Biophysical Breakthroughs Projected for the Phage Therapy of Bacterial Disease

James P. Chambers, Miranda Aldis, Julie A Thomas, Cara B. Gonzales, Richard Allen White, Philip Serwer
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Abstract

Past anti-bacterial use of bacteriophages (phage therapy) is already well reviewed as a potential therapeutic response to the emergence of multidrug-resistant, pathogenic bacteria. Phage therapy has been limited by the following. (1) The success rate is too low for routine use and Food and Drug Administration (FDA) approval. (2) Current strategies of routine phage characterization do not sufficiently improve the success rate of phage therapy. (3) The stability of many phages at ambient temperature is not high enough to routinely store and transport phages at ambient temperature. In the present communication, we present new and previous data that we interpret as introductory to biophysically and efficiently transforming phage therapy to the needed level of effectiveness. Included are (1) procedure and preliminary data for the use of native gel electrophoresis (a low-cost procedure) for projecting the therapy effectiveness of a newly isolated phage, (2) data that suggest a way to achieve stabilizing of dried, ambient-temperature phages via polymer embedding, and (3) data that suggest means to increase the blood persistence, and therefore the therapy effectiveness, of what would otherwise be a relatively low-persistence phage.
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噬菌体治疗细菌性疾病的生物物理突破预测
噬菌体疗法(噬菌体疗法)作为一种潜在的治疗方法,可应对出现的耐多药病原菌,其过去的抗菌应用已得到广泛认可。噬菌体疗法受到以下限制。(1) 成功率太低,不适合常规使用和食品与药物管理局(FDA)批准。(2)目前的常规噬菌体特征描述策略不足以提高噬菌体疗法的成功率。(3) 许多噬菌体在常温下的稳定性不够高,无法在常温下常规储存和运输噬菌体。在本通讯中,我们介绍了新的和以前的数据,这些数据被我们解释为从生物物理角度将噬菌体疗法有效转化到所需有效性水平的入门数据。其中包括:(1) 使用原生凝胶电泳(一种低成本程序)预测新分离噬菌体治疗效果的程序和初步数据;(2) 建议通过聚合物包埋实现稳定干燥的常温噬菌体的方法的数据;(3) 建议提高血液持久性从而提高治疗效果的方法的数据,否则噬菌体的持久性会相对较低。
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