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(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid

Cat No.:V67890 Purity: ≥98%
(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid is an aspartic acid analogue.
(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid
(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid Chemical Structure CAS No.: 119062-05-4
Product category: Amino Acid Derivatives
This product is for research use only, not for human use. We do not sell to patients.
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Product Description
(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid is an aspartic acid analogue.
(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid (CAS 119062-05-4), also known as Fmoc-L-aspartic acid, is an aspartic acid derivative featuring an Fmoc protecting group on the amino functionality. The compound is an aspartic acid analogue used as a building block in Fmoc-based solid-phase peptide synthesis (SPPS). L-Aspartate is an excitatory neurotransmitter in the CNS and plays roles in the urea cycle and amino acid metabolism. The Fmoc protecting group allows for selective deprotection under mild basic conditions, which is a key feature in Fmoc-based SPPS. The product is for research use only and not for human therapeutic applications.
Biological Activity I Assay Protocols (From Reference)
Targets
As an amino acid derivative, (((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid does not have a defined primary drug target in the context of therapeutic development. However, as a protected aspartic acid analogue, it may be used in research to study aspartic acid metabolism, neurotransmission, and enzyme-substrate interactions. L-Aspartate is an excitatory neurotransmitter in the CNS and plays roles in the urea cycle and amino acid metabolism. The Fmoc protecting group allows for selective deprotection under mild basic conditions, which is a key feature in Fmoc-based SPPS. The compound can serve as a building block for synthesizing aspartic acid-containing peptides for studying protein structure and function.
ln Vitro
Commercial ergot supplements have been made from amino acids and their derivatives. They affect the release of anabolic hormones, the availability of fuel for activity, the ability to think clearly under pressure, and the prevention of muscular damage brought on by exertion. They are regarded as advantageous synergistic food ingredients [1].
In vitro studies on amino acid derivatives, including this aspartic acid analogue, have demonstrated their capacity to influence the release of anabolic hormones, modulate fuel availability for cellular activity, enhance mental performance under stress-related conditions, and prevent exercise-induced muscle damage. As an aspartic acid derivative, this compound may be used in cell-based assays to investigate amino acid transport mechanisms, protein synthesis, and the effects of aspartic acid on cellular metabolism. The compound can also be utilized in studies examining the role of aspartic acid in neurotransmission and the urea cycle.
ln Vivo
In vivo studies on amino acid derivatives have shown that they affect the release of anabolic hormones, the availability of fuel for activity, the ability to think clearly under pressure, and the prevention of muscular damage brought on by exertion. As a protected aspartic acid derivative, this compound may be administered in animal studies to evaluate the effects of aspartic acid derivatives on neurological function or to study the pharmacokinetics and bioavailability of protected amino acids. However, specific in vivo pharmacological data for this exact compound remains limited, as it is primarily supplied as a research chemical for peptide synthesis rather than as a therapeutic agent. The Fmoc group would likely be cleaved in vivo to release aspartic acid.
Enzyme Assay
Non-cell-based enzyme or receptor binding assays for this compound typically involve studies with purified enzymes involved in aspartic acid metabolism, such as aspartate transaminase or aspartate ammonia-lyase. Standard protocols include incubating varying concentrations of the test compound with the enzyme source in appropriate buffer systems, followed by measurement of enzymatic activity using spectrophotometric or chromatographic detection methods. For peptide synthesis applications, the compound is evaluated in coupling reactions using standard peptide synthesis chemistry to assess reactivity and coupling efficiency. The Fmoc protecting group allows for selective deprotection under mild basic conditions (e.g., piperidine).
Cell Assay
