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Guangdong Jincheng Jinsu Pharmaceutical Co., Ltd.
  • Founded in:

    2015-05-25
  • Country:

    China China
  • Address:

    No. 10, Shennong Road, Torch Development Zone, Zhongshan City, Guangdong Province
  • Tax NO.:

    91442000337901760P
  • Registered Funds:

    60.606 million yuan
  • Website:

  • Email:

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The second generation cephalosporin antibiotics have similar or slightly worse antibacterial activity against Gram-positive cocci than the first generation cephalosporins, but are quite stable against β-lactamase produced by Staphylococci and Gram-negative bacilli. Methicillin-resistant Staphylococci, Enterococci and Listeria are resistant, and other positive cocci (including anaerobic cocci) are sensitive to this product. The antibacterial activity against Staphylococcus aureus is worse than that of cefazolin, and 1-2 mg/L can inhibit all Staphylococcus aureus that are sensitive and resistant to penicillin, respectively. It has strong antibacterial activity against Haemophilus influenzae, and Escherichia coli, Proteus mirabilis, etc. may be sensitive to this product; indole-positive Proteus, Citrobacter and Acinetobacter are poorly sensitive to this product, Serratia is mostly resistant, Pseudomonas aeruginosa, Campylobacter and Bacteroides fragilis are resistant to this product. Its mechanism of action is to bind to penicillin-binding proteins (PBPs) on the bacterial cell membrane, acylate the transpeptidase, inhibit the synthesis of the bacterial septum and cell wall, affect the cross-linking of the cell wall mucopeptide components, inhibit cell division and growth, elongate the bacterial morphology, and finally dissolve and die.

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The second generation cephalosporin antibiotics have similar or slightly worse antibacterial activity against Gram-positive cocci than the first generation cephalosporins, but are quite stable against β-lactamase produced by Staphylococci and Gram-negative bacilli. Methicillin-resistant Staphylococci, Enterococci and Listeria are resistant, and other positive cocci (including anaerobic cocci) are sensitive to this product. The antibacterial activity against Staphylococcus aureus is worse than that of cefazolin, and 1-2 mg/L can inhibit all Staphylococcus aureus that are sensitive and resistant to penicillin, respectively. It has strong antibacterial activity against Haemophilus influenzae, and Escherichia coli, Proteus mirabilis, etc. may be sensitive to this product; indole-positive Proteus, Citrobacter and Acinetobacter are poorly sensitive to this product, Serratia is mostly resistant, Pseudomonas aeruginosa, Campylobacter and Bacteroides fragilis are resistant to this product. Its mechanism of action is to bind to penicillin-binding proteins (PBPs) on the bacterial cell membrane, acylate the transpeptidase, inhibit the synthesis of the bacterial septum and cell wall, affect the cross-linking of the cell wall mucopeptide components, inhibit cell division and growth, elongate the bacterial morphology, and finally dissolve and die.

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This product is a third-generation cephalosporin antibiotic. It has high antibacterial activity against Escherichia coli, Klebsiella pneumoniae and other Enterobacteriaceae, Haemophilus influenzae, Pseudomonas aeruginosa, etc. It also has good antibacterial effects on nitrate-negative bacilli, Alcaligenes, etc. Most beta-lactamases produced by bacteria are highly stable, so it can still have antibacterial activity against multi-drug resistant strains of most of the above-mentioned Gram-negative bacilli. Gram-positive cocci such as pneumococci and hemolytic streptococci are highly sensitive to this product, but this product has only moderate activity against staphylococci, while enterococci and methicillin-resistant Staphylococci are often resistant to this product. This product has certain antibacterial activity against anaerobic bacteria such as Peptococcus and Peptostreptococci, but has poor antibacterial effect against Bacteroides fragilis. Its mechanism of action is to bind to penicillin-binding proteins (PBPs) on the bacterial cell membrane, acylate the transpeptidase, inhibit the synthesis of the bacterial septum and cell wall, affect the cross-linking of the cell wall mucopeptide components, inhibit cell division and growth, elongate the bacterial morphology, and finally dissolve and die.

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