Showing 121 - 140 results of 2,478 for search '"higher plant"', query time: 0.33s Refine Results
  1. 121

    Cross Regulatory Network Between Circadian Clock and Leaf Senescence Is Emerging in Higher Plants by Yan Wang, Yan Wang, Yuanyuan Zhang, Lei Wang, Lei Wang

    Published 2018-05-01
    “…Circadian clock and senescence have been shown to tightly intertwined with each other in numerous eukaryotes, but the regulation of circadian oscillator on triggering leaf senescence, and vice versa, remains largely unknown in higher plants. Very recently, circadian system and leaf senescence were found to be highly interconnected in higher plants. …”
    Get full text
    Article
  2. 122
  3. 123

    A new and unified nomenclature for male fertility restorer (RF) proteins in higher plants. by Simeon O Kotchoni, Jose C Jimenez-Lopez, Emma W Gachomo, Manfredo J Seufferheld

    Published 2010-12-01
    “…The male fertility restorer (RF) proteins belong to extended protein families associated with the cytoplasmic male sterility in higher plants. Up till now, there is no devised nomenclature for naming the RF proteins. …”
    Get full text
    Article
  4. 124

    Some remarks on the methods of assessing the population density of higher plants in cases of aggregated spatial structure by Anna Justyna Kwiatkowska, Ewa Symonides

    Published 2015-01-01
    “…This paper presents a comparative analysis of the methods used for. assessing the density of higher plants. The analysis was carried out on natural population (Vaccinium myrtillus L.) characterized by aggregated spatial structure. …”
    Get full text
    Article
  5. 125
  6. 126

    Possible Roles of Membrane Trafficking Components for Lipid Droplet Dynamics in Higher Plants and Green Algae by Shuxian Huang, Liwen Jiang, Liwen Jiang, Xiaohong Zhuang

    Published 2019-02-01
    “…In this review, we will summarize recent advances in regard to LD-related membrane trafficking proteins and discuss future investigations in higher plants and green algae.…”
    Get full text
    Article
  7. 127

    Is Nitrogen a Key Determinant of Water Transport and Photosynthesis in Higher Plants Upon Drought Stress? by Lei Ding, Lei Ding, Zhifeng Lu, Limin Gao, Shiwei Guo, Qirong Shen

    Published 2018-08-01
    “…It also discusses the cross talk between N, water transport, and drought stress in higher plants.…”
    Get full text
    Article
  8. 128
  9. 129
  10. 130
  11. 131

    Protein interactions at the higher plant nuclear envelope: evidence for a Linker of Nucleoskeleton and Cytoskeleton complex. by David Edgar Evans, Vidya ePawar, Sarah Jane Smith, Katja eGraumann

    Published 2014-05-01
    “…Following the description of SAD1/UNC84 (SUN) domain proteins in higher plants, evidence has rapidly increased that plants contain a functional Linker of Nucleoskeleton and Cytoskeleton (LINC) complex bridging the nuclear envelope (NE). …”
    Get full text
    Article
  12. 132
  13. 133
  14. 134
  15. 135

    Higher-Plant Aquatic and Coastal Vegetation of the Northern Caspian: Volga Foredelta, Kalmyk and Kazakh Coasts by Valentine V. Gromov

    Published 2010-09-01
    “…The formation of vegetation of higher plant aquatic and coastal communities in the Volga foredelta and Northern Caspian in fresh and brackish waters during period of Caspian level rising is analyzed. …”
    Get full text
    Article
  16. 136

    The red fluorescent protein eqFP611: application in subcellular localization studies in higher plants by Binder Stefan, Forner Joachim

    Published 2007-06-01
    “…To test the suitability of the red fluorescent protein eqFP611 as an alternative in higher plants, the behavior of this protein was analyzed in terms of expression, subcellular targeting and compatibility with GFP in tobacco.…”
    Get full text
    Article
  17. 137
  18. 138
  19. 139

    Delineation of the Crucial Evolutionary Amino Acid Sites in Trehalose-6-Phosphate Synthase From Higher Plants by Rong Wang, Congfen He, Kun Dong, Xin Zhao, Yaxuan Li, Yingkao Hu

    Published 2020-03-01
    “…First, we identified 150 TPS genes from 13 higher plant species. Phylogenetic analysis placed these TPS proteins into 2 clades: clades A and B, of which clade B could be further divided into 4 subclades (B1-B4). …”
    Get full text
    Article
  20. 140