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Haloprogin

(777-11-7)
This product is an antifungal medicine, disinfectant and antiseptic, suitable for ringworm caused by fungi. Mice oral LD50> 3g/kg.

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CHRYSOMYCINA

(82196-88-1)
Chrysomycin A is the major analogue in a complex of C-glycoside antitumor actives isolated from Streptomyces. Chrysomycin A, with a vinyl group in the 8-position, is the most potent analogue of the complex, and is thought to act as an inhibitor of the catalytic activity of human topoisomerase II. Chrysomycin A has a potent antibacterial, antifungal, antiviral and antitumor profile. More recent research on related metabolites, the gilvocarcins, suggests that chrysomycins may act as photoactivated

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Prontosil

(103-12-8)
ChEBI: A diphenyldiazene compound having two amino substituents at the 2- and 4-positions and an aminosulphonyl substituent at the 4'-position. It was the first antibacterial drug, (introduced 1935) and the first of the sulfonamide antibiotics.

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Synthetic anti-infective drugs refer to a class of drugs (or chemotherapeutic drugs) that inhibit or kill pathogenic microorganisms. Anti-infective drugs are basic medications, and are widely used in the treatment of various infections such as bacterial infections, fungal infections, chlamydia infections, viral infections, and other complications caused by other diseases. Synthetic anti-infective drugs mainly include: sulfonamides and antibacterial synergists, quinolones, anti-tuberculosis drugs, antifungal drugs, antiviral drugs, antiparasitic drugs, etc. Synthetic antibacterial drugs mainly include sulfonamides and their synergists, quinolones and nitroimidazoles. The "ECHEMI Synthetic Anti-infective Drugs" list mainly supplies APIs for such drugs.

Frequently Asked Questions

What are synthetic anti-infective drugs?

Synthetic anti-infective drugs are chemically manufactured compounds designed to treat infections caused by bacteria, viruses, fungi, or parasites. Unlike naturally derived antibiotics, these agents are created entirely through chemical synthesis in laboratories. Common examples include sulfonamides, quinolones, and certain antiviral agents. They play a critical role in modern medicine by offering targeted, scalable, and often more stable alternatives to natural antimicrobials.

How do synthetic anti-infectives differ from natural antibiotics?

Synthetic anti-infective drugs are fully synthesized in the lab without reliance on microbial fermentation, whereas natural antibiotics (like penicillin) are derived from living organisms such as fungi or bacteria. Synthetic versions often offer better control over purity, consistency, and resistance profiles. Additionally, they can be engineered to overcome common mechanisms of microbial resistance, making them valuable in treating multidrug-resistant infections.

What are the common applications of synthetic anti-infective drugs?

Synthetic anti-infective drugs are widely used in clinical and veterinary settings to treat a range of infections. Key applications include:1. Urinary tract infections (e.g., fluoroquinolones),2. Respiratory infections (e.g., macrolide analogs),3. Skin and soft tissue infections (e.g., trimethoprim-sulfamethoxazole),4. Sexually transmitted diseases (e.g., azithromycin for chlamydia),5. Prophylactic use in surgical procedures.Their predictable pharmacokinetics and scalable production make them essential in both hospital and community healthcare.

How should buyers evaluate suppliers of synthetic anti-infective APIs?

When sourcing synthetic anti-infective active pharmaceutical ingredients (APIs), buyers should assess suppliers based on:1. Regulatory compliance (e.g., FDA, EMA, or WHO-GMP certifications),2. Robust quality control systems including impurity profiling and stability testing,3. Documentation transparency (e.g., DMFs, CEPs, or audit reports),4. Scalable manufacturing capacity with consistent batch-to-batch reproducibility,5. Track record in regulatory inspections and supply chain reliability.Choosing a qualified supplier ensures drug safety, efficacy, and regulatory approval success.

What factors affect the quality of synthetic anti-infective drugs?

The quality of synthetic anti-infective drugs depends on several critical factors:1. Purity and identity of starting materials and intermediates,2. Precision of synthetic route and reaction conditions,3. Stringent in-process controls during manufacturing,4. Effective removal of genotoxic impurities or residual solvents,5. Compliance with ICH guidelines for stability and shelf life.High-quality synthetic anti-infectives must meet pharmacopeial standards (e.g., USP, EP) to ensure therapeutic effectiveness and patient safety.

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