Showing 41 - 60 results of 381 for search '"eukaryotic"', query time: 0.05s Refine Results
  1. 41
  2. 42
  3. 43

    Applications of Recombinant Dna Technology in Gastrointestinal Medicine and Hepatology: Basic Paradigms of Molecular Cell Biology. Part B: Eukaryotic Gene Transcription and Post-Transcripional Rna Processing by Gary E Wild, Patrizia Papalia, Mark J Ropeleski, Julio Faria, Alan BR Thomson

    Published 2000-01-01
    “…The transcription of DNA into RNA is the primary level at which gene expression is controlled in eukaryotic cells. Eukaryotic gene transcription  involves several different RNA polymerases that interact with a host of transcription factors to initiate transcription. …”
    Get full text
    Article
  4. 44
  5. 45
  6. 46

    Stably Integrated for Assessment of Invasion Kinetics by Kelly N. Flentie, Min Qi, Seth T. Gammon, Yasmin Razia, Felix Lui, Luciano Marpegan, Aashish Manglik, David Piwnica-Worms, Jeffrey S. McKinney

    Published 2008-09-01
    “…Invasion of specific eukaryotic cells is a key mechanism of Salmonella interactions with host tissues. …”
    Get full text
    Article
  7. 47

    Selected Mechanisms of Action of Bacteriophages in Bacterial Infections in Animals by Renata Urban-Chmiel, Ewelina Pyzik

    Published 2025-01-01
    “…For many years, bacteriophages were not believed to act on eukaryotic cells; however, recent studies have confirmed their ability to affect eukaryotic cells and interact with the host immune system. …”
    Get full text
    Article
  8. 48

    Illuminating the impact of N-terminal acetylation: from protein to physiology by Nina McTiernan, Ine Kjosås, Thomas Arnesen

    Published 2025-01-01
    “…Here, we review the eukaryotic N-terminal acetylation machinery: the enzymes involved and their substrate specificities. …”
    Get full text
    Article
  9. 49

    Sphingolipid and Ceramide Homeostasis: Potential Therapeutic Targets by Simon A. Young, John G. Mina, Paul W. Denny, Terry K. Smith

    Published 2012-01-01
    “…Sphingolipids are ubiquitous in eukaryotic cells where they have been attributed a plethora of functions from the formation of structural domains to polarized cellular trafficking and signal transduction. …”
    Get full text
    Article
  10. 50

    Protein Machineries Involved in the Attachment of Heme to Cytochrome c: Protein Structures and Molecular Mechanisms by Carlo Travaglini-Allocatelli

    Published 2013-01-01
    “…To accomplish this task, prokaryotic and eukaryotic cells have evolved distinctive protein machineries composed of different proteins. …”
    Get full text
    Article
  11. 51

    Crosstalk between the Intestinal Virome and Other Components of the Microbiota, and Its Effect on Intestinal Mucosal Response and Diseases by Njinju Asaba Clinton, Sodiq Ayobami Hameed, Eugene Kusi Agyei, Joy Chinwendu Jacob, Victor Oyewale Oyebanji, Cyril Ekabe Jabea

    Published 2022-01-01
    “…Nonetheless, the existing studies on the virome have largely been focused on the bacteriophages as these represent the main component of the virome with little information on endogenous retroviruses (ERVs) and eukaryotic viruses. In this review, we describe the gut virome, and its role in gut mucosal response and disease progression. …”
    Get full text
    Article
  12. 52

    Nuclear mRNA export by Chen Suli, Jiang Qingyi, Fan Jing, Cheng Hong

    Published 2024-09-01
    “…In eukaryotic cells, gene expression begins with transcription in the nucleus, followed by the maturation of messenger RNAs (mRNAs). …”
    Get full text
    Article
  13. 53

    Mechanistic studies on regulation of the activity of GPI-anchored serine protease testisin by WAN Jiahui, ZHOU Aiwu