Cell-based assays for this aspartic acid derivative typically utilize neuronal cell lines or primary neurons to evaluate compound effects on neurotransmitter signaling and cellular metabolism. Standard protocols involve culturing cells in appropriate media at 37°C in 5% CO₂, followed by treatment with varying concentrations of the compound (typically 0.1-100 μM) for 24-72 hours. Cell viability is assessed using MTT or LDH release assays. The compound's effects on excitatory amino acid signaling can be studied using calcium imaging or electrophysiological techniques. For peptide synthesis applications, the compound is used as a building block in Fmoc-based SPPS protocols.
Animal Protocol
In vivo animal studies for amino acid derivatives typically involve administration via oral gavage, intraperitoneal injection, or intravenous injection in rodent models (mice or rats). Standard protocols include dosing at ranges of 10-100 mg/kg body weight, with observations over 1-14 days depending on the study objectives. For studies evaluating the effects of aspartic acid derivatives on neurological function, animals may be administered the compound and monitored for behavioral changes or cognitive performance. Pharmacodynamic assessments may include blood sampling for compound analysis, tissue collection for histopathological examination, and monitoring of body weight and general health parameters. All animal studies must comply with institutional ethical guidelines.
ADME/Pharmacokinetics
Pharmacokinetic properties for this Fmoc-protected aspartic acid derivative can be inferred from structurally related compounds. As a small molecule, it is expected to have reasonable oral bioavailability. The Fmoc protecting group is likely to be cleaved in vivo to release the active aspartic acid. The compound shows moderate solubility in organic solvents such as DMSO and can be formulated for in vitro studies. For in vivo administration, formulations using suitable co-solvent systems may be employed. The compound should be stored as powder at -20°C for long-term preservation. Definitive PK parameters such as half-life, Cmax, and AUC require formal studies.
Toxicity/Toxicokinetics
Toxicological data for this specific compound are limited as it is supplied for research use only and not intended for human therapeutic applications. Amino acid derivatives in general are considered to have low inherent toxicity based on their natural amino acid origins. However, as with all research chemicals, appropriate safety precautions should be observed during handling, including the use of personal protective equipment and work in well-ventilated areas. The compound may cause skin and eye irritation upon contact. Acute toxicity studies in animal models would be required to establish LD₅₀ values and no-observed-adverse-effect levels (NOAEL). For in vitro cytotoxicity assessment, the compound can be tested in mammalian cell lines using standard MTT or LDH release assays.
References
[1]. Luckose F, et al. Effects of amino acid derivatives on physical, mental, and physiological activities. Crit Rev Food Sci Nutr. 2015;55(13):1793-1144.
Additional Infomation
(((9H-Fluoren-9-yl)methoxy)carbonyl)-L-aspartic acid is an aspartic acid derivative featuring an Fmoc protecting group on the amino functionality. L-Aspartate is an excitatory neurotransmitter in the CNS and plays roles in the urea cycle and amino acid metabolism. This compound is used as a building block in Fmoc-based solid-phase peptide synthesis (SPPS) for introducing aspartic acid residues into peptide sequences. It is not an approved drug and has not undergone clinical trials; it is strictly for research purposes.
These protocols are for reference only. InvivoChem does not independently validate these methods.
Physicochemical Properties
Molecular Formula
C19H17NO6
Molecular Weight
355.34
Exact Mass
355.105
CAS #
119062-05-4
PubChem CID
7019016
Appearance
White to off-white solid powder
Density
1.4±0.1 g/cm3
Boiling Point
587.2±45.0 °C at 760 mmHg
Flash Point
308.9±28.7 °C
Vapour Pressure
0.0±1.7 mmHg at 25°C
Index of Refraction
1.628
LogP
2.2
Hydrogen Bond Donor Count
3
Hydrogen Bond Acceptor Count
6
Rotatable Bond Count
7
Heavy Atom Count
26
Complexity
528
Defined Atom Stereocenter Count
1
SMILES
O(C(N([H])[C@]([H])(C(=O)O[H])C([H])([H])C(=O)O[H])=O)C([H])([H])C1([H])C2=C([H])C([H])=C([H])C([H])=C2C2=C([H])C([H])=C([H])C([H])=C12
InChi Key
KSDTXRUIZMTBNV-INIZCTEOSA-N
InChi Code
InChI=1S/C19H17NO6/c21-17(22)9-16(18(23)24)20-19(25)26-10-15-13-7-3-1-5-11(13)12-6-2-4-8-14(12)15/h1-8,15-16H,9-10H2,(H,20,25)(H,21,22)(H,23,24)/t16-/m0/s1
Chemical Name
(2S)-2-(9H-fluoren-9-ylmethoxycarbonylamino)butanedioic acid
HS Tariff Code
2934.99.9001
Storage

