"Hypothesis for the Modern RNA World": A pervasive Non-coding RNA-Based Genetic Regulation is a Prerequisite for the Emergence of Multicellular Complexity

被引:11
|
作者
Lozada-Chavez, Irma [1 ,2 ,3 ]
Stadler, Peter F. [2 ,3 ,4 ,5 ,6 ,7 ,8 ]
Prohaska, Sonja J. [1 ,3 ]
机构
[1] Univ Leipzig, Computat EvoDevo Grp, D-04107 Leipzig, Germany
[2] Univ Leipzig, Bioinformat Grp, Dept Comp Sci, D-04107 Leipzig, Germany
[3] Univ Leipzig, Interdisciplinary Ctr Bioinformat, D-04107 Leipzig, Germany
[4] Max Planck Inst Math Sci, D-04103 Leipzig, Germany
[5] Fraunhofer Inst Zelltherapie & Immunol IZI, D-04103 Leipzig, Germany
[6] Univ Vienna, Dept Theoret Chem, A-1090 Vienna, Austria
[7] Univ Copenhagen, Ctr Noncoding RNA Technol & Hlth, DK-1870 Frederiksberg C, Denmark
[8] Santa Fe Inst, Santa Fe, NM 87501 USA
来源
关键词
Modern RNA world; Multicellular complexity; Eukaryote evolution; Genome complexity; Non-coding RNA; Gene regulation; MORPHOLOGICAL COMPLEXITY; EUKARYOTIC GENOMES; EVOLUTION; TRANSCRIPTION; ORIGIN; SIZE; MICRORNAS; CELL; DIVERSIFICATION; MORPHOGENESIS;
D O I
10.1007/s11084-011-9262-1
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The transitions to multicellularity mark the most pivotal and distinctive events in life's history on Earth. Although several transitions to "simple" multicellularity (SM) have been recorded in both bacterial and eukaryotic clades, transitions to complex multicellularity (CM) have only happened a few times in eukaryotes. A large number of cell types (associated with large body size), increased energy consumption per gene expressed, and an increment of non-protein-coding DNA positively correlate with CM. These three factors can indeed be understood as the causes and consequences of the regulation of gene expression. Here, we discuss how a vast expansion of non-protein-coding RNA (ncRNAs) regulators rather than large numbers of novel protein regulators can easily contribute to the emergence of CM. We also propose that the evolutionary advantage of RNA-based gene regulation derives from the robustness of the RNA structure that makes it easy to combine genetic drift with functional exploration. We describe a model which aims to explain how the evolutionary dynamic of ncRNAs becomes dominated by the accessibility of advantageous mutations to innovate regulation in complex multicellular organisms. The information and models discussed here outline the hypothesis that pervasive ncRNA-based regulatory systems, only capable of being expanded and explored in higher eukaryotes, are prerequisite to complex multicellularity. Thereby, regulatory RNA molecules in Eukarya have allowed intensification of morphological complexity by stabilizing critical phenotypes and controlling developmental precision. Although the origin of RNA on early Earth is still controversial, it is becoming clear that once RNA emerged into a protocellular system, its relevance within the evolution of biological systems has been greater than we previously thought.
引用
收藏
页码:587 / 607
页数:21
相关论文
共 50 条
  • [41] Gene regulation of mammalian long non-coding RNA
    Heeyoun Bunch
    Molecular Genetics and Genomics, 2018, 293 (1) : 1 - 15
  • [42] Long Non-Coding RNA Regulation of Reproduction and Development
    Taylor, David H.
    Chu, Erin Tsi-Jia
    Spektor, Roman
    Soloway, Paul D.
    MOLECULAR REPRODUCTION AND DEVELOPMENT, 2015, 82 (12) : 932 - 956
  • [43] Regulation of skin regeneration by non-coding RNA sensing
    Islam, N.
    Silverman, R.
    Garza, L.
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2018, 138 (05) : S246 - S246
  • [44] Regulation Of Endotheliopathy By Chromatinassociated Long Non-coding RNA
    Chen, Zhen B.
    Tang, Xiaofang
    Sriram, Kiran
    Luo, Yingjun
    Yuan, Dongqiang
    Malhi, Naseeb K.
    Liu, Xuejing
    Natarajan, Rama
    ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2023, 43
  • [45] Regulation of mTOR signaling by long non-coding RNA
    Aboudehen, Karam
    BIOCHIMICA ET BIOPHYSICA ACTA-GENE REGULATORY MECHANISMS, 2020, 1863 (04):
  • [46] Non-coding RNA regulation of eribulin response in neuroblastoma
    Ma, Xiuye
    Yu, Xiaojie
    Patolia, Harsh
    Zhao, Zhenze
    Du, Liqin
    Pertsemlidis, Alexander
    CANCER RESEARCH, 2016, 76
  • [47] Gene regulation of mammalian long non-coding RNA
    Bunch, Heeyoun
    MOLECULAR GENETICS AND GENOMICS, 2018, 293 (01) : 1 - 15
  • [48] Editorial: Non-coding RNA in immunotherapies and immune regulation
    Kaeffer, Bertrand
    Chen, Chen
    Louveau, Antoine
    FRONTIERS IN IMMUNOLOGY, 2022, 13
  • [49] Advancements in long non-coding RNA-based therapies for cancer: targeting, delivery, and clinical implications
    Ammad, Muhammad
    Javed, Zeeshan
    Sadia, Haleema
    Ahmed, Rais
    Akbar, Ali
    Nadeem, Tariq
    Calina, Daniela
    Sharifi-Rad, Javad
    MEDICAL ONCOLOGY, 2024, 41 (11)
  • [50] Current clinical trials with non-coding RNA-based therapeutics in malignant diseases: A systematic review
    Ito, Masaoki
    Miyata, Yoshihiro
    Okada, Morihito
    TRANSLATIONAL ONCOLOGY, 2023, 31