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Sperm-mediated host-derived DNA transfer as a new mechanism for immune system evasion of sexually transmitted genital tract pathogens

机译:精子介导的宿主来源的DNA转移是逃避性传播生殖道病原体免疫系统的新机制

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摘要

Over one century of extensive efforts directed towards investigating the immune response and the immuno-protection associated with sexually transmitted infections have failed to produce any effective vaccines against most of the major pathogens, among them Neisseria gonorrhea, herpes simplex virus type 2, and Chlamydia trachomatis. Attempts to design and develop protective vaccines against them have also yielded disappointing results. It has long been felt that there might be another yet undiscovered complicating factor, in addition to the recognized difficulties, which might be impeding the development of successful vaccines. Unlike the other body organs and systems, the genital tract and the elements found within it (e.g., spermatozoa) are endowed with unique features, some of which are associated with inherent DNA transferability skills as physiologically required from such an environment. We hypothesize that there is a novel evasion mechanism that involves an unusual sperm-mediated host-derived DNA transfer by which sexually transmitted genital tract microorganisms can express brand new chimeric antigens and epitopes and, by doing so, thus evade the surveillance of the immune system. This hypothesis may describe what would be the long-awaited breakthrough in the search for a vaccine against sexually transmitted infections. It may also assist in developing better-designed vaccines in general, and may have implications on other microorganism-related challenges (e.g., antibiotic resistance).
机译:经过一个多世纪的大量努力,旨在研究与性传播感染相关的免疫反应和免疫保护作用,未能针对大多数主要病原体生产有效的疫苗,其中包括淋病奈瑟氏球菌,2型单纯疱疹病毒和沙眼衣原体。 。设计和开发针对它们的保护性疫苗的尝试也产生了令人失望的结果。长期以来,人们一直认为,除了公认的困难之外,可能还有另一个尚未发现的复杂因素,这可能会阻碍成功疫苗的开发。与其他身体器官和系统不同,生殖道及其中发现的元素(例如,精子)具有独特的特征,其中某些特征与这种环境中生理所需的固有DNA转移能力有关。我们假设存在一种新颖的逃逸机制,该机制涉及不寻常的精子介导的宿主衍生的DNA转移,通过该机制,性传播生殖道微生物可以表达全新的嵌合抗原和表位,从而逃避了对免疫系统的监视。该假设可以描述寻找针对性传播感染的疫苗时期待已久的突破。一般而言,它也可以帮助开发设计更好的疫苗,并且可能对其他与微生物有关的挑战(例如,抗生素抗性)产生影响。

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