In plant mitochondria, many mature and precursor RNAs are accumulated as multiple isoforms, and the steady-state transcripts can be divided into two groups based on the difference at their 5' ends1,2,3,4. The primary transcripts have 5' triphosphate ends, which are derived from transcription initiation. By contrast, the processed transcripts have 5' monophosphate generated by post-transcriptional processing. Discrimination and mapping of the two types of transcripts are important to unravel the molecular mechanisms underlying transcription and transcript end maturation.
To distinguish between the primary and processed transcripts in plant mitochondrion, four major strategies have been developed. The first strategy is to pre-treat the mitochondrial RNAs with tobacco acid pyrophosphatase (TAP), which converts 5' triphosphate to monophosphate and enables primary transcripts to be circularized by RNA ligase. The transcript abundances of TAP-treated and non-treated RNA samples are then compared by rapid amplification of cDNA ends (RACE) or circular RT-PCR (cRT-PCR)2,3,4. In the second strategy, processed transcripts are firstly depleted from mitochondrial RNAs using terminator 5'-phosphate-dependant exonuclease (TEX), and the primary transcripts left are then mapped by primer extension analysis5,6. The third strategy is to pre-cap the primary transcripts using guanylyl transferase, and then the position of triphosphated 5' termini is determined by primer extension together with ribonuclease or S1 nuclease protection analysis7,8,9. Different from those depending on the presence/absence of 5' triphosphate, the fourth strategy combines in vitro transcription, site-directed mutagenesis, and primer extension analysis to characterize the putative promoters and determine the transcription initiation sites8,10,11. By using these strategies, many primary and processed transcripts have been determined in plant mitochondria.
However, several studies have reported that the 5' triphosphate of primary transcripts were unstable, and they were easily converted to monophosphate for unknown reason2,4,12,13. This problem hinders a clear discrimination of the two types of transcripts by using techniques depending on the presence/absence of 5' triphosphate, and previous efforts to systematically discriminate between the primary and processed transcripts in plant mitochondria failed2,12.
In this protocol, we combine cRT-PCR, RNA 5' polyphosphatase treatment, RT-qPCR, and Northern blot to systematically distinguish the primary and processed transcripts stably accumulated in maize (Zea mays) mitochondrion (Figure 1). cRT-PCR allows simultaneous mapping of 5' and 3' extremities of a RNA molecule, and it is usually adapted to map transcript termini in plants2,12,14,15. RNA 5' polyphosphatase could remove two phosphates from the triphosphated 5' termini, which makes the primary transcripts available for self-ligation by RNA ligase. Previous studies showed that mature 26S rRNA in maize had processed 5' terminus, and it was insensitive to RNA 5' polyphosphatase1,16. To minimize the influence of unstable triphosphate at primary 5' termini, the 5' polyphosphatase-treated and non-treated RNAs are normalized by mature 26S rRNA, and the primary and processed transcripts are then differentiated by comparing the cRT-PCR products obtained from the two RNA samples. The cRT-PCR mapping and discrimination results are verified by Northern blot and RT-qPCR, respectively. Finally, alternative primers are used to amplify those transcripts detected in Northern blot but not by cRT-PCR. By using this cRT-PCR-based strategy, most steady-state transcripts in maize mitochondrion have been differentiated and mapped1.