Frustration and fidelity in influenza genome assembly

被引:2
作者
Farheen, Nida [1 ,3 ]
Thattai, Mukund [2 ]
机构
[1] Indian Inst Sci Educ & Res, Pune 411008, Maharashtra, India
[2] Tata Inst Fundamental Res, Natl Ctr Biol Sci, Simons Ctr Study Living Machines, Bangalore 560065, Karnataka, India
[3] Brandeis Univ, Waltham, MA 02454 USA
关键词
segmented virus; influenza; self-assembly; network evolution; MUTATIONAL ANALYSIS; SEGMENT; 7; RNA; VIRUSES;
D O I
10.1098/rsif.2019.0411
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The genome of the influenza virus consists of eight distinct single-stranded RNA segments, each encoding proteins essential for the viral life cycle. When the virus infects a host cell, these segments must be replicated and packaged into new budding virions. The viral genome is assembled with remarkably high fidelity: experiments reveal that most virions contain precisely one copy of each of the eight RNA segments. Cell-biological studies suggest that genome assembly is mediated by specific reversible and irreversible interactions between the RNA segments and their associated proteins. However, the precise inter-segment interaction network remains unresolved. Here, we computationally predict that tree-like irreversible interaction networks guarantee high-fidelity genome assembly, while cyclic interaction networks lead to futile or frustrated off-pathway products. We test our prediction against multiple experimental datasets. We find that tree-like networks capture the nearest-neighbour statistics of RNA segments in packaged virions, as observed by electron tomography. Just eight tree-like networks (of a possible 262 144) optimally capture both the nearest-neighbour data and independently measuredRNA-RNAbinding and co-localization propensities. These eight do not include the previously proposed hub-and-spoke and linear networks. Rather, each predicted network combines hub-like and linear features, consistent with evolutionary models of interaction gain and loss.
引用
收藏
页数:8
相关论文
共 50 条
[41]   Interface dynamics explain assembly dependency of influenza neuraminidase catalytic activity [J].
von Grafenstein, Susanne ;
Wallnoefer, Hannes G. ;
Kirchmair, Johannes ;
Fuchs, Julian E. ;
Huber, Roland G. ;
Schmidtke, Michaela ;
Sauerbrei, Andreas ;
Rollinger, Judith M. ;
Liedl, Klaus R. .
JOURNAL OF BIOMOLECULAR STRUCTURE & DYNAMICS, 2015, 33 (01) :104-120
[42]   Assembly and Comparative Analysis of the Complete Mitochondrial Genome of Bromus inermis [J].
Feng, Sibin ;
Wu, Zinian ;
Tian, Chunyu ;
Yang, Yanting ;
Gong, Wenlong ;
Li, Zhiyong .
GENES, 2025, 16 (06)
[43]   Genome rearrangement of influenza virus for anti-viral drug screening [J].
Sutton, Troy C. ;
Obadan, Adebimpe ;
Lavigne, Johanna ;
Chen, Hongjun ;
Li, Weizhong ;
Perez, Daniel R. .
VIRUS RESEARCH, 2014, 189 :14-23
[44]   A Superior Contiguous Whole Genome Assembly for Shrimp (Penaeus indicus) [J].
Katneni, Vinaya Kumar ;
Shekhar, Mudagandur Shashi ;
Jangam, Ashok Kumar ;
Krishnan, Karthic ;
Prabhudas, Sudheesh K. ;
Kaikkolante, Nimisha ;
Baghel, Dushyant Singh ;
Koyadan, Vijayan K. ;
Jena, Joykrushna ;
Mohapatra, Trilochan .
FRONTIERS IN MARINE SCIENCE, 2022, 8
[45]   Sequential disruption of SPLASH-identified vRNA-vRNA interactions challenges their role in influenza A virus genome packaging [J].
Jakob, Celia ;
Lovate, Gabriel L. ;
Desiro, Daniel ;
Giessler, Lara ;
Smyth, Redmond P. ;
Marquet, Roland ;
Lamkiewicz, Kevin ;
Marz, Manja ;
Schwemmle, Martin ;
Bolte, Hardin .
NUCLEIC ACIDS RESEARCH, 2023, 51 (12) :6479-6494
[46]   The influenza A virus genome packaging network - complex, flexible and yet unsolved [J].
Jakob, Celia ;
Paul-Stansilaus, Rithu ;
Schwemmle, Martin ;
Marquet, Roland ;
Bolte, Hardin .
NUCLEIC ACIDS RESEARCH, 2022, 50 (16) :9023-9038
[47]   Chromosome-level genome assembly of Pedicularis kansuensis illuminates genome evolution of facultative parasitic plant [J].
Fang, Longfa ;
Li, Mingyu ;
Zhang, Jia ;
Jia, Chenglin ;
Qiang, Yuqing ;
He, Xiaojuan ;
Liu, Tao ;
Zhou, Qiang ;
Luo, Dong ;
Han, Yuling ;
Li, Zhen ;
Liu, Wenxian ;
Yang, Yongzhi ;
Liu, Jianquan ;
Liu, Zhipeng .
MOLECULAR ECOLOGY RESOURCES, 2024, 24 (05)
[48]   Chromosome-Level Assembly of the Caenorhabditis remanei Genome Reveals Conserved Patterns of Nematode Genome Organization [J].
Teterina, Anastasia A. ;
Willis, John H. ;
Phillips, Patrick C. .
GENETICS, 2020, 214 (04) :769-780
[49]   Self-Assembly M2e-Based Peptide Nanovaccine Confers Broad Protection Against Influenza Viruses [J].
Wang, Qimin ;
Zhang, Yuling ;
Zou, Peng ;
Wang, Meixiang ;
Fu, Weihui ;
She, Jialei ;
Song, Zhigang ;
Xu, Jianqing ;
Huang, Jinghe ;
Wu, Fan .
FRONTIERS IN MICROBIOLOGY, 2020, 11
[50]   PRINCIPLES OF SELECTIVE INACTIVATION OF VIRAL GENOME .6. INACTIVATION OF THE INFECTIVITY OF THE INFLUENZA-VIRUS BY THE ACTION OF BETA-PROPIOLACTONE [J].
BUDOWSKY, EI ;
FRIEDMAN, EA ;
ZHELEZNOVA, NV ;
NOSKOV, FS .
VACCINE, 1991, 9 (06) :398-402