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Merck

C4879

α-Chymotrypsinogen A from bovine pancreas

essentially salt-free, lyophilized powder

Synonym(s):

chymotrypsin A zymogen

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About This Item

CAS Number:
UNSPSC Code:
12352204
EC Number:
232-905-3
NACRES:
NA.54
MDL number:
Specific activity:
≥40 units/mg solid
Biological source:
bovine pancreas
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Product Name

α-Chymotrypsinogen A from bovine pancreas, essentially salt-free, lyophilized powder

biological source

bovine pancreas

type

Type II

form

essentially salt-free, lyophilized powder

specific activity

≥40 units/mg solid

mol wt

25,656 Da by calculation

purified by

6× crystallization

solubility

1 mM HCl: soluble 10 mg/mL, clear, colorless

UniProt accession no.

foreign activity

α-chymotrypsin ≤1 U/mg (prior to activation by trypsin)

storage temp.

−20°C

Quality Level

Gene Information

cow ... CTRB1(618826)

Application

α-Chymotrypsinogen A from bovine pancreas has been used as model protein crystallization reproducibility studies. It has also been used in the hydrolysis of α-gliadins prior to mass spectroscopy studies.
The enzyme from Sigma has been used in the non-invasive determination of solid-state protein conformation using near infrared (NIR) spectroscopy. It has been used to study the partitioning of protein in polymer/polymer aqueous two-phase systems. The enzyme has also been used for self-interaction chromatography applications, to test the rapid measurement of protein osmotic second virial coefficients. In this technique, the protein is immobilized on chromatographic particles and its retention is measured using isocratic elution.

Biochem/physiol Actions

A serine protease that hydrolyzes peptide bonds with aromatic or large hydrophobic side chains (Tyr, Trp, Phe, Met) on the carboxyl end of the peptide bond.
Chymotrypsinogen A requires limited proteolysis for its activation. Chymotrypsinogen A may be activated by trypsin and chymotrypsin (autolytic activation) to form m α, β, γ, δ and π chymotrypsin (depending upon the conditions of activation). Chymotrypsin is a protease that will preferentially cleave peptides on the carboxyl side of aromatic amino acids including tryptophan, tyrosine, and phenylalanine. It will also hydrolyze peptides on the carboxyl side of leucine, methionine, and alanine.

General description

Chymotrypsinogen from bovine pancreas is a zymogen containing 5 disulfide bridges. It has an isoelectric pH of 8.97.

Other Notes

After activation to Chymotrypsin, one unit will hydrolyze 1.0 μmole of BTEE per min at pH 7.8 at 25 °C.

Storage Class

11 - Combustible Solids

wgk

WGK 3

flash_point_f

Not applicable

flash_point_c

Not applicable

ppe

Eyeshields, Gloves, type N95 (US)


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Shujun Bai et al.
Journal of pharmaceutical sciences, 94(9), 2030-2038 (2005-07-30)
Fourier transform infrared (FTIR) spectroscopy is a powerful tool for monitoring structural changes in lyophilized protein formulations. However, direct measurement of IR spectra requires significant handling time and effort. The possibility of using near infrared (NIR) spectroscopy as a rapid
Effect of real-world sounds on protein crystallization
Zhang CY, et al.
International Journal of Biological Macromolecules, 112, 841-851 (2018)
Pedro P Madeira et al.
Journal of chromatography. A, 1190(1-2), 39-43 (2008-04-02)
Distribution coefficients of randomly selected proteins were measured in aqueous two-phase systems (ATPSs) formed by different combinations of Dextran-75 (Dex), Ficoll-70, polyethylene glycol-8000 (PEG), hydroxypropyl starch-100 (PES), and Ucon50HB5100 (Ucon, a random copolymer of ethylene glycol and propylene glycol) at
Nafees Rahman et al.
Biomaterials, 31(32), 8262-8270 (2010-08-06)
The developmental potential of pluripotent stem cells is influenced by their local cellular microenvironment. To better understand the role of vascular endothelial growth factor (VEGFA) in the embryonic cellular microenvironment, we synthesized an artificial stem cell niche wherein VEGFA was
Angelina Angelova et al.
International journal of pharmaceutics, 454(2), 625-632 (2013-06-25)
Defining appropriate delivery strategies of therapeutic proteins, based on lipid nanoparticulate carriers, requires knowledge of the nanoscale organization that determines the loading and release properties of the nanostructured particles. Nanoencapsulation of three cationic proteins (human brain-derived neurotrophic factor (BDNF), α-chymotrypsinogen

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