Bromocholine bromide (BETAB)

99%

  • Product Code: 68500
  Alias:    Bromocholyl bromide; BETAB ; (2-bromoethyl)trimethylammonium bromide
  CAS:    2758-06-7
Molecular Weight: 246.97 g./mol Molecular Formula: C₅H₁₃BrN
EC Number: 220-419-4 MDL Number: MFCD00011865
Melting Point: 244 °C (dec.)(lit.) Boiling Point:
Density: Storage Condition: room temperature
Product Description: Bromocholine bromide (BETAB) is primarily used in biochemical and pharmacological research as a choline kinase inhibitor. It plays a significant role in studying cellular processes, particularly in cancer research, where it helps investigate the metabolism of choline and its impact on tumor growth. BETAB is also utilized in experiments exploring phospholipid metabolism, as it disrupts the synthesis of phosphatidylcholine, a key component of cell membranes. Additionally, it serves as a tool in neurobiology studies to understand cholinergic signaling pathways and their implications in neurological disorders. Its application extends to the development of therapeutic strategies targeting diseases associated with abnormal choline metabolism.
Product Specification:
Test Specification
HEAVY METALSAS PB 0 ppm 5 ppm
IRONFE 0 ppm 5 ppm
PURITYTITRATION WITH AGNO3 98.5 % 100 %
APPEARANCE WHITE TO OFF-WHITE POWDER OR CRYSTALS
INFRARED SPECTROMETRY Conforms to Structure
SOLUBILITY IN WATER COLORLESS TO YELLOW,CLEAR TO SLIGHTLY HAZY(50MG/ML
Sizes / Availability / Pricing:
Size (g) Availability Price Quantity
5.000 10-20 days ฿880.00
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-
25.000 10-20 days ฿2,260.00
+
-
100.000 10-20 days ฿7,500.00
+
-
Bromocholine bromide (BETAB)
Bromocholine bromide (BETAB) is primarily used in biochemical and pharmacological research as a choline kinase inhibitor. It plays a significant role in studying cellular processes, particularly in cancer research, where it helps investigate the metabolism of choline and its impact on tumor growth. BETAB is also utilized in experiments exploring phospholipid metabolism, as it disrupts the synthesis of phosphatidylcholine, a key component of cell membranes. Additionally, it serves as a tool in neurobiology studies to understand cholinergic signaling pathways and their implications in neurological disorders. Its application extends to the development of therapeutic strategies targeting diseases associated with abnormal choline metabolism.
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