组成图示
示意图生成中
传感器类型
综述或非传感器论文
检测对象
木聚糖(xylan,可溶阿拉伯木聚糖、不溶燕麦黑麦木聚糖)、纤维素(cellulose,微晶纤维素 Avicel、磷酸膨胀纤维素 PASC、羧甲基纤维素 CMC);样品基质为多糖溶液或不溶多糖颗粒/生物质基质
检测原理
该论文描述的是天然/假定的胞外碳水化合物感知机制,而非人工换能器。RsgI6-GH10和Rsi24C-GH5位于抗σ因子的胞外区,分别识别木聚糖和纤维素。多糖结合后,可能改变跨膜抗σ因子的构象或界面状态,使胞内σI/σ24样替代σ因子从抗σ因子中释放;释放的σ因子与RNA聚合酶结合,启动编码纤维素酶、木聚糖酶等多糖利用基因的转录,形成基因表达层面的信号放大。RsgI6-GH10保留部分木聚糖酶活,但Vmax很低,且不能水解纤维素;Rsi24C-GH5因保守催化谷氨酸被谷氨酰胺替换而丧失水解活性,仅保留纤维素结合能力。因此其传感功能主要依赖结合事件而非催化事件。
检测灵敏度
未报告LOD、线性范围、灵敏度斜率、相关系数;报告酶动力学:Km = 2.9 mg/ml,Vmax = 43.5 nkat/mg protein
效应效果
RsgI6-GH10对木聚糖基质具有结合能力,并可水解可溶阿拉伯木聚糖和不溶燕麦黑麦木聚糖,但Vmax仅为其他已表征木聚糖酶的0.1–10%;它还能结合纤维素,但对羧甲基纤维素、磷酸膨胀纤维素和微晶纤维素无水解活性。结合实验显示其不结合几丁质和果胶,提示对木聚糖/纤维素具有选择性。Rsi24C-GH5对微晶纤维素呈弱但可重复的结合,对多聚半乳糖醛酸结合很弱,对木聚糖、果胶和几丁质基本无结合,且对所有测试多糖无水解活性。作者据此认为这两个模块已进化为胞外多糖结合/感知元件,参与C. thermocellum多糖利用基因的调控,而非主要发挥催化功能。
传感器的构成
- 基底/换能器:细胞膜(C. thermocellum 质膜),天然跨膜抗σ蛋白定位,未使用人工电极或纳米材料
- 识别元件:RsgI6-GH10(Cthe_2119 378–760 aa)重组糖苷水解酶模块,结合可溶/不溶木聚糖及纤维素,木聚糖水解活性低
- 识别元件:Rsi24C-GH5(Cthe_1471 114–561 aa)重组糖苷水解酶模块,结合微晶纤维素,因E315Q替换无水解活性
- 信号转导元件:RsgI/Rsi24样跨膜抗σ因子结构域,连接胞外多糖结合与胞内σ因子释放
- 调控元件:σI/σ24样替代σ因子,与RNA聚合酶结合启动多糖利用基因转录
- 表达纯化平台:E. coli BL21(DE3)、pET28a、His标签、Ni-NTA亲和层析,用于制备重组模块
- 验证读出:SDS-PAGE、DNS还原糖测定、非变性亲和凝胶电泳,用于检测结合与酶活
中文摘要
产纤维素酶复合体细菌热纤梭菌(Clostridium thermocellum)的纤维素酶系统组成会随不同碳源生长而改变。近期研究提出一种碳水化合物感知机制,用于调控编码多糖降解酶基因的激活:RsgI样抗σ因子的胞外碳水化合物结合模块(CBM)被推测作为碳水化合物传感器,并通过相关σI样因子激活一组纤维素利用基因。其中,RsgI样蛋白Cthe_2119(RsgI6)的胞外模块被注释为10家族糖苷水解酶(RsgI6-GH10);另一假定抗σ因子Cthe_1471(Rsi24C)含有类似5家族糖苷水解酶的模块(Rsi24C-GH5)。本研究检验这两个糖苷水解酶模块在该信号传递系统中作为传感器的相关性。结果显示,RsgI6-GH10可结合木聚糖基质,但对该底物的酶活性较低;它还能与结晶纤维素相互作用,但未检测到纤维素水解活性。生物信息分析表明,Rsi24C-GH5存在谷氨酸到谷氨酰胺的替换,可能使其丧失催化活性;重组模块确实结合纤维素,但无水解活性。这些结果提示,这两个糖苷水解酶可能经进化适应为多糖结合元件而非酶组分,从而在胞外碳水化合物感知中发挥作用。
英文摘要
The composition of the cellulase system in the cellulosome-producing bacterium, Clostridium thermocellum, has been reported to change in response to growth on different carbon sources. Recently, an extensive carbohydrate-sensing mechanism, purported to regulate the activation of genes coding for polysaccharide-degrading enzymes, was suggested. In this system, CBM modules, comprising extracellular components of RsgI-like anti-σ factors, were proposed to function as carbohydrate sensors, through which a set of cellulose utilization genes are activated by the associated σ(I)-like factors. An extracellular module of one of these RsgI-like proteins (Cthe_2119) was annotated as a family 10 glycoside hydrolase, RsgI6-GH10, and a second putative anti-σ factor (Cthe_1471), related in sequence to Rsi24, was found to contain a module that resembles a family 5 glycoside hydrolase (termed herein Rsi24C-GH5). The present study examines the relevance of these two glycoside hydrolases as sensors in this signal-transmission system. The RsgI6-GH10 was found to bind xylan matrices but exhibited low enzymatic activity on this substrate. In addition, this glycoside hydrolase module was shown to interact with crystalline cellulose although no hydrolytic activity was detected on cellulosic substrates. Bioinformatic analysis of the Rsi24C-GH5 showed a glutamate-to-glutamine substitution that would presumably preclude catalytic activity. Indeed, the recombinant module was shown to bind to cellulose, but showed no hydrolytic activity. These observations suggest that these two glycoside hydrolases underwent an evolutionary adaptation to function as polysaccharide binding agents rather than enzymatic components and thus serve in the capacity of extracellular carbohydrate sensors.