探索跨越II型聚酮合成酶序列空间的磷酸蚁基转移酶与酰基载体蛋白的相容性。

IF 3.2 4区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Areta L N Bifendeh, Kenneth K Hsu, Christina M McBride, Charlie M Ferguson, Eva R Baumann, Diego Capcha-Rodriguez, Xinnuo Chen, Berlensie Chery, Margo M Chihade, Paola Delgado Umpierre, Taliyah Evans, Carolyn H Everett, Syeda F Faheem, Oscar D Garrett, Aliya R Gottesfeld, Ishir G Gupta, Jason D Haas, Theresa A Haupt, Jean Katz, Sadie Kim, Matthias Langer, Vy Le, Kevin K Li, Baldwin Zhao, Siyue Lin, Kelsey N Mabry, Anna Malkov, Abigail T Marquis, Kieran R McDonnell, Kristen Min, Nicholas B Mostaghim, Krysta M Nichols, Rebecca A Osbaldeston, Trisha T Phan, Alana T Ponte, Tala Qaraqe, Bianca S Rosas, Caroline S Smith, Logan E Smith, Maisie W Smith, Aviva C R Soll, Gabriel Rocco Sotero, Isabel E Thornberry, Kristina Tran, Quynh K Vo, Marcos G Yoc-Bautista, Madison Young, Kelly A Zukowski, Robert Fairman, Kimberly A Wodzanowski, Michael A Herrera, Yae In Cho, Louise K Charkoudian
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引用次数: 0

摘要

磷酸antetheinyl transferases (PPTases)在原发性和继发性代谢中起重要作用。这些酶促进酰基载体蛋白(ACPs)的翻译后活化,对脂肪酸和聚酮的生物合成至关重要。调节ACP-PPTase相互作用是一种很有前途的方法,既可以增加所需分子输出的途径,又可以破坏与疾病进展相关的机制。然而,这种方法需要理解控制不同合酶之间ACP-PPTase相互作用的分子原理。通过多年的本科课程研究经验(CURE),来自放线菌和非放线菌门的17种ACPs代表了一系列假定的II型聚酮合成酶,被评估为三种PPTases (ACPs, Sfp和vulPPT)的底物。观察到的PPTase相容性、序列水平分析和预测结构模型表明,ACP的选择性是由ACP上保守的修饰丝氨酸周围的氨基酸驱动的。我们认为vulPPT和Sfp主要由疏水接触驱动,而AcpS可能更倾向于具有高净负电荷密度和广泛电负性表面分布的AcpS。此外,我们还报道了vulPPT与不变丝氨酸上游的保守ACP折痕之间可能存在的疏水相互作用,这可能有助于对接。这项工作提供了兼容和不兼容ACP-PPTase伙伴关系的目录,突出了ACP和/或PPTase上的特定区域,这些区域在未来的战略工程和抑制剂开发工作中显示出希望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the compatibility of phosphopantetheinyl transferases with acyl carrier proteins spanning type II polyketide synthase sequence space.

Phosphopantetheinyl transferases (PPTases) play an essential role in primary and secondary metabolism. These enzymes facilitate the post-translational activation of acyl carrier proteins (ACPs) central to the biosynthesis of fatty acids and polyketides. Modulation of ACP-PPTase interactions is a promising approach to both increase access to desired molecular outputs and disrupt mechanisms associated with disease progression. However, such an approach requires understanding the molecular principles that govern ACP-PPTase interactions across diverse synthases. Through a multi-year, course-based undergraduate research experience (CURE), 17 ACPs representing a range of putative type II polyketide synthases, from actinobacterial and non-actinobacterial phyla, were evaluated as substrates for three PPTases (AcpS, Sfp, and vulPPT). The observed PPTase compatibility, sequence-level analyses, and predictive structural modelling suggest that ACP selectivity is driven by amino acids surrounding the conserved, modified serine on the ACP. We propose that vulPPT and Sfp are driven primarily by hydrophobic contacts, whereas AcpS may favor ACPs which exhibit high net-negative charge density, as well as a broad electronegative surface distribution. Furthermore, we report a plausible, hitherto unreported hydrophobic interaction between vulPPT and a conserved ACP crease, upstream of the invariant serine, which may facilitate docking. This work provides a catalog of compatible and incompatible ACP-PPTase partnerships, highlighting specific regions on the ACP and/or PPTase that show promise for future strategic engineering and inhibitor development efforts.

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来源期刊
Journal of Industrial Microbiology & Biotechnology
Journal of Industrial Microbiology & Biotechnology 工程技术-生物工程与应用微生物
CiteScore
7.70
自引率
0.00%
发文量
25
审稿时长
3 months
期刊介绍: The Journal of Industrial Microbiology and Biotechnology is an international journal which publishes papers describing original research, short communications, and critical reviews in the fields of biotechnology, fermentation and cell culture, biocatalysis, environmental microbiology, natural products discovery and biosynthesis, marine natural products, metabolic engineering, genomics, bioinformatics, food microbiology, and other areas of applied microbiology
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