Institute for Molecular Virology and McArdle Laboratory for Cancer Research, University of Wisconsin-Madison, Madison, Wisconsin, USA.
mBio. 2013 May 28;4(3):e00298-13. doi: 10.1128/mBio.00298-13.
Herpesviruses are highly successful pathogens that persist for the lifetime of their hosts primarily because of their ability to establish and maintain latent infections from which the virus is capable of productively reactivating. Human cytomegalovirus (HCMV), a betaherpesvirus, establishes latency in CD34(+) hematopoietic progenitor cells during natural infections in the body. Experimental infection of CD34(+) cells ex vivo has demonstrated that expression of the viral gene products that drive productive infection is silenced by an intrinsic immune defense mediated by Daxx and histone deacetylases through heterochromatinization of the viral genome during the establishment of latency. Additional mechanistic details about the establishment, let alone maintenance and reactivation, of HCMV latency remain scarce. This is partly due to the technical challenges of CD34(+) cell culture, most notably, the difficulty in preventing spontaneous differentiation that drives reactivation and renders them permissive for productive infection. Here we demonstrate that HCMV can establish, maintain, and reactivate in vitro from experimental latency in cultures of human embryonic stem cells (ESCs), for which spurious differentiation can be prevented or controlled. Furthermore, we show that known molecular aspects of HCMV latency are faithfully recapitulated in these cells. In total, we present ESCs as a novel, tractable model for studies of HCMV latency.
疱疹病毒是高度成功的病原体,它们在宿主的一生中持续存在,主要是因为它们能够建立和维持潜伏感染,从而使病毒能够有效地重新激活。人类巨细胞病毒(HCMV)是一种β疱疹病毒,在体内自然感染时会在 CD34(+)造血祖细胞中建立潜伏。体外 CD34(+)细胞的实验感染表明,驱动产感染的病毒基因产物的表达被 Daxx 和组蛋白去乙酰化酶通过潜伏建立过程中病毒基因组的异染色质化介导的固有免疫防御沉默。关于 HCMV 潜伏的建立,更不用说维持和重新激活,其更多的机制细节仍然很少。这部分是由于 CD34(+)细胞培养的技术挑战,尤其是难以防止自发分化,这种分化会驱动重新激活,并使细胞对产感染具有易感性。在这里,我们证明 HCMV 可以在人类胚胎干细胞(ESC)的实验潜伏培养物中建立、维持和重新激活,因为可以防止或控制这些细胞中的虚假分化。此外,我们还表明,HCMV 潜伏的已知分子方面在这些细胞中得到了忠实的再现。总的来说,我们提出 ESC 作为研究 HCMV 潜伏的新型、易于处理的模型。