cancer biology, facilitating research into therapeutic strategies for related conditions. -
Adenosine Analog
N-[(3-Methoxyphenyl)methyl]adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant biological activity as a smooth muscle vasodilator and has demonstrated potential in inhibiting cancer progression. It is a valuable tool for researchers investigating vascular biology and cancer therapeutics. -
Uridine Analog
5-Iodo-2’-β-C-methyl uridine is a uridine analog that primarily targets adenosine receptors. This compound exhibits potential antiepileptic properties and serves as a valuable tool in the investigation of anticonvulsant and anxiolytic activities. Additionally, it may contribute to the development of innovative antihypertensive agents in chemical research. -
Adenosine Analog
5’-O-(4,4’-Dimethoxytrityl)-2’-O-(2-methoxyethyl) adenosine is an adenosine analog that primarily targets adenosine receptors. This compound demonstrates biological activities such as smooth muscle vasodilation and potential inhibition of cancer progression. It is valuable for research in cardiovascular studies and cancer biology, facilitating investigations into adenosine signaling and therapeutic applications. -
Adenosine Analog
N6-Methyl-xylo-adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits smooth muscle vasodilatory effects and has demonstrated potential in inhibiting cancer progression. Its unique properties make it a valuable tool for researchers investigating vascular biology and cancer therapies. -
5'-AMP Analogue
2-Cl-5'-AMP is a 5'-AMP analogue that functions primarily by interacting with adenosine receptors. This compound exhibits key biological activity in receptor mapping research, facilitating the study of adenosine receptor signaling pathways and their physiological roles. Its use in biochemical assays enables a deeper understanding of receptor-ligand interactions and their implications in various biological systems. -
Adenosine Analog
N-Benzoyl-5'-O-dmtr-2'-O-(2-methoxyethyl)-adenosine is an adenosine analog that primarily targets adenosine receptors. It exhibits significant vasodilatory effects by relaxing smooth muscle and has demonstrated potential in inhibiting cancer progression. This compound is valuable in biomedical research, particularly in studies focused on cardiovascular health and cancer therapy. -
Adenosine Analog
9-(β-D-Xylofuranosyl)adenine is an adenosine analog that primarily acts as a vasodilator by targeting adenosine receptors. This compound has demonstrated significant biological activity, including the inhibition of cancer progression. It is particularly useful for researchers exploring the mechanisms of vasodilation and the therapeutic potential of adenosine-related pathways in cancer biology. -
Adenosine Analog
2'-O-Methyladenosine 5'-monophosphate triethylammonium is an adenosine analog that primarily targets adenosine receptors. It exhibits significant biological activity, functioning as a smooth muscle vasodilator while also demonstrating potential for inhibiting cancer progression. This compound is valuable for research applications focusing on cardiovascular studies and cancer biology. -
Adenosine Analog
8-Chloro-2'-deoxyadenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant biological activity as a potential vasodilator and has demonstrated inhibitory effects on cancer progression. It is useful in various research applications, particularly in studying the pharmacological effects of adenosine and its derivatives in cardiovascular and oncology research. -
Adenosine Analog
2-Methoxy-2'-deoxyadenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits vasodilatory effects on smooth muscle and has demonstrated potential in inhibiting cancer progression, making it relevant for various research applications, including cardiovascular studies and oncology. Its structural similarity to adenosine allows for exploration in drug development targeting related pathways. -
Adenosine Analog
N-(2-Phenoxyacetyl)adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits smooth muscle vasodilatory effects and has demonstrated potential in inhibiting cancer progression. It serves as a valuable tool in cancer research and studies related to vascular biology. -
Adenosine Analog
N6-Benzoyl-9-β-D-arabinofuranosyladenine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits smooth muscle vasodilatory effects and demonstrates potential in inhibiting cancer progression. It serves as a valuable tool in studies focused on cardiovascular research and oncology, enabling researchers to explore the therapeutic implications of adenosine signaling pathways. -
Adenosine Analog
