Rational design of unrestricted pRN1 derivatives and their application in the construction of a dual plasmid vector system for Saccharolobus islandicus

mLife Pub Date : 2024-03-20 DOI:10.1002/mlf2.12107
Pengpeng Zhao, Xiaonan Bi, Xiaoning Wang, Xu Feng, Yulong Shen, Guanhua Yuan, Q. She
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Abstract

Saccharolobus islandicus REY15A represents one of the very few archaeal models with versatile genetic tools, which include efficient genome editing, gene silencing, and robust protein expression systems. However, plasmid vectors constructed for this crenarchaeon thus far are based solely on the pRN2 cryptic plasmid. Although this plasmid coexists with pRN1 in its original host, early attempts to test pRN1‐based vectors consistently failed to yield any stable host–vector system for Sa. islandicus. We hypothesized that this failure could be due to the occurrence of CRISPR immunity against pRN1 in this archaeon. We identified a putative target sequence in orf904 encoding a putative replicase on pRN1 (target N1). Mutated targets (N1a, N1b, and N1c) were then designed and tested for their capability to escape the host CRISPR immunity by using a plasmid interference assay. The results revealed that the original target triggered CRISPR immunity in this archaeon, whereas all three mutated targets did not, indicating that all the designed target mutations evaded host immunity. These mutated targets were then incorporated into orf904 individually, yielding corresponding mutated pRN1 backbones with which shuttle plasmids were constructed (pN1aSD, pN1bSD, and pN1cSD). Sa. islandicus transformation revealed that pN1aSD and pN1bSD were functional shuttle vectors, but pN1cSD lost the capability for replication. These results indicate that the missense mutations in the conserved helicase domain in pN1c inactivated the replicase. We further showed that pRN1‐based and pRN2‐based vectors were stably maintained in the archaeal cells either alone or in combination, and this yielded a dual plasmid system for genetic study with this important archaeal model.
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无限制 pRN1 衍生物的合理设计及其在构建岛酵母双质粒载体系统中的应用
岛酵母 REY15A 是极少数具有多功能遗传工具的古细菌模型之一,这些工具包括高效的基因组编辑、基因沉默和强大的蛋白质表达系统。然而,迄今为止为这种古细菌构建的质粒载体都是基于 pRN2 隐性质粒。虽然这种质粒在其原始宿主中与 pRN1 共存,但早期尝试测试基于 pRN1 的载体时,始终未能为岛弧菌(Sa. islandicus)构建出任何稳定的宿主-载体系统。我们推测,这种失败可能是由于该古生物中存在针对 pRN1 的 CRISPR 免疫。我们在 orf904 中发现了一个编码 pRN1 上一个假定复制酶的假定目标序列(目标 N1)。然后,我们设计了变异的靶序列(N1a、N1b和N1c),并利用质粒干扰检测法测试了它们逃避宿主CRISPR免疫的能力。结果显示,原始靶标触发了该古生物的CRISPR免疫,而所有三个突变靶标都没有,这表明所有设计的靶标突变都逃避了宿主免疫。然后将这些突变靶标分别整合到 orf904 中,得到相应的突变 pRN1 骨架,并用其构建穿梭质粒(pN1aSD、pN1bSD 和 pN1cSD)。Sa.Islandicus转化结果表明,pN1aSD和pN1bSD是功能性穿梭载体,但pN1cSD失去了复制能力。这些结果表明,pN1c 中保守螺旋酶结构域的错义突变使复制酶失活。我们还进一步发现,基于 pRN1 和 pRN2 的载体可以单独或组合在古细菌细胞中稳定地维持,这就为这一重要的古细菌模型的遗传研究提供了一个双质粒系统。
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