Genome duplication in a long-term multicellularity evolution experiment

被引:0
|
作者
Kai Tong [1 ]
Sayantan Datta [2 ]
Vivian Cheng [3 ]
Daniella J. Haas [4 ]
Saranya Gourisetti [1 ]
Harley L. Yopp [2 ]
Thomas C. Day [1 ]
Dung T. Lac [5 ]
Ahmad S. Khalil [1 ]
Peter L. Conlin [6 ]
G. Ozan Bozdag [1 ]
William C. Ratcliff [1 ]
机构
[1] Georgia Institute of Technology,School of Biological Sciences
[2] Georgia Institute of Technology,Interdisciplinary Graduate Program in Quantitative Biosciences
[3] Boston University,Biological Design Center
[4] Boston University,Department of Biomedical Engineering
[5] University of Illinois Urbana-Champaign,School of Integrative Biology
[6] Mayo Clinic Alix School of Medicine,School of Physics
[7] Georgia Institute of Technology,Department of Biological Sciences
[8] University of Southern California,Wyss Institute for Biologically Inspired Engineering
[9] Harvard University,undefined
关键词
D O I
10.1038/s41586-025-08689-6
中图分类号
学科分类号
摘要
Whole-genome duplication (WGD) is widespread across eukaryotes and can promote adaptive evolution1, 2, 3–4. However, given the instability of newly formed polyploid genomes5, 6–7, understanding how WGDs arise in a population, persist, and underpin adaptations remains a challenge. Here, using our ongoing Multicellularity Long Term Evolution Experiment (MuLTEE)8, we show that diploid snowflake yeast (Saccharomyces cerevisiae) under selection for larger multicellular size rapidly evolve to be tetraploid. From their origin within the first 50 days of the experiment, tetraploids persisted for the next 950 days (nearly 5,000 generations, the current leading edge of our experiment) in 10 replicate populations, despite being genomically unstable. Using synthetic reconstruction, biophysical modelling and counter-selection, we found that tetraploidy evolved because it confers immediate fitness benefits under this selection, by producing larger, longer cells that yield larger clusters. The same selective benefit also maintained tetraploidy over long evolutionary timescales, inhibiting the reversion to diploidy that is typically seen in laboratory evolution experiments. Once established, tetraploidy facilitated novel genetic routes for adaptation, having a key role in the evolution of macroscopic multicellular size via the origin of evolutionarily conserved aneuploidy. These results provide unique empirical insights into the evolutionary dynamics and impacts of WGD, showing how it can initially arise due to its immediate adaptive benefits, be maintained by selection and fuel long-term innovations by creating additional dimensions of heritable genetic variation.
引用
收藏
页码:691 / 699
页数:8
相关论文
共 50 条
  • [41] Long-term rift evolution
    F. U. Bauer
    D. Koehn
    U. A. Glasmacher
    International Journal of Earth Sciences, 2010, 99 : 1483 - 1485
  • [42] Long-term evolution of a collapsar
    Fujimoto, Shin-Ichirou
    Kotake, Kei
    Yamada, Shoichi
    Hashimoto, Masa-Aki
    NUOVO CIMENTO DELLA SOCIETA ITALIANA DI FISICA B-BASIC TOPICS IN PHYSICS, 2006, 121 (12): : 1479 - 1480
  • [43] LONG-TERM EVOLUTION OF BULIMIA
    FICHTER, MM
    QUADFLIEG, N
    RIEF, W
    VERHALTENSTHERAPIE, 1995, 5 : A51 - A52
  • [44] Long-term evolution of cystinosis
    Ghio, L
    Marchesi, F
    Colombo, D
    Edefonti, A
    RIVISTA ITALIANA DI PEDIATRIA-ITALIAN JOURNAL OF PEDIATRICS, 1995, 21 : 75 - 79
  • [45] Long-term rift evolution
    Bauer, F. U.
    Koehn, D.
    Glasmacher, U. A.
    INTERNATIONAL JOURNAL OF EARTH SCIENCES, 2010, 99 (07) : 1483 - 1485
  • [46] Idiosyncratic Purifying Selection on Metabolic Enzymes in the Long-Term Evolution Experiment with Escherichia coli
    Maddamsetti, Rohan
    GENOME BIOLOGY AND EVOLUTION, 2022, 14 (12):
  • [47] Changes in Intrinsic Antibiotic Susceptibility during a Long-Term Evolution Experiment with Escherichia coli
    Lamrabet, Otmane
    Martin, Mikael
    Lenski, Richard E.
    Schneider, Dominique
    MBIO, 2019, 10 (02):
  • [48] Selection Maintains Protein Interactome Resilience in the Long-Term Evolution Experiment with Escherichia coli
    Maddamsetti, Rohan
    GENOME BIOLOGY AND EVOLUTION, 2021, 13 (06):
  • [49] Genome adaptive evolution of Lactobacillus casei under long-term antibiotic selection pressures
    Wang, Jicheng
    Dong, Xiao
    Shao, Yuyu
    Guo, Huiling
    Pan, Lin
    Hui, Wenyan
    Kwok, Lai-Yu
    Zhang, Heping
    Zhang, Wenyi
    BMC GENOMICS, 2017, 18
  • [50] Genome adaptive evolution of Lactobacillus casei under long-term antibiotic selection pressures
    Jicheng Wang
    Xiao Dong
    Yuyu Shao
    Huiling Guo
    Lin Pan
    Wenyan Hui
    Lai-Yu Kwok
    Heping Zhang
    Wenyi Zhang
    BMC Genomics, 18