8-Allylthioadenosine is an adenosine analog that primarily targets adenosine receptors. It demonstrates smooth muscle vasodilatory effects and has been implicated in inhibiting cancer progression, making it a valuable compound for oncology research. Its utility extends to studies involving vascular biology and the modulation of cellular signaling pathways. -
Adenosine Analog
3’-O-(2-Methoxyethyl)-2-aminoadenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant smooth muscle vasodilatory properties and has demonstrated potential in inhibiting cancer progression. Research applications include studying vascular biology, exploring therapeutic avenues in oncology, and investigating the signaling pathways mediated by adenosine receptors. -
Adenosine Analog
3',5'-TIPS-N-Ac-Adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant smooth muscle vasodilatory activity and has potential applications in inhibiting cancer progression. It is valuable for research related to vascular biology and oncology, facilitating the study of adenosine receptor signaling pathways and their therapeutic implications. -
Adenosine Analog
8-(Methylamino)adenosine is an adenosine analog that primarily targets adenosine receptors. This compound exhibits significant vasodilatory effects on smooth muscle and has been demonstrated to possess anti-cancer properties by inhibiting tumor progression. It is utilized in various research applications related to vascular biology and oncology. -
Adenosine Analog
N6-(3-Trifluoromethylbenzyl)-2’-C-methyl adenosine is an adenosine analog that primarily acts on adenosine receptors. This compound demonstrates smooth muscle vasodilatory properties and has potential applications in inhibiting cancer progression. Its structural modifications enhance its affinity and selectivity, making it a valuable reagent for research in vascular biology and oncology. -
Adenosine Analog
N6,N6-Dimethyl-xylo-adenosine is an adenosine analog with a primary mechanism of action involving modulation of adenosine receptors. This compound has demonstrated significant smooth muscle vasodilator activity and holds potential in inhibiting cancer progression. It is widely utilized in research applications focusing on vascular biology and oncology. -
Dopamine D2 Receptor Modulator
PAOPA is an allosteric modulator of the dopamine D2 receptor, derived from the analog of L-proline-L-leucine-glycine amide (PLG) peptide. This compound demonstrates significant potential in mitigating behavioral abnormalities in rodent models of schizophrenia. PAOPA enhances the receptor's affinity and promotes its binding to agonists, making it a valuable tool for research focused on neuropsychiatric disorders. -
Dopamine Receptor Antagonist
Dopamine D2 receptor antagonist-1 is a negative allosteric modulator of the dopamine D2 receptor (D2R) that exhibits sub-micromolar affinity. This compound is utilized in research studying dopaminergic signaling pathways and provides insights into neurological disorders associated with D2R dysfunction. Its role in modulating receptor activity makes it a valuable tool for exploring pharmacological interventions in the central nervous system. -
Dopamine Receptor
Quinpirole is a selective agonist of the dopamine D2 and D3 receptors, primarily targeting central nervous system functions. It is known to reduce hypothalamic norepinephrine concentrations, influencing dopaminergic signaling pathways. Quinpirole's unique mechanism results in decreased dopamine metabolites and potential increased levels of 3-methoxy-4-hydroxyphenylglycol (MHPG) sulfate, making it valuable for research on neuropharmacology and the modulation of mood and behavior. -
Dopamine D4 Receptor Agonist
CP 226269 is a potent agonist of the dopamine D4 receptor, demonstrating significant calcium flux induction with an EC50 of 32 nM. This compound also stimulates phospholipid methylation (PLM) in SK-N-MC neuroblastoma cells, exhibiting an EC50 of 2.9 nM. CP 226269 is utilized in research related to schizophrenia and other neuropsychiatric disorders, providing valuable insights into dopamine receptor functions. -
Dopamine Receptor Modulator
OPC 4392 hydrochloride is a modulator of dopamine receptors, acting as an agonist at presynaptic receptors while antagonizing postsynaptic D2 receptors. This compound has demonstrated the ability to reverse dopamine accumulation induced by Reserpine and inhibit stereotypic and climbing behaviors triggered by Apomorphine in mouse models. It serves as a valuable tool for investigating dopamine-related pathways and behaviors in neurological research. -
D1-like Dopamine Receptor PAM
MLS1082 is a pyrimidone-derived positive allosteric modulator targeting the D1-like dopamine receptors. It exhibits an EC50 of 123 nM for enhancing dopamine-stimulated G protein signaling. This compound is valuable for research applications focused on dopamine receptor pharmacology and the modulation of neurotransmitter systems. -
