Current Biotechnology ›› 2026, Vol. 16 ›› Issue (3): 496-509.DOI: 10.19586/j.2095-2341.2026.0039
• Special Forum on Microbial Cell Factory • Previous Articles Next Articles
Yuqing SUN(
), Lige TONG(
), Wenxia FANG(
)
Received:2026-02-14
Accepted:2026-04-03
Online:2026-05-25
Published:2026-07-14
Contact:
Lige TONG,Wenxia FANG
CLC Number:
Yuqing SUN, Lige TONG, Wenxia FANG. Microbial Cell Factory Mediated Multi-enzyme Cascades Reactions Empower High-value Utilization of Biomass[J]. Current Biotechnology, 2026, 16(3): 496-509.
| 宿主 | 底物摄取能力 | 能量与辅因子代谢 | 内源代谢网络复杂度 | 遗传操作便利性 | 应用 |
|---|---|---|---|---|---|
| 大肠杆菌 | 对疏水性底物的摄取存在膜通透性限制;高浓度底物可能产生抑制或毒性,影响细胞活性与催化效率 | NAD(P)H再生能力强;可通过工程改造优化辅因子偏好性 | 代谢网络清晰,竞争途径多 | 遗传工具成熟(基因编辑、重组系统);转化效率高;多质粒系统稳定 | 甜味罗汉果苷[ |
| 酿酒酵母 | 能通过工程化提升前体供应;对疏水性底物的摄取与存储能力可通过脂滴工程增强 | 具有线粒体呼吸链;ATP与NADH再生效率高 | 代谢网络较复杂;存在碳流竞争 | 拥有丰富的遗传工具(启动子库、融合标签、基因编辑等);支持多层次、多信号的代谢工程策略 | 叶黄素[ |
| 黑曲霉 | 碳源利用能力极强 | 需氧发酵,需控制溶氧;代谢网络完整,支持高密度培养和酶的高效合成 | 代谢网络复杂但可塑性强;内源酶系丰富:自带多种水解酶,可简化外源酶系构建 | 遗传工具成熟,启动子、信号肽可工程化;适合构建高效分泌表达系统 | N-乙酰-β-D-氨基葡萄糖[ |
| 枯草芽孢杆菌 | 对于大分子底物,需依赖分泌的酶进行降解;透性化处理可增强胞内酶与底物的接触 | 辅因子代谢灵活,适应不同氧条件 | 代谢网络较简单,竞争途径少;适合次级代谢产物合成 | 可实现基因敲除、整合、多拷贝表达;质粒转化、基因组编辑效率高;易构建无抗生素标记的工程菌 | 海藻糖[ |
Table 1 Comparison of different host cells for in vivo cascade reactions
| 宿主 | 底物摄取能力 | 能量与辅因子代谢 | 内源代谢网络复杂度 | 遗传操作便利性 | 应用 |
|---|---|---|---|---|---|
| 大肠杆菌 | 对疏水性底物的摄取存在膜通透性限制;高浓度底物可能产生抑制或毒性,影响细胞活性与催化效率 | NAD(P)H再生能力强;可通过工程改造优化辅因子偏好性 | 代谢网络清晰,竞争途径多 | 遗传工具成熟(基因编辑、重组系统);转化效率高;多质粒系统稳定 | 甜味罗汉果苷[ |
| 酿酒酵母 | 能通过工程化提升前体供应;对疏水性底物的摄取与存储能力可通过脂滴工程增强 | 具有线粒体呼吸链;ATP与NADH再生效率高 | 代谢网络较复杂;存在碳流竞争 | 拥有丰富的遗传工具(启动子库、融合标签、基因编辑等);支持多层次、多信号的代谢工程策略 | 叶黄素[ |
| 黑曲霉 | 碳源利用能力极强 | 需氧发酵,需控制溶氧;代谢网络完整,支持高密度培养和酶的高效合成 | 代谢网络复杂但可塑性强;内源酶系丰富:自带多种水解酶,可简化外源酶系构建 | 遗传工具成熟,启动子、信号肽可工程化;适合构建高效分泌表达系统 | N-乙酰-β-D-氨基葡萄糖[ |
| 枯草芽孢杆菌 | 对于大分子底物,需依赖分泌的酶进行降解;透性化处理可增强胞内酶与底物的接触 | 辅因子代谢灵活,适应不同氧条件 | 代谢网络较简单,竞争途径少;适合次级代谢产物合成 | 可实现基因敲除、整合、多拷贝表达;质粒转化、基因组编辑效率高;易构建无抗生素标记的工程菌 | 海藻糖[ |
| 类型 | Linker序列 | 连接酶 | 表达宿主 | 产生结果 | 文献 |
|---|---|---|---|---|---|