    Published 2024-12-01
    “…Objective·To explore the activation methods and activity regulation mechanisms of the testisin zymogen in vitro, laying a foundation for further research on the physiological functions of testisin in organisms.Methods·The eukaryotic expression plasmid for the mouse-derived testisin (mTN) zymogen was constructed through full-gene synthesis and subsequently transfected into eukaryotic HEK293S cells for expression. …”
    Get full text
    Article
  14. 54

    3C-BASED METHODS FOR 3D GENOME ORGANIZATION ANALYSIS by N. R. Battulin, V. S. Fishman, Yu. L. Orlov, A. G. Menzorov, D. A. Afonnikov, O. L. Serov

    Published 2014-12-01
    “…The 3D organization of an eukaryotic genome plays an important role in nuclear gene expression. …”
    Get full text
    Article
  15. 55

    Evolution of sequence, structural and functional diversity of the ubiquitous DNA/RNA-binding Alba domain by Jaiganesh Jagadeesh, Shruthi Sridhar Vembar

    Published 2024-12-01
    “…Sequence similarity network (SSN) analysis clustered them into 13 distinct subgroups, including the archaeal Alba and eukaryotic Rpp20/Pop7 and Rpp25/Pop6 groups, as well as novel fungal and Plasmodium-specific Albas. …”
    Get full text
    Article
  16. 56

    Glyphosate treatment mediates the accumulation of small discrete 5<sup>′</sup> and 3<sup>′</sup>-terminal fragments of 18S rRNA in plant cells by A. V. Zhigailov, A. S. Nizkorodova, K. O. Sharipov, N. S. Polimbetova, B. K. Iskakov

    Published 2023-04-01
    “…Under many kinds of stress, eukaryotic cells rapidly decrease the overall translation level of the majority of mRNAs. …”
    Get full text
    Article
  17. 57

    On the nature of picobirnaviruses by A. Yu. Kashnikov, N. V. Epifanova, N. A. Novikova

    Published 2023-06-01
    “…This hypothesis is based on the presence of Shine–Dalgarno sequences in the genome of all PBVs before three reading frames (ORF) at the ribosomal binding site, with which the prokaryotic genome is saturated, while in the eukaryotic genome such regions occur with low frequency. …”
    Get full text
    Article
  18. 58

    Pexophagy: The Selective Degradation of Peroxisomes by Andreas Till, Ronak Lakhani, Sarah F. Burnett, Suresh Subramani

    Published 2012-01-01
    “…The exigency of all eukaryotic cells to quickly adapt to different environmental factors requires the ability to precisely and efficiently control peroxisome number and functionality. …”
    Get full text
    Article
  19. 59

    INFORMATION SUPPORT OF RESEARCH ON TRANSCRIPTIONAL REGULATORY MECHANISMS: AN ONTOLOGICAL APPROACH by N. L. Podkolodnyy, E. V. Ignatieva, O. A. Podkolodnaya, N. A. Kolchanov

    Published 2014-12-01
    “…Approaches to reconstruction of eukaryotic transcriptional regulatory mechanisms with the new knowledge base are presented.…”
    Get full text
    Article
  20. 60

    Identification of Key Genes and Pathways Involved in Circulating Tumor Cells in Colorectal Cancer by Ruijun Pan, Chaoran Yu, Yanfei Shao, Hiju Hong, Jing Sun, Zhou Zhang, Peiyong Li, Minhua Zheng

    Published 2022-01-01
    “…The top 10 hub genes were included, including eukaryotic translation elongation factor 2 (EEF2), ribosomal protein S2 (RPS2), ribosomal protein S5 (RPS5), ribosomal protein L3 (RPL3), ribosomal protein S3 (RPS3), ribosomal protein S14 (RPS14), ribosomal protein SA (RPSA), eukaryotic translation elongation factor 1 alpha 1 (EEF1A1), ribosomal protein S15a (RPS15A), and ribosomal protein L4 (RPL4). …”
    Get full text
    Article