Identification of multiple regulatory genes involved in TGase production in Streptomyces mobaraensis DSM 40587

Xian Liu , Dan Wang , Yuru Zhang , Xiaoxin Zhuang , Linquan Bai
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Abstract

Microbial transglutaminase (TGase) is a protein that is secreted in a mature form and finds wide applications in meat products, tissue scaffold crosslinking, and textile engineering. Streptomyces mobaraensis is the only licensed producer of TGase. However, increasing the production of TGase using metabolic engineering and heterologous expression approaches has encountered challenges in meeting industrial demands. Therefore, it is necessary to identify the regulatory networks involved in TGase biosynthesis to establish a stable and highly efficient TGase cell factory. In this study, we employed a DNA-affinity capture assay and mass spectrometry analysis to discover several transcription factors. Among the candidates, eight were selected and found to impact TGase biosynthesis. Notably, SMDS_4150, an AdpA-family regulator, exhibited a significant influence and was hence named AdpASm. Through electrophoretic mobility shift assays, we determined that AdpASm regulates TGase biosynthesis by directly repressing the transcription of tg and indirectly inhibiting the transcription of SMDS_3961. The latter gene encodes a LytR-family positive regulator of TGase biosynthesis. Additionally, AdpASm exhibited negative regulation of its own transcription. To further enhance TGase production, we combined the overexpression of SMDS_3961 with the repression of SMDS_4150, resulting in a remarkable improvement in TGase titer from 28.67 to 52.0 U/mL, representing an 81.37% increase. This study establishes AdpA as a versatile regulator involved in coordinating enzyme biosynthesis in Streptomyces species. Furthermore, we elucidated a cascaded regulatory network governing TGase production.

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mobaraensis链霉菌DSM 40587中参与TGase产生的多个调控基因的鉴定
微生物谷氨酰胺转胺酶(TGase)是一种成熟分泌的蛋白质,在肉制品、组织支架交联和纺织工程中有着广泛的应用。莫巴拉链霉菌是TGase的唯一许可生产商。然而,使用代谢工程和异源表达方法增加TGase的产量在满足工业需求方面遇到了挑战。因此,有必要鉴定参与TGase生物合成的调控网络,以建立稳定高效的TGase细胞工厂。在这项研究中,我们采用DNA亲和捕获分析和质谱分析来发现几种转录因子。在候选者中,选择了8个,发现它们影响TGase的生物合成。值得注意的是,AdpA家族调节因子SMDS_4150表现出显著的影响,因此被命名为AdpASm。通过电泳迁移率测定,我们确定AdpASm通过直接抑制tg的转录和间接抑制SMDS_3961的转录来调节TGase的生物合成。后一个基因编码TGase生物合成的LytR家族正调控因子。此外,AdpASm表现出对自身转录的负调控。为了进一步提高TGase的产生,我们将SMDS_3961的过表达与SMDS_4150的抑制相结合,导致TGase滴度从28.67显著提高到52.0U/mL,即增加81.37%。本研究确定AdpA是一种多功能的调节剂,参与链霉菌物种的酶生物合成协调。此外,我们阐明了控制TGase生产的级联调控网络。
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