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| IRES | (EMCV) IRES | Rtelo2-IRES-RtKCR;RtHCD-IRES-RtECR | 产油酵母 | 简化多基因共表达的工程化流程;提高产量 | [ |
Table 2 Structure and functional characteristics of different types of Linkers, IRES and 2A peptides
| 类型 | Linker序列 | 连接酶 | 表达宿主 | 产生结果 | 文献 |
|---|---|---|---|---|---|
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| [ | |||||
| IRES | (EMCV) IRES | Rtelo2-IRES-RtKCR;RtHCD-IRES-RtECR | 产油酵母 | 简化多基因共表达的工程化流程;提高产量 | [ |
| 支架蛋白 | 位置 | 功能 | 应用 | 文献 |
|---|---|---|---|---|
| SpyTag/SpyCatcher | 体内 | 提高酶的稳定性和催化活性 | 分子内自环化 | [ |
| 提高催化效率 | 合成手性醇 | [ | ||
| 体外 | 具有重复使用性 | 实现姜黄素糖苷的高效生物合成及UDP-葡萄糖的原位再生 | [ | |
| 增加油脂合成 | 催化天然甘油三酯向烃类生物燃料的转化 | [ | ||
| 固定化酶 | 形成γPFD-SpyCatcher自组装水凝胶支架 | [ | ||
| Snoop-SnoopCatcher | 体外 | 实现长度可调的精确交联,赋予几何可编程性 | 降解聚对苯二甲酸乙二醇酯(polyethylene terephthalate,PET) | [ |
| 体内 | 连接不同蛋白 | 构建模块化外膜囊泡抗原展示平台 | [ | |
| Cohesin-dockerin | 体外 | 提高底物广谱性和水解活性 | 实现了对红藻来源的卟啉多糖的高效降解 | [ |
| 增强结合亲和力 | 黄色瘤胃球菌(Ruminococcus flavefaciens)通过单结合模式的Coh‑Doc相互作用组装纤维素体 | [ | ||
| SH3-PDZ-GBD | 体内 | 提高偶联效率和活性 | 合成大豆苷元;优化靛蓝素合成途径的酶空间组织 将SH3、PDZ、GBD这3个结构域作为完整组合支架进行应用的文献相对较少,更多聚焦于对其各组成结构域进行独立开发 | [ |
| 缓解中间产物抑制 | [ |
Table 3 Applications of different multi-enzyme complexes for enzyme cascade
| 支架蛋白 | 位置 | 功能 | 应用 | 文献 |
|---|---|---|---|---|
| SpyTag/SpyCatcher | 体内 | 提高酶的稳定性和催化活性 | 分子内自环化 | [ |
| 提高催化效率 | 合成手性醇 | [ | ||
| 体外 | 具有重复使用性 | 实现姜黄素糖苷的高效生物合成及UDP-葡萄糖的原位再生 | [ | |
| 增加油脂合成 | 催化天然甘油三酯向烃类生物燃料的转化 | [ | ||
| 固定化酶 | 形成γPFD-SpyCatcher自组装水凝胶支架 | [ | ||
| Snoop-SnoopCatcher | 体外 | 实现长度可调的精确交联,赋予几何可编程性 | 降解聚对苯二甲酸乙二醇酯(polyethylene terephthalate,PET) | [ |
| 体内 | 连接不同蛋白 | 构建模块化外膜囊泡抗原展示平台 | [ | |
| Cohesin-dockerin | 体外 | 提高底物广谱性和水解活性 | 实现了对红藻来源的卟啉多糖的高效降解 | [ |
| 增强结合亲和力 | 黄色瘤胃球菌(Ruminococcus flavefaciens)通过单结合模式的Coh‑Doc相互作用组装纤维素体 | [ | ||
| SH3-PDZ-GBD | 体内 | 提高偶联效率和活性 | 合成大豆苷元;优化靛蓝素合成途径的酶空间组织 将SH3、PDZ、GBD这3个结构域作为完整组合支架进行应用的文献相对较少,更多聚焦于对其各组成结构域进行独立开发 | [ |
| 缓解中间产物抑制 | [ |
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