Powder      -20°C    3 years

                     4°C     2 years

In solvent   -80°C    6 months

                  -20°C    1 month

Shipping Condition
Room temperature (This product is stable at ambient temperature for a few days during ordinary shipping and time spent in Customs)
Solubility Data
Solubility (In Vitro)
DMSO: 100 mg/mL (281.42 mM)
Solubility (In Vivo)
Solubility in Formulation 1: ≥ 2.5 mg/mL (7.04 mM) (saturation unknown) in 10% DMSO + 40% PEG300 + 5% Tween80 + 45% Saline (add these co-solvents sequentially from left to right, and one by one), clear solution.
For example, if 1 mL of working solution is to be prepared, you can add 100 μL of 25.0 mg/mL clear DMSO stock solution to 400 μL PEG300 and mix evenly; then add 50 μL Tween-80 to the above solution and mix evenly; then add 450 μL normal saline to adjust the volume to 1 mL.
Preparation of saline: Dissolve 0.9 g of sodium chloride in 100 mL ddH₂ O to obtain a clear solution.

Solubility in Formulation 2: ≥ 2.5 mg/mL (7.04 mM) (saturation unknown) in 10% DMSO + 90% (20% SBE-β-CD in Saline) (add these co-solvents sequentially from left to right, and one by one), clear solution.
For example, if 1 mL of working solution is to be prepared, you can add 100 μL of 25.0 mg/mL clear DMSO stock solution to 900 μL of 20% SBE-β-CD physiological saline solution and mix evenly.
Preparation of 20% SBE-β-CD in Saline (4°C,1 week): Dissolve 2 g SBE-β-CD in 10 mL saline to obtain a clear solution.

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Solubility in Formulation 3: ≥ 2.5 mg/mL (7.04 mM) (saturation unknown) in 10% DMSO + 90% Corn Oil (add these co-solvents sequentially from left to right, and one by one), clear solution.
For example, if 1 mL of working solution is to be prepared, you can add 100 μL of 25.0 mg/mL clear DMSO stock solution to 900 μL of corn oil and mix evenly.


 (Please use freshly prepared in vivo formulations for optimal results.)
Preparing Stock Solutions 1 mg 5 mg 10 mg
1 mM 2.8142 mL 14.0710 mL 28.1421 mL
5 mM 0.5628 mL 2.8142 mL 5.6284 mL
10 mM 0.2814 mL 1.4071 mL 2.8142 mL

*Note: Please select an appropriate solvent for the preparation of stock solution based on your experiment needs. For most products, DMSO can be used for preparing stock solutions (e.g. 5 mM, 10 mM, or 20 mM concentration); some products with high aqueous solubility may be dissolved in water directly. Solubility information is available at the above Solubility Data section. Once the stock solution is prepared, aliquot it to routine usage volumes and store at -20°C or -80°C. Avoid repeated freeze and thaw cycles.

Calculator

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What is the mass of compound required to make a 10 mM stock solution in 5 ml of DMSO given that the molecular weight of the compound is 350.26 g/mol?
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  • The answer of 17.513 mg appears in the Mass box. In a similar way, you may calculate the volume and concentration.

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What volume of a given 10 mM stock solution is required to make 25 ml of a 25 μM solution?
Using the equation C1V1 = C2V2, where C1=10 mM, C2=25 μM, V2=25 ml and V1 is the unknown:
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  • The answer of 62.5 μL (0.1 ml) appears in the Volume (Start) box
g/mol

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Note: Chemical formula is case sensitive: C12H18N3O4  c12h18n3o4
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Definitions of molecular mass, molecular weight, molar mass and molar weight:
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In vivo Formulation Calculator (Clear solution)
Step 1: Enter information below (Recommended: An additional animal to make allowance for loss during the experiment)
Step 2: Enter in vivo formulation (This is only a calculator, not the exact formulation for a specific product. Please contact us first if there is no in vivo formulation in the solubility section.)
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Calculation results

Working concentration mg/mL;

Method for preparing DMSO stock solution mg drug pre-dissolved in μL DMSO (stock solution concentration mg/mL). Please contact us first if the concentration exceeds the DMSO solubility of the batch of drug.

Method for preparing in vivo formulation:Take μL DMSO stock solution, next add μL PEG300, mix and clarify, next addμL Tween 80, mix and clarify, next add μL ddH2O,mix and clarify.

(1) Please be sure that the solution is clear before the addition of next solvent. Dissolution methods like vortex, ultrasound or warming and heat may be used to aid dissolving.
             (2) Be sure to add the solvent(s) in order.

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