生物
基因组
基因复制
谱系(遗传)
进化生物学
基因
系统发育学
系统发育树
代谢途径
木质素
钥匙(锁)
适应性进化
串联外显子复制
最近的共同祖先
遗传学
禾本科
基因组学
生物多样性
短柄草属
淀粉
基因家族
祖先
混合的
分子进化
裂解酶
叶绿体
植物
水平基因转移
光合作用
生态学
作者
Yuri Takeda,Bethany M. Moore,Samuel Holden,Jae S. Morris,Sontosh K. Deb,Carly Sanders,Jorge El‐Azaz,Matthew D. Barrett,David H. Lorence,Marcos V. V. de Oliveira,Wynne Havranek,Jane Grimwood,Melissa Williams,Lori Beth Boston,Jerry Jenkins,Christopher Plott,Shengqiang Shu,Kerrie Barry,David Goodstein,Jeremy Schmutz
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-08-20
卷期号:393 (6813): eadv0443-eadv0443
标识
DOI:10.1126/science.adv0443
摘要
The grass family (Poaceae) has immense economic and ecological importance and exhibits distinctive metabolic traits, including dual starch and lignin biosynthetic pathways. We sequenced the genomes of Pharus , Joinvillea , Ecdeiocolea , and Typha species to investigate when and how these metabolic innovations evolved relative to the origin of the grass family. The rho whole-genome duplication (ρWGD) within the lineage that led to the last common ancestor of all grasses contributed to the gene family expansions underlying cytosolic starch biosynthesis, whereas an earlier tandem duplication of phenylalanine ammonia lyase ( PAL ) gave rise to phenylalanine/tyrosine ammonia lyase ( PTAL ), which is responsible for the dual lignin biosynthesis. Integrated biochemical, functional, and structural studies, guided by phylogenomic analyses, further revealed the molecular basis of key metabolic innovations predating the evolution of grasses.
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