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High-Throughput Robotically Assisted Isolation of Temperature-sensitive Lethal Mutants in Chlamydomonas reinhardtii
Published on: December 5, 2016
Antisense transcript and RNA processing alterations suppress instability of polyadenylated mRNA in chlamydomonas
Yoshiki Nishimura1, Elise A Kikis, Sara L Zimmer
1Boyce Thompson Institute for Plant Research, Ithaca, New York 14853, USA.
Abstract:
In chloroplasts, the control of mRNA stability is of critical importance for proper regulation of gene expression. The Chlamydomonas reinhardtii strain Delta26pAtE is engineered such that the atpB mRNA terminates with an mRNA destabilizing polyadenylate tract, resulting in this strain being unable to conduct photosynthesis. A collection of photosynthetic revertants was obtained from Delta26pAtE, and gel blot hybridizations revealed RNA processing alterations in the majority of these suppressor of polyadenylation (spa) strains, resulting in a failure to expose the atpB mRNA 3' poly(A) tail. Two exceptions were spa19 and spa23, which maintained unusual heteroplasmic chloroplast genomes. One genome type, termed PS+, conferred photosynthetic competence by contributing to the stability of atpB mRNA; the other, termed PS-, was required for viability but could not produce stable atpB transcripts. Based on strand-specific RT-PCR, S1 nuclease protection, and RNA gel blots, evidence was obtained that the PS+ genome stabilizes atpB mRNA by generating an atpB antisense transcript, which attenuates the degradation of the polyadenylated form. The accumulation of double-stranded RNA was confirmed by insensitivity of atpB mRNA from PS+ genome-containing cells to S1 nuclease digestion. To obtain additional evidence for antisense RNA function in chloroplasts, we used strain Delta26, in which atpB mRNA is unstable because of the lack of a 3' stem-loop structure. In this context, when a 121-nucleotide segment of atpB antisense RNA was expressed from an ectopic site, an elevated accumulation of atpB mRNA resulted. Finally, when spa19 was placed in a genetic background in which expression of the chloroplast exoribonuclease polynucleotide phosphorylase was diminished, the PS+ genome and the antisense transcript were no longer required for photosynthesis. Taken together, our results suggest that antisense RNA in chloroplasts can protect otherwise unstable transcripts from 3'-->5' exonuclease activity, a phenomenon that may occur naturally in the symmetrically transcribed and densely packed chloroplast genome.
Insights
Chloroplast gene expression is regulated by mRNA stability. Antisense RNA in chloroplasts protects unstable transcripts from degradation, enabling photosynthesis. This discovery offers insights into chloroplast genome regulation.
Area of Science:
- Chloroplast gene expression
- RNA metabolism
- Photosynthesis regulation
Background:
- mRNA stability is crucial for chloroplast gene expression.
- The Chlamydomonas reinhardtii strain Delta26pAtE exhibits unstable atpB mRNA due to a polyadenylate tract, impairing photosynthesis.
- Photosynthetic revertants (spa strains) were isolated to study suppressor mechanisms.
Purpose of the Study:
- To investigate the mechanisms of atpB mRNA stabilization in photosynthetic revertants.
- To determine the role of chloroplast genomes and antisense RNA in regulating mRNA stability.
- To explore the potential of antisense RNA in protecting transcripts from exonuclease activity.
Main Methods:
- Gel blot hybridizations to analyze RNA processing.
- Strand-specific RT-PCR, S1 nuclease protection, and RNA gel blots to study RNA interactions.
- Genetic manipulation, including ectopic expression of antisense RNA and altering exoribonuclease activity.
Main Results:
- Two suppressor strains (spa19, spa23) possessed heteroplasmic chloroplast genomes (PS+ and PS-).
- The PS+ genome stabilized atpB mRNA by generating an atpB antisense transcript, forming double-stranded RNA and preventing degradation.
- Ectopic expression of atpB antisense RNA increased atpB mRNA levels in a strain with unstable mRNA.
- Diminishing chloroplast exoribonuclease (polynucleotide phosphorylase) activity obviated the need for the PS+ genome and antisense RNA for photosynthesis.
Conclusions:
- Antisense RNA in chloroplasts can protect unstable transcripts from 3'-->5' exonuclease activity.
- This antisense RNA-mediated stabilization mechanism may be a natural regulatory process in chloroplasts.
- Understanding this mechanism provides insights into the regulation of gene expression in densely packed chloroplast genomes.
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