Dopamine Receptor Antagonist
Odapipam (NNC 756) is a selective dopamine D1 receptor antagonist, exhibiting high affinity with a Kd of 0.18 nM. This compound serves as a valuable tool in neuroscience research, particularly for studying dopaminergic signaling pathways and related neuropsychiatric disorders. In addition, Odapipam functions as an effective radiotracer for positron emission tomography (PET) imaging, enhancing the investigation of receptor dynamics in vivo. -
Dopamine Autoreceptor Agonist
Preclamol hydrochloride is a selective dopamine autoreceptor agonist, primarily targeting the D2 dopamine receptor. This compound exhibits significant biological activity in modulating dopamine signaling, making it a valuable tool for investigating the pathophysiology of schizophrenia. Its applications extend to neuropharmacology studies, aiding in the development of therapeutic strategies for dopaminergic dysregulation. -
D3 Receptor Antagonist
YQA14 is a high-affinity antagonist of the dopamine D3 receptor. It exhibits significant anti-opioid addiction activity, demonstrating the ability to inhibit morphine- and cocaine-induced conditioned place preference (CPP) in preclinical models. This compound is valuable for research into the mechanisms of addiction and the development of therapeutic strategies for substance use disorders. -
Dopamine Receptor Inhibitor
7-Hydroxy-DPAT hydrobromide is a selective agonist for the D3 dopamine receptor, primarily impacting dopamine signaling pathways. This compound demonstrates significant biological activity in modulating locomotor behavior and influencing dopamine metabolism within the central nervous system. It serves as a valuable tool for research applications related to neuropharmacology and the study of dopamine-related disorders. -
Dopamine Receptor Agonist
Talipexole is a selective dopamine receptor agonist primarily targeting D2-like receptors. It is proposed for use as an antiparkinsonian agent, demonstrating potential in improving motor function in Parkinson's disease models. Research applications include studying dopaminergic signaling pathways and exploring therapeutic options for neurodegenerative disorders. -
D3 Receptor Antagonist
Mesdopetam hemitartrate is a selective antagonist of the dopamine D3 receptor, exhibiting a Ki value of 90 nM and an IC50 of 9.8 μM for human recombinant D3 receptors. This compound demonstrates psychomotor stabilizing effects, making it a valuable tool in the investigation of motor and psychiatric complications associated with Parkinson's disease. Its unique properties contribute to research aimed at understanding the underlying mechanisms of dopamine-related disorders. -
Dopamine D3 Receptor Antagonist
Mesdopetam is a selective antagonist of the dopamine D3 receptor, displaying a Ki value of 90 nM and an IC50 of 9.8 μM for the human recombinant D3 receptor. This compound exhibits psychomotor stabilizing properties and is utilized in research focused on motor and psychiatric complications associated with Parkinson's disease. Its role in modulating dopamine signaling makes it valuable for studying therapeutic strategies in this context. -
DRD4 Antagonist
PD 168568 dihydrochloride is a potent and orally active antagonist of the dopamine receptor D4 (DRD4). This compound exhibits selectivity for the D4 receptor, with Ki values of 8.8 nM for DRD4 compared to 1842 nM for DRD2 and 2682 nM for DRD3. PD 168568 dihydrochloride is applicable in glioblastoma (GBM) research, making it a valuable tool for investigating the role of DRD4 in cancer biology and potential therapeutic strategies. -
Dopamine
AJ-76 hydrochloride is a potent antagonist of dopamine autoreceptors, exhibiting pKi values of 6.95, 6.67, 6.37, 6.21, and 6.07 for human D3, D4, D2 short, D2 long, and rat D2 receptors, respectively. This compound is valuable for research focused on dopamine receptor modulation and its implications in neurological disorders. Its specific receptor affinity allows for investigations into the roles of dopamine signaling in various physiological and pathological processes. -
Dopamine Receptor Inhibitor
GBR 12783 is a selective dopamine uptake inhibitor that targets dopamine receptors with high potency. It effectively inhibits [3H]dopamine uptake in striatal synaptosomes from rats and mice, exhibiting IC50 values of 1.8 nM and 1.2 nM, respectively. This compound has been shown to enhance memory performance and increase hippocampal acetylcholine release in rodent models, making it valuable for research in neuropharmacology and cognitive function studies.

