肉桂萜类合酶CcTPS26基因克隆与表达模式分析

    Cloning and Expression Pattern Analysis of the Terpene Synthase Gene CcTPS26 in Cinnamomum cassia Presl

    • 摘要:
      目的 克隆肉桂(Cinnamomum cassia Presl)萜类合酶基因CcTPS26,解析其序列特征、保守结构、系统进化及时空表达模式;通过原核表达获得重组蛋白,为阐明肉桂萜类生物合成分子机制、开展酶学功能验证奠定研究基础。
      方法 以肉桂为材料,克隆CcTPS26基因全长序列;利用生物信息学工具分析编码蛋白理化性质、保守结构域、亚细胞定位、启动子顺式元件及系统进化关系;通过分子对接模拟CcTPS26蛋白与底物FPP、GPP的相互作用及结合稳定性;构建原核表达载体,将重组质粒转化大肠杆菌BL21(DE3)感受态细胞,IPTG诱导蛋白表达,采用SDS-PAGE检测重组蛋白分子量与可溶性,通过Ni2+亲和层析纯化目的蛋白;利用qRT-PCR技术检测CcTPS26在肉桂不同组织、不同发育时期韧皮部的表达变化。
      结果 成功克隆肉桂CcTPS26基因,开放阅读框(ORF)全长为1 686 bp,编码561个氨基酸;编码蛋白理论分子量64.94 kDa,等电点5.60,属于亲水性酸性不稳定蛋白,无信号肽与跨膜结构,亚细胞定位于细胞质。该蛋白含有植物萜环化酶保守结构域Terpene cyclase plant C1,同时具备DDXXD、NSE/DTE等Ⅰ类萜类合酶特征基序;系统进化分析表明,CcTPS26与阴香(C. burmanni)TPS蛋白亲缘关系最近(93.76%);基因启动子区包含大量胁迫应答与激素调控元件,提示该基因的转录过程可能受逆境与激素信号调控;分子对接结果显示,CcTPS26可稳定结合GPP、FPP,依靠氨基酸残基间氢键与盐桥作用维系底物构象。SDS-PAGE检测结果显示,经原核表达与Ni2+亲和层析纯化的CcTPS26重组蛋白分子量约82.1 kDa,菌体上清可检测到目的条带,证明该蛋白以可溶性形式表达;梯度咪唑洗脱试验显示,275 mmol/L咪唑洗脱组分杂蛋白最少,目的蛋白纯化效果最优。qRT-PCR定量结果表明,CcTPS26表达存在显著组织与发育时期特异性;该基因在果实、叶片、茎韧皮部表达量显著高于花和茎木质部;5年树龄肉桂茎韧皮部中CcTPS26表达水平达到峰值。
      结论 首次从肉桂中克隆获得萜类合酶基因CcTPS26,其编码蛋白可特异性识别萜类合成前体底物,明确其序列特征、时空表达模式及重组蛋白纯化最佳条件。该基因在萜类合成关键组织中优势表达,推测其在肉桂萜类成分生物合成过程中发挥着重要催化作用,可为肉桂萜类代谢调控及分子育种提供关键候选基因。

       

      Abstract:
      Objective The study was aimed to clone the terpenoid synthase gene CcTPS26 from Cinnamomum cassia Presl, characterize its sequence features, conserved domains, phylogeny and spatiotemporal expression, and obtain soluble recombinant protein via prokaryotic expression, so as to lay a solid foundation for elucidating the molecular mechanism of terpenoid biosynthesis and validating enzymatic function in cinnamon.
      Method The full-length coding sequence of CcTPS26 was cloned from C. cassia. Bioinformatics tools were employed to analyze the physicochemical properties, conserved domains, subcellular localization, promoter cis-elements, and phylogenetic relationships of the encoded protein. Molecular docking was performed to evaluated the binding affinity of CcTPS26 with FPP and GPP. The prokaryotic expression vector was constructed and transformed into Escherichia coli BL21(DE3), and recombinant protein expression was induced by IPTG. The molecular weight and solubility were determined by SDS-PAGE, and the protein was purified by Ni2+ affinity chromatography. Transcript levels of CcTPS26 in different tissues and phloem at different developmental stages were quantified by qRT-PCR.
      Result The full length open reading frame (ORF) of CcTPS26 was 1 686 bp, encoding 561 amino acids with a theoretical molecular weight of 64.94 kDa and an isoelectric point (pI) of 5.60. CcTPS26 was predicted as a hydrophilic, acidic and unstable protein without signal peptide or transmembrane domains, and was primarily localized in the cytoplasm. It contained the Terpene cyclase plant C1 domain and the Class Ⅰ IPS conserved motifs DDXXD and NSE/DTE. Phylogenetic analysis revealed that CcTPS26 shared the highest identity (93.76%) with the TPS from C. burmanni. Abundant stress- and hormone-responsive cis-elements were detected in the promoter region, suggesting transcriptional regulation by stress and hormonal signals. Molecular docking confirmed that CcTPS26 could stably bind GPP and FPP through hydrogen bonds and salt bridges. The soluble recombinant protein of approximately 82.1 kDa was successfully expressed and purified, with the highest purity achieved at 275 mmol/L imidazole elution. CcTPS26 exhibited distinct tissue- and development-specific expression: transcripts were significantly more abundant in fruits, leaves, and the phloem than in flowers and xylem, and peaked in the phloem of 5-year-old trees.
      Conclusion The terpene synthase gene CcTPS26 was first cloned and characterized from C. cassia. The encoded protein can specifically recognize the key precursors for terpenoid biosynthesis. Its sequence characteristics, spatiotemporal expression patterns, and optimal conditions for recombinant protein purification were determined. CcTPS26 is predominantly expressed in terpenoid-accumulating tissues and presumably plays an essential role in the biosynthesis of terpenoids. This work provides a key candidate gene for terpenoid metabolism regulation and molecular breeding in C. cassia.