Current Biotechnology ›› 2026, Vol. 16 ›› Issue (3): 510-522.DOI: 10.19586/j.2095-2341.2025.0171
• Special Forum on Microbial Cell Factory • Previous Articles Next Articles
Tianjie HAN1(
), Jinfeng WEI1(
), Yongliang YAN2, Min LIN2,3, Zhengfu ZHOU2(
)
Received:2025-12-02
Accepted:2026-01-05
Online:2026-05-25
Published:2026-07-14
Contact:
Zhengfu ZHOU
CLC Number:
Tianjie HAN, Jinfeng WEI, Yongliang YAN, Min LIN, Zhengfu ZHOU. Advances in the Biosynthesis of Betalains[J]. Current Biotechnology, 2026, 16(3): 510-522.
| 类别 | 底盘微生物 | 碳源 | 产量 | 发酵方式 | 路径构建与优化策略 | 参考文献 |
|---|---|---|---|---|---|---|
| 甜菜苷 | 酿酒酵母 | 葡萄糖 | 17 mg·L-1 | 摇瓶 | 路径构建(外源引入BvCYP76AD1W13L MjDODA和Mj-cDOPA5GT) | [ |
| 酿酒酵母 | 20 g·L-1葡萄糖 | 30.8 mg·L-1 | 摇瓶 | 路径构建(运用组合工程构建酪氨酸羟化酶和多巴双加氧酶文库,筛选最佳组合,引入葡萄糖基转移酶变体) | [ | |
| 酿酒酵母 | 10 g·L-1蔗糖 | 134.1 mg·L-1 | 摇瓶 | 酶改造(通过设计CYP76AD1增加酶活性),路径重构(加强L-酪氨酸合成途径)和优化发酵条件 | [ | |
| 解脂耶氏酵母 | 20 g·L-1葡萄糖 | 1.27 g·L-1 | 5 L发酵罐 | 路径构建(引入来自七索藤的酪氨酸羟化酶EvTYH、来自紫茉莉的多巴双加氧酶MjDODA和来自甜菜的蔗糖糖基转移酶BvSGT2)并优化发酵条件 | [ | |
| 解脂耶氏酵母 | 40 g·L-1葡萄糖 | 1.34 g·L-1 | 250 mL发酵罐 | 路径构建(组合表达TyH、DODA、GT酶基因),路径重构(增加路径拷贝数;引入酪氨酸、UDP-葡萄糖合成基因与转运蛋白;阻断副产物黑色素合成,敲除4-羟基苯丙酮酸双加氧酶基因,敲除3个β葡萄糖苷酶) | [ | |
| 威尼斯镰刀菌 | 40 g·L-1葡萄糖 | 1.91 g·L-1 | 5 L发酵罐 | 路径构建(在基因组上整合了RUBY,包含CYP76AD1、DODA、葡萄糖基转移酶基因) | [ | |
| 马铃薯 | / | 0.5 mg·g-1 | / | 路径构建(利用器官特异性启动子,采用1个基因1个启动子、1个终止子的策略,将BvCYP76AD1、MjDODA、Mj5GT在马铃薯中表达) | [ | |
| 番茄 | / | 1.6 mg·g-1 | / | 路径构建(利用器官特异性启动子,采用1个基因1个启动子、1个终止子的策略,将BvCYP76AD1、MjDODA、Mj5GT在番茄中表达) | [ | |
| 家蚕 | / | 274 μg·mL-1 | / | 路径构建(敲除CYP76AD1与DODA的终止密码子,在其开放阅读框末端无缝插入P2A自裂解肽编码序列,把3个酶基因串成“CYP76AD1-P2A-DODA-P2A-糖基转移酶”单转录单元,实现单启动子同步驱动三基因表达) | [ | |
| 组氨酸-甜菜黄素 | 大肠杆菌 | 5 g·L-1葡萄糖 | 445.84 mg·L-1 | 摇瓶 | 路径构建(通过引入MjDODA、HpaBC实现了甜菜醛氨酸的生成),外源添加组氨酸获得了组氨酸-甜菜黄素 | [ |
| 大肠杆菌 | 15 g·L-1葡萄糖 | 287.69 mg·L-1 | 摇瓶 | 路径构建(在高产酪氨酸菌株中异源表达HpaBC、MjDODA生产甜菜醛氨酸,与高产组氨酸菌株共培养) | [ | |
| 多巴黄质 | 大肠杆菌 | 30 g·L-1葡萄糖 | 22.87 g·L-1 | 5 L发酵罐 | 酶改造(通过定向进化左旋多巴4,5-双加氧酶),路径重构(连接阻断3莽草酸合成左旋多巴的途径) | [ |
| 丙二酰-甜菜苷 | 解脂耶氏酵母 | 20 g·L-1葡萄糖 | 1.95 g·L-1 | 250 mL发酵罐 | 路径构建(挖掘火龙果和鸡冠花酰基转移酶,筛选鉴定后在高产甜菜苷的解脂耶氏酵母表达) | [ |
