Evolution of salinity tolerance from transcriptome to physiological system

被引:6
|
作者
Scott, Graham R. [1 ]
Brix, Kevin V. [1 ]
机构
[1] McMaster Univ, Dept Biol, Hamilton, ON L8S 4K1, Canada
关键词
environmental adaptation; euryhalinity; evolutionary physiology; fish; osmoregulation; transcriptomics; FUNDULUS-HETEROCLITUS; FRESH-WATER; DIVERGENCE; PLASTICITY; MECHANISMS;
D O I
10.1111/mec.12372
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The relationship between microevolution and macroevolution is a topic of fundamental importance in evolutionary biology. The increasing accessibility of genomic tools is making the hunt for genes that underlie evolutionary divergence more tractable and, when combined with physiological approaches, provides exceptional power to elucidate the causal mechanisms of the relationship. In this issue of Molecular Ecology, Whitehead etal. (2013) employ this strategy to show that common physiological and genomic mechanisms lead to divergence in salinity tolerance across micro- and macroevolutionary timescales. They compare two killifish species from the genus Fundulus, F.majalis, which inhabits primarily marine and brackish environments and represents the ancestral state of the genus, and F.heteroclitus, which has derived an osmotic niche that expands into freshwater. Corresponding to the differences in osmotic niche, the species differ strikingly in how the structure of the ion-transporting epithelium and the transcriptome of the gills respond to osmotic challenge. These inter-specific differences were similar to but more pronounced than the differences associated with the more subtle intra-specific variation in osmotic niche within each species. It appears that a progression of the same functional adjustments first allowed expansion of the osmotic niche of F.heteroclitus into freshwater and then further expanded the niche of select F.heteroclitus populations towards more dilute freshwater environments. The work of Whitehead etal. therefore emphasizes how the mechanisms of adaptive divergence between populations can be expanded over time to produce the more complex differences that can exist between species.
引用
收藏
页码:3656 / 3658
页数:3
相关论文
共 50 条
  • [1] Physiological markers for salinity tolerance in plants
    Läuchli, A
    PLANT BIOTECHNOLOGY AND IN VITRO BIOLOGY IN THE 21ST CENTURY, 1999, 36 : 517 - 520
  • [2] The physiological plasticity of salinity tolerance in Fundulus species
    Galvez, Fernando
    Whitehead, Andrew
    Zhang, Shujun
    FASEB JOURNAL, 2009, 23
  • [3] USE OF PHYSIOLOGICAL TRAITS IN BREEDING FOR SALINITY TOLERANCE
    JONES, RGW
    GORHAM, J
    DROUGHT RESISTANCE IN CEREALS, 1989, : 95 - 106
  • [4] Comparative physiological analysis of salinity tolerance in rice
    Ueda, Akihiro
    Yahagi, Hiroyuki
    Fujikawa, Yukichi
    Nagaoka, Toshinori
    Esaka, Muneharu
    Calcano, Manuel
    Gonzalez, Milton Martinez
    Hernandez Martich, Jose David
    Saneoka, Hirofumi
    SOIL SCIENCE AND PLANT NUTRITION, 2013, 59 (06) : 896 - 903
  • [5] Effects of salinity on baldcypress seedlings: Physiological responses and their relation to salinity tolerance
    James A. Allen
    Jim L. Chambers
    S. Reza Pezeshki
    Wetlands, 1997, 17 : 310 - 320
  • [6] Effects of salinity on baldcypress seedlings: Physiological responses and their relation to salinity tolerance
    Allen, JA
    Chambers, JL
    Pezeshki, SR
    WETLANDS, 1997, 17 (02) : 310 - 320
  • [7] Salinity Stress Tolerance in Potato Cultivars: Evidence from Physiological and Biochemical Traits
    Sanwal, Satish Kumar
    Kumar, Parveen
    Kesh, Hari
    Gupta, Vijai Kishor
    Kumar, Arvind
    Kumar, Ashwani
    Meena, Babu Lal
    Colla, Giuseppe
    Cardarelli, Mariateresa
    Kumar, Pradeep
    PLANTS-BASEL, 2022, 11 (14):
  • [8] Genome-wide transcriptome analysis and physiological variation modulates gene regulatory networks acclimating salinity tolerance in chickpea
    Kumar, Neeraj
    Soren, K. R.
    Bharadwaj, C.
    Priya, Sneha P. R.
    Shrivastava, Abhishek K.
    Pal, Madan
    Roorkiwal, Manish
    Kumar, Kuldeep
    Patil, B. S.
    Soni, Anjali
    Nimmy, M. S.
    Siddique, Kadambot H. M.
    Varshney, Rajeev K.
    ENVIRONMENTAL AND EXPERIMENTAL BOTANY, 2021, 187
  • [9] Physiological and Proteomic Analysis of Salinity Tolerance in Puccinellia tenuiflora
    Yu, Juanjuan
    Chen, Sixue
    Zhao, Qi
    Wang, Tai
    Yang, Chuanping
    Diaz, Carolyn
    Sun, Guorong
    Dai, Shaojun
    JOURNAL OF PROTEOME RESEARCH, 2011, 10 (09) : 3852 - 3870
  • [10] Structural, physiological, and biochemical aspects of salinity tolerance of halophytes
    O. A. Rozentsvet
    V. N. Nesterov
    E. S. Bogdanova
    Russian Journal of Plant Physiology, 2017, 64 : 464 - 477