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利用改良的靛蓝合成报告基因对甲藻磷酸泛酰巯基乙胺基转移酶(PPTase)与硫醇化结构域相互作用的表征

Dinoflagellate Phosphopantetheinyl Transferase (PPTase) and Thiolation Domain Interactions Characterized Using a Modified Indigoidine Synthesizing Reporter.

作者信息

Williams Ernest, Bachvaroff Tsvetan, Place Allen

机构信息

Institute of Marine and Environmental Technologies, University of Maryland Center for Environmental Science, 701 East Pratt St., Baltimore, MD 21202, USA.

出版信息

Microorganisms. 2022 Mar 23;10(4):687. doi: 10.3390/microorganisms10040687.

Abstract

Photosynthetic dinoflagellates synthesize many toxic but also potential therapeutic compounds therapeutics via polyketide/non-ribosomal peptide synthesis, a common means of producing natural products in bacteria and fungi. Although canonical genes are identifiable in dinoflagellate transcriptomes, the biosynthetic pathways are obfuscated by high copy numbers and fractured synteny. This study focuses on the carrier domains that scaffold natural product synthesis (thiolation domains) and the phosphopantetheinyl transferases (PPTases) that thiolate these carriers. We replaced the thiolation domain of the indigoidine producing BpsA gene from with those of three multidomain dinoflagellate transcripts and coexpressed these constructs with each of three dinoflagellate PPTases looking for specific pairings that would identify distinct pathways. Surprisingly, all three PPTases were able to activate all the thiolation domains from one transcript, although with differing levels of indigoidine produced, demonstrating an unusual lack of specificity. Unfortunately, constructs with the remaining thiolation domains produced almost no indigoidine and the thiolation domain for lipid synthesis could not be expressed in . These results combined with inconsistent protein expression for different PPTase/thiolation domain pairings present technical hurdles for future work. Despite these challenges, expression of catalytically active dinoflagellate proteins in is a novel and useful tool going forward.

摘要

光合甲藻通过聚酮化合物/非核糖体肽合成途径合成许多有毒但也具有潜在治疗作用的化合物,这是细菌和真菌中产生天然产物的常见方式。尽管在甲藻转录组中可识别出典型基因,但生物合成途径因高拷贝数和破碎的同线性而变得模糊不清。本研究聚焦于支撑天然产物合成的载体结构域(硫醇化结构域)以及使这些载体硫醇化的磷酸泛酰巯基乙胺基转移酶(PPTases)。我们将靛蓝生产基因BpsA的硫醇化结构域替换为三种多结构域甲藻转录本的硫醇化结构域,并将这些构建体与三种甲藻PPTases中的每一种共表达,寻找能够识别不同途径的特定配对。令人惊讶的是,所有三种PPTases都能够激活来自一个转录本的所有硫醇化结构域,尽管产生的靛蓝水平不同,这表明存在异常的特异性缺乏。不幸的是,带有其余硫醇化结构域的构建体几乎不产生靛蓝,并且脂质合成的硫醇化结构域无法在……中表达。这些结果与不同PPTase/硫醇化结构域配对的蛋白质表达不一致,给未来的工作带来了技术障碍。尽管存在这些挑战,但在……中表达具有催化活性的甲藻蛋白是一种新颖且有用的未来工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a2c3/9027781/0dfad6da6275/microorganisms-10-00687-g001.jpg

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