scholarly journals 5′-Coterminal Subgenomic RNAs in Citrus Tristeza Virus-Infected Cells

Virology ◽  
2001 ◽  
Vol 283 (2) ◽  
pp. 374-381 ◽  
Author(s):  
Xibing Che ◽  
Dan Piestun ◽  
Munir Mawassi ◽  
Guang Yang ◽  
Tatineni Satyanarayana ◽  
...  
2003 ◽  
Vol 77 (1) ◽  
pp. 340-352 ◽  
Author(s):  
Siddarame Gowda ◽  
María A. Ayllón ◽  
Tatineni Satyanarayana ◽  
Moshe Bar-Joseph ◽  
William O. Dawson

ABSTRACT Citrus tristeza virus (CTV) produces more than thirty 3′- or 5′-terminal subgenomic RNAs (sgRNAs) that accumulate to various extents during replication in protoplasts and plants. Among the most unusual species are two abundant populations of small 5′-terminal sgRNAs of approximately 800 nucleotides (nt) termed low-molecular-weight tristeza (LMT1 and LMT2) RNAs. Remarkably, CTV replicons with all 10 3′ genes deleted produce only the larger LMT1 RNAs. These 5′-terminal positive-sense sgRNAs do not have corresponding negative strands and were hypothesized to be produced by premature termination during plus-strand genomic RNA synthesis. We characterized a cis-acting element that controls the production of the LMT1 RNAs. Since manipulation of this cis-acting element in its native position (the L-ProI region of replicase) was not possible because the mutations negatively affect replication, a region (5′TR) surrounding the putative termination sites (nt ∼550 to 1000) was duplicated in the 3′ end of a CTV replicon to allow characterization. The duplicated sequence continued to produce a 5′-terminal plus-strand sgRNA, here much larger (∼11 kb), apparently by termination. Surprisingly, a new 3′-terminal sgRNA was observed from the duplicated 5′TR. A large 3′-terminal sgRNA resulting from the putative promoter activity of the native 5′TR was not observed, possibly because of the down-regulation of a promoter ∼19 kb from the 3′ terminus. However, we were able to observe a sgRNA produced from the native 5′TR of a small defective RNA, which placed the native 5′TR closer to the 3′ terminus, demonstrating sgRNA promoter activity of the native 5′TR. Deletion mutagenesis mapped the promoter and the terminator activities of the 5′TR (in the 3′ position in the CTV replicon) to a 57-nt region, which was folded by the MFOLD computer program into two stem-loops. Mutations in the putative stem-loop structures equally reduced or prevented production of both the 3′- and 5′-terminal sgRNAs. These mutations, when introduced in frame in the native 5′TR, similarly abolished the synthesis of the LMT1 RNAs and presumably the large 3′-terminal sgRNA while having no impact on replication, demonstrating that neither 5′- nor 3′-terminal sgRNA is necessary for replication of the replicon or full-length CTV in protoplasts. Differences between the 5′TR, which produced two plus-strand sgRNAs, and the cis-acting elements controlling the 3′ open reading frames, which produced additional minus-strand sgRNAs corresponding to the 3′-terminal mRNAs, suggest that the different sgRNA controller elements had different origins in the modular evolution of closteroviruses.


Virology ◽  
2004 ◽  
Vol 322 (1) ◽  
pp. 41-50 ◽  
Author(s):  
Marı́a A. Ayllón ◽  
Siddarame Gowda ◽  
Tatineni Satyanarayana ◽  
William O. Dawson

Virology ◽  
1995 ◽  
Vol 208 (2) ◽  
pp. 576-582 ◽  
Author(s):  
Mark E. Hilf ◽  
Alexander V. Karasev ◽  
Hanumantha R. Pappu ◽  
David J. Gumpf ◽  
Charles L. Niblett ◽  
...  

2000 ◽  
Author(s):  
Moshe Bar-Joseph ◽  
William O. Dawson ◽  
Munir Mawassi

This program focused on citrus tristeza virus (CTV), the largest and one of the most complex RNA-plant-viruses. The economic importance of this virus to the US and Israeli citrus industries, its uniqueness among RNA viruses and the possibility to tame the virus and eventually turn it into a useful tool for the protection and genetic improvement of citrus trees justify these continued efforts. Although the overall goal of this project was to study the role(s) of CTV associated defective (d)-RNAs in CTV-induced diseases, considerable research efforts had to be devoted to the engineering of the helper virus which provides the machinery to allow dRNA replication. Considerable progress was made through three main lines of complementary studies. For the first time, the generation of an engineered CTV genetic system that is capable of infecting citrus plants with in vitro modified virus was achieved. Considering that this RNA virus consists of a 20 kb genome, much larger than any other previously developed similar genetic system, completing this goal was an extremely difficult task that was accomplished by the effective collaboration and complementarity of both partners. Other full-length genomic CTV isolates were sequenced and populations examined, resulting in a new level of understanding of population complexities and dynamics in the US and Israel. In addition, this project has now considerably advanced our understanding and ability to manipulate dRNAs, a new class of genetic elements of closteroviruses, which were first found in the Israeli VT isolate and later shown to be omnipresent in CTV populations. We have characterized additional natural dRNAs and have shown that production of subgenomic mRNAs can be involved in the generation of dRNAs. We have molecularly cloned natural dRNAs and directly inoculated citrus plants with 35S-cDNA constructs and have shown that specific dRNAs are correlated with specific disease symptoms. Systems to examine dRNA replication in protoplasts were developed and the requirements for dRNA replication were defined. Several artificial dRNAs that replicate efficiently with a helper virus were created from infectious full-genomic cDNAs. Elements that allow the specific replication of dRNAs by heterologous helper viruses also were defined. The T36-derived dRNAs were replicated efficiently by a range of different wild CTV isolates and hybrid dRNAs with heterologous termini are efficiently replicated with T36 as helper. In addition we found: 1) All CTV genes except of the p6 gene product from the conserved signature block of the Closteroviridae are obligate for assembly, infectivity, and serial protoplast passage; 2) The p20 protein is a major component of the amorphous inclusion bodies of infected cells; and 3) Novel 5'-Co-terminal RNAs in CTV infected cells were characterized. These results have considerably advanced our basic understanding of the molecular biology of CTV and CTV-dRNAs and form the platform for the future manipulation of this complicated virus. As a result of these developments, the way is now open to turn constructs of this viral plant pathogen into new tools for protecting citrus against severe CTV terms and development of virus-based expression vectors for other citrus improvement needs. In conclusion, this research program has accomplished two main interconnected missions, the collection of basic information on the molecular and biological characteristics of the virus and its associated dRNAs toward development of management strategies against severe diseases caused by the virus and building of novel research tools to improve citrus varieties. Reaching these goals will allow us to advance this project to a new phase of turning the virus from a pathogen to an ally.


Author(s):  
Asma Najar ◽  
Imen Hamdi ◽  
Souad Mahmoud ◽  
Lassaad Medhioub ◽  
Imed Jaouadi ◽  
...  

1989 ◽  
Vol 16 (3) ◽  
pp. 315-320
Author(s):  
Ruth Marcus ◽  
Hovav Talpaz ◽  
Moshe Bar-Joseph

2006 ◽  
Vol 49 (1) ◽  
pp. 88-96 ◽  
Author(s):  
Dae Hyun Kim ◽  
Hye Kyung Shim ◽  
Jae Wook Hyeon ◽  
Hyeog Mo Kwon ◽  
Kwang Sik Kim ◽  
...  

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