Cyphert Erika L, Wallat Jaqueline D, Pokorski Jonathan K, von Recum Horst A
Department of Biomedical Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH 44106, USA.
Department of Macromolecular Science and Engineering, Case Western Reserve University, 2100 Adelbert Road, Cleveland, OH 44106, USA.
Antibiotics (Basel). 2017 Apr 25;6(2):11. doi: 10.3390/antibiotics6020011.
The antibiotic erythromycin has limited efficacy and bioavailability due to its instability and conversion under acidic conditions via an intramolecular dehydration reaction. To improve the stability of erythromycin, several analogs have been developed-such as azithromycin and clarithromycin-which decrease the rate of intramolecular dehydration. We set out to build upon this prior work by developing a conjugate of erythromycin with improved pH stability, bioavailability, and preferential release from a drug delivery system directly at the low pH of an infection site. To develop this new drug conjugate, adamantane-1-carbohydrazide was covalently attached to erythromycin via a pH-degradable hydrazone bond. Since infection sites are slightly acidic, the hydrazone bond will undergo hydrolysis liberating erythromycin directly at the infection site. The adamantane group provides interaction with the drug delivery system. This local delivery strategy has the potential of reducing off-target and systemic side-effects. This work demonstrates the synthesis of a pH-cleavable, erythromycin conjugate that retains the inherent antimicrobial activity of erythromycin, has an increased hydrophobicity, and improved stability in acidic conditions; thereby enhancing erythromycin's bioavailability while simultaneously reducing its toxicity.
抗生素红霉素由于其在酸性条件下通过分子内脱水反应的不稳定性和转化,导致其疗效和生物利用度有限。为了提高红霉素的稳定性,已开发出几种类似物,如阿奇霉素和克拉霉素,它们降低了分子内脱水的速率。我们着手在先前工作的基础上,开发一种红霉素缀合物,其具有改善的pH稳定性、生物利用度,并能在感染部位的低pH值下直接从药物递送系统中优先释放。为了开发这种新型药物缀合物,金刚烷-1-碳酰肼通过可pH降解的腙键与红霉素共价连接。由于感染部位略显酸性,腙键将发生水解,在感染部位直接释放红霉素。金刚烷基团提供与药物递送系统的相互作用。这种局部递送策略有可能减少脱靶和全身副作用。这项工作展示了一种pH可裂解的红霉素缀合物的合成,该缀合物保留了红霉素固有的抗菌活性,具有增加的疏水性,并在酸性条件下具有改善的稳定性;从而提高红霉素的生物利用度,同时降低其毒性。