Chen Xiaoe, Yang Wei, Zhang Liqin, Wu Xianmiao, Cheng Tian, Li Guanglin
College of Life Science, Shaanxi Normal University, Xi'an 710119, China.
College of Life Science, Shaanxi Normal University, Xi'an 710119, China.
Comput Biol Chem. 2017 Oct;70:40-48. doi: 10.1016/j.compbiolchem.2017.05.010. Epub 2017 Jul 6.
Terpene synthases (TPSs) are vital for the biosynthesis of active terpenoids, which have important physiological, ecological and medicinal value. Although terpenoids have been reported in pineapple (Ananas comosus), genome-wide investigations of the TPS genes responsible for pineapple terpenoid synthesis are still lacking. By integrating pineapple genome and proteome data, twenty-one putative terpene synthase genes were found in pineapple and divided into five subfamilies. Tandem duplication is the cause of TPS gene family duplication. Furthermore, functional differentiation between each TPS subfamily may have occurred for several reasons. Sixty-two key amino acid sites were identified as being type-II functionally divergence between TPS-a and TPS-c subfamily. Finally, coevolution analysis indicated that multiple amino acid residues are involved in coevolutionary processes. In addition, the enzyme activity of two TPSs were tested. This genome-wide identification, functional and evolutionary analysis of pineapple TPS genes provide a new insight into understanding the roles of TPS family and lay the basis for further characterizing the function and evolution of TPS gene family.
萜类合酶(TPSs)对于活性萜类化合物的生物合成至关重要,这些萜类化合物具有重要的生理、生态和药用价值。尽管菠萝(凤梨)中已报道有萜类化合物,但仍缺乏对负责菠萝萜类合成的TPS基因进行全基因组研究。通过整合菠萝基因组和蛋白质组数据,在菠萝中发现了21个推定的萜类合酶基因,并将其分为五个亚家族。串联重复是TPS基因家族复制的原因。此外,每个TPS亚家族之间的功能分化可能由于多种原因而发生。62个关键氨基酸位点被鉴定为TPS-a和TPS-c亚家族之间的II型功能分化。最后,共进化分析表明多个氨基酸残基参与了共进化过程。此外,还测试了两种TPS的酶活性。这种对菠萝TPS基因的全基因组鉴定、功能和进化分析为理解TPS家族的作用提供了新的见解,并为进一步表征TPS基因家族的功能和进化奠定了基础。