| 苋菜红素 | 酿酒酵母 | 20 g·L-1葡萄糖 | 10.2 mg·L-1 | 摇瓶 | 路径构建(在高产甜菜苷的酵母中共表达UDP-葡萄糖脱氢酶AtUGD1和葡糖醛酸转移酶GlcATs) | [ |
| 解脂耶氏酵母 | 20 g·L-1葡萄糖 | 2.97 g·L-1 | 250 mL发酵罐 | 路径构建(共表达UDP-葡萄糖脱氢酶AtUGD1和葡糖醛酸转移酶GlcATs) | [ |
Table 1 Production of biosynthetic betalains and strategies for optimizing associated pathways
| 类别 | 底盘微生物 | 碳源 | 产量 | 发酵方式 | 路径构建与优化策略 | 参考文献 |
|---|---|---|---|---|---|---|
| 甜菜苷 | 酿酒酵母 | 葡萄糖 | 17 mg·L-1 | 摇瓶 | 路径构建(外源引入BvCYP76AD1W13L MjDODA和Mj-cDOPA5GT) | [ |
| 酿酒酵母 | 20 g·L-1葡萄糖 | 30.8 mg·L-1 | 摇瓶 | 路径构建(运用组合工程构建酪氨酸羟化酶和多巴双加氧酶文库,筛选最佳组合,引入葡萄糖基转移酶变体) | [ | |
| 酿酒酵母 | 10 g·L-1蔗糖 | 134.1 mg·L-1 | 摇瓶 | 酶改造(通过设计CYP76AD1增加酶活性),路径重构(加强L-酪氨酸合成途径)和优化发酵条件 | [ | |
| 解脂耶氏酵母 | 20 g·L-1葡萄糖 | 1.27 g·L-1 | 5 L发酵罐 | 路径构建(引入来自七索藤的酪氨酸羟化酶EvTYH、来自紫茉莉的多巴双加氧酶MjDODA和来自甜菜的蔗糖糖基转移酶BvSGT2)并优化发酵条件 | [ | |
| 解脂耶氏酵母 | 40 g·L-1葡萄糖 | 1.34 g·L-1 | 250 mL发酵罐 | 路径构建(组合表达TyH、DODA、GT酶基因),路径重构(增加路径拷贝数;引入酪氨酸、UDP-葡萄糖合成基因与转运蛋白;阻断副产物黑色素合成,敲除4-羟基苯丙酮酸双加氧酶基因,敲除3个β葡萄糖苷酶) | [ | |
| 威尼斯镰刀菌 | 40 g·L-1葡萄糖 | 1.91 g·L-1 | 5 L发酵罐 | 路径构建(在基因组上整合了RUBY,包含CYP76AD1、DODA、葡萄糖基转移酶基因) | [ | |
| 马铃薯 | / | 0.5 mg·g-1 | / | 路径构建(利用器官特异性启动子,采用1个基因1个启动子、1个终止子的策略,将BvCYP76AD1、MjDODA、Mj5GT在马铃薯中表达) | [ | |
| 番茄 | / | 1.6 mg·g-1 | / | 路径构建(利用器官特异性启动子,采用1个基因1个启动子、1个终止子的策略,将BvCYP76AD1、MjDODA、Mj5GT在番茄中表达) | [ | |
| 家蚕 | / | 274 μg·mL-1 | / | 路径构建(敲除CYP76AD1与DODA的终止密码子,在其开放阅读框末端无缝插入P2A自裂解肽编码序列,把3个酶基因串成“CYP76AD1-P2A-DODA-P2A-糖基转移酶”单转录单元,实现单启动子同步驱动三基因表达) | [ | |
| 组氨酸-甜菜黄素 | 大肠杆菌 | 5 g·L-1葡萄糖 | 445.84 mg·L-1 | 摇瓶 | 路径构建(通过引入MjDODA、HpaBC实现了甜菜醛氨酸的生成),外源添加组氨酸获得了组氨酸-甜菜黄素 | [ |
| 大肠杆菌 | 15 g·L-1葡萄糖 | 287.69 mg·L-1 | 摇瓶 | 路径构建(在高产酪氨酸菌株中异源表达HpaBC、MjDODA生产甜菜醛氨酸,与高产组氨酸菌株共培养) | [ | |
| 多巴黄质 | 大肠杆菌 | 30 g·L-1葡萄糖 | 22.87 g·L-1 | 5 L发酵罐 | 酶改造(通过定向进化左旋多巴4,5-双加氧酶),路径重构(连接阻断3莽草酸合成左旋多巴的途径) | [ |
| 丙二酰-甜菜苷 | 解脂耶氏酵母 | 20 g·L-1葡萄糖 | 1.95 g·L-1 | 250 mL发酵罐 | 路径构建(挖掘火龙果和鸡冠花酰基转移酶,筛选鉴定后在高产甜菜苷的解脂耶氏酵母表达) | [ |
| 苋菜红素 | 酿酒酵母 | 20 g·L-1葡萄糖 | 10.2 mg·L-1 | 摇瓶 | 路径构建(在高产甜菜苷的酵母中共表达UDP-葡萄糖脱氢酶AtUGD1和葡糖醛酸转移酶GlcATs) | [ |
| 解脂耶氏酵母 | 20 g·L-1葡萄糖 | 2.97 g·L-1 | 250 mL发酵罐 | 路径构建(共表达UDP-葡萄糖脱氢酶AtUGD1和葡糖醛酸转移酶GlcATs) | [ |
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