Parallel Recruitment of Multiple Genes into C4 Photosynthesis

被引:56
|
作者
Christin, Pascal-Antoine [1 ]
Boxall, Susanna F. [2 ]
Gregory, Richard [2 ]
Edwards, Erika J. [3 ]
Hartwell, James [2 ]
Osborne, Colin P. [1 ]
机构
[1] Univ Sheffield, Dept Anim & Plant Sci, Sheffield S10 2TN, S Yorkshire, England
[2] Univ Liverpool, Inst Integrat Biol, Dept Plant Sci, Liverpool L69 3BX, Merseyside, England
[3] Brown Univ, Dept Ecol & Evolutionary Biol, Providence, RI 02912 USA
来源
GENOME BIOLOGY AND EVOLUTION | 2013年 / 5卷 / 11期
基金
英国生物技术与生命科学研究理事会;
关键词
complex traits; co-option; evolutionary novelty; gene families; phylogenomics; BUNDLE-SHEATH-CELLS; PHOSPHOENOLPYRUVATE CARBOXYKINASE; MALIC ENZYME; FUNCTIONAL DIVERSIFICATION; DIFFERENTIAL EXPRESSION; MOLECULAR EVOLUTION; CARBONIC-ANHYDRASE; SEQUENCE ALIGNMENT; GENOMIC ANALYSIS; ACID PATHWAY;
D O I
10.1093/gbe/evt168
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
During the diversification of living organisms, novel adaptive traits usually evolve through the co-option of preexisting genes. However, most enzymes are encoded by gene families, whose members vary in their expression and catalytic properties. Each may therefore differ in its suitability for recruitment into a novel function. In this work, we test for the presence of such a gene recruitment bias using the example of C-4 photosynthesis, a complex trait that evolved recurrently in flowering plants as a response to atmospheric CO2 depletion. We combined the analysis of complete nuclear genomes and high-throughput transcriptome data for three grass species that evolved the C-4 trait independently. For five of the seven enzymes analyzed, the same gene lineage was recruited across the independent C-4 origins, despite the existence of multiple copies. The analysis of a closely related C-3 grass confirmed that C-4 expression patterns were not present in the C-3 ancestors but were acquired during the evolutionary transition to C-4 photosynthesis. The significant bias in gene recruitment indicates that some genes are more suitable for a novel function, probably because the mutations they accumulated brought them closer to the characteristics required for the new function.
引用
收藏
页码:2174 / 2187
页数:14
相关论文
共 50 条
  • [21] Strategies for engineering C4 photosynthesis
    Leegood, Richard C.
    JOURNAL OF PLANT PHYSIOLOGY, 2013, 170 (04) : 378 - 388
  • [22] Photorespiration and the Evolution of C4 Photosynthesis
    Sage, Rowan F.
    Sage, Tammy L.
    Kocacinar, Ferit
    ANNUAL REVIEW OF PLANT BIOLOGY, VOL 63, 2012, 63 : 19 - 47
  • [23] Synthetic evolution of C4 photosynthesis
    Weber, Andreas P. M.
    FASEB JOURNAL, 2019, 33
  • [24] A smooth path to C4 photosynthesis
    Darren J. Burgess
    Nature Reviews Genetics, 2013, 14 (8) : 518 - 518
  • [25] C4 photosynthesis and hydraulics in grasses
    Zhou, Haoran
    Akcay, Erol
    Edwards, Erika J.
    Ho, Che-Ling
    Abdullahi, Adam
    Zheng, Yunpu
    Helliker, Brent R.
    NEW PHYTOLOGIST, 2025, 245 (04) : 1481 - 1495
  • [26] C4 PHOTOSYNTHESIS IN SMOOTH PIGWEED
    PATTERSON, DT
    WEED SCIENCE, 1976, 24 (01) : 127 - 130
  • [27] C4 photosynthesis: discovery and resolution
    Marshall D. Hatch
    Photosynthesis Research, 2002, 73 : 251 - 256
  • [28] METABOLITE TRANSPORT IN C4 PHOTOSYNTHESIS
    OSMOND, CB
    AUSTRALIAN JOURNAL OF BIOLOGICAL SCIENCES, 1971, 24 (01) : 159 - &
  • [29] Calcium and the control of C4 photosynthesis
    Vidal, Jean
    Pierre, Jean-Noel
    Gousset-Dupont, Aurelie
    Lebouteiller, Benedicte
    Meimoun, Patrice
    Monreal, Jose-Antonio
    Bourrellier, Anna Feria
    Garcia-Maurino, Sofia
    Echevarria, Cristina
    M S-MEDECINE SCIENCES, 2007, 23 (01): : 18 - 20
  • [30] Modeling the Evolution of C4 Photosynthesis
    Beer, Karlyn D.
    Orellana, Monica V.
    Baliga, Nitin S.
    CELL, 2013, 153 (07) : 1427 - 1429