南京林业大学学报(自然科学版) ›› 2021, Vol. 45 ›› Issue (3): 233-244.doi: 10.12302/j.issn.1000-2006.202004027
收稿日期:
2020-04-15
修回日期:
2020-05-11
出版日期:
2021-05-30
发布日期:
2021-05-31
通讯作者:
季孔庶
基金资助:
ZHU Peihuang(), CHEN Yu, JI Kongshu*()
Received:
2020-04-15
Revised:
2020-05-11
Online:
2021-05-30
Published:
2021-05-31
Contact:
JI Kongshu
摘要:
萜类化合物是松科(Pinaceae)植物中重要的代谢物,它们与松科植物生长发育、信息传递、气候适应和化学防御等关系密切,在植物生理和生态等方面具有重要功能。松科植物萜类化合物还广泛应用在制药、生物燃料以及合成化学等工业领域,具有重要的经济价值。松科植物通过甲羟戊酸途径和甲基赤藓糖磷酸途径合成所有萜类物质合成所必需的5碳前体,并在异戊烯基转移酶家族、萜类合成酶家族作用下合成单萜、倍半萜和二萜等不同长度碳链的萜类分子骨架,并进一步在细胞色素P450酶家族的作用下发生甲基化、羟基化、过氧化、糖基化等酶促反应形成具有结构极为丰富的萜类化合物。和其他次生代谢过程类似,多种酶及其基因在萜烯化合物形成过程中起到了至关重要的作用,同时,萜类化合物结构多样性的形成也主要依赖于萜类合成酶及其基因。植物中已经发现了大量的萜类合成酶,由于大量植物基因组、转录组等组学数据的公布,不断有新的萜类合成酶被报道。笔者介绍了植物萜类化合物前体的合成途径及其关键酶基因、植物萜类合成酶的结构和类型,着重阐述松科植物萜类合成酶结构、功能以及相应基因家族鉴定和系统分类的研究进展,并针对松科植物萜类合成酶及其基因研究领域存在的研究树种偏少、松科植物萜烯类代谢可能存在的特异代谢路径重视程度不够、适用于针叶树种相关基因的功能研究平台搭建欠缺、多基因网络调控松科植物萜烯类合成机制研究未得到系统开展、产脂和抗逆相关的松科植物关键基因未得到挖掘与利用等相关问题提出了建议,以期为松科植物萜类生物合成机制解析及松科植物遗传改良提供参考。
中图分类号:
朱沛煌,陈妤,季孔庶. 松科植物萜类合成酶及其基因家族研究进展[J]. 南京林业大学学报(自然科学版), 2021, 45(3): 233-244.
ZHU Peihuang, CHEN Yu, JI Kongshu. A review of terpene synthases and genes in Pinaceae[J].Journal of Nanjing Forestry University (Natural Science Edition), 2021, 45(3): 233-244.DOI: 10.12302/j.issn.1000-2006.202004027.
表1
植物萜类合成酶基因亚家族的成员分布、结构与功能(根据文献[16, 61]整理)"
亚家族 subfamily | 组 group | 分布 distribution | 结构 structure | 功能 function |
---|---|---|---|---|
TPS-a | TPS-a1 | 双子叶植物 | Class Ⅰ(β、α) | 倍半萜合成酶 |
TPS-a2 | 单子叶植物 | 倍半萜合成酶 | ||
TPS-b | 被子植物 | Class Ⅰ(β、α) | 单萜合成酶、异戊烯基转移酶 | |
TPS-c | 陆地植物 | Class Ⅱ(γ、β、α) | CPS/KS、CPS和其他二萜合成酶 | |
TPS-d | TPS-d1 | 裸子植物 | Class Ⅰ(β、α、γ、β、α)、 Class Ⅰ/Ⅱ(γ、β、α) | 单萜合成酶(主要)、倍半萜合成酶 |
TPS-d2 | 倍半萜合成酶 | |||
TPS-d3 | 二萜合成酶(主要)、倍半萜合成酶 | |||
TPS-e/f | 维管束植物 | Class Ⅰ(β、α、γ、β、α) | 单萜、倍半萜合成酶、KS与其他二萜合成酶 | |
TPS-g | 被子植物 | ClassI(β、α、γ、β、α) | 单萜、倍半萜和二萜合成酶 | |
TPS-h | 江南卷柏 | Class Ⅰ/Ⅱ(γ、β、α) | 二萜合成酶 |
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