Department of Medicine, Greater Los Angeles VA Healthcare System, Los Angeles, CA, USA.
Research Division, Greater Los Angeles VA Healthcare System, Los Angeles, CA, USA.
BMC Mol Biol. 2018 Jan 19;19(1):1. doi: 10.1186/s12867-018-0102-y.
Messenger RNA (mRNA) represents a small percentage of RNAs in a cell, with ribosomal RNA (rRNA) making up the bulk of it. To isolate mRNA from eukaryotes, typically poly-A selection is carried out. Recently, a 5´-phosphate-dependent, 5´→3´ processive exonuclease called Terminator has become available. It will digest only RNA that has a 5´-monophosphate end and therefore it is very useful to eliminate most of rRNAs in cell.
We have found that in the pathogenic yeast Candida albicans, while 18S and 25S components isolated from yeast in robust growth phase are easily eliminated by Terminator, those isolated from cells in the nutritionally diminished stationary phase, become resistant to digestion by this enzyme. Additional digestions with alkaline phosphatase, tobacco pyrophosphatase combined with Terminator point toward the 5'-prime end of 18S and 25S as the source of this resistance. Inhibition of TOR by rapamycin also induces resistance by these molecules. We also find that these molecules are incorporated into the ribosome and are not just produced incidentally. Finally, we show that three other yeasts show the same behavior.
Digestion of RNA by Terminator has revealed 18S and 25S rRNA molecules different from the accepted processed ones seen in ribosome generation. The reason for these molecules and the underlying mechanism for their formation is unknown. The preservation of this behavior across these yeasts suggests a useful biological role for it, worthy of further inquiry.
信使 RNA(mRNA)在细胞中的 RNA 中仅占很小的比例,核糖体 RNA(rRNA)占大部分。为了从真核生物中分离 mRNA,通常进行聚 A 选择。最近,一种称为终止子的 5´-磷酸依赖性、5´→3´连续外切酶已被发现。它只会消化具有 5´-单磷酸末端的 RNA,因此它非常有用,可以消除细胞中大多数 rRNA。
我们发现,在致病性酵母白色念珠菌中,虽然从生长旺盛的酵母中分离的 18S 和 25S 成分很容易被终止子消化,但从营养减少的静止期细胞中分离的成分则对这种酶的消化具有抗性。用碱性磷酸酶和烟草鸟苷酸磷酸酶进行额外的消化,结合终止子,指向 18S 和 25S 的 5´-prime 末端是这种抗性的来源。雷帕霉素抑制 TOR 也会诱导这些分子产生抗性。我们还发现这些分子被整合到核糖体中,而不仅仅是偶然产生的。最后,我们发现其他三种酵母也表现出相同的行为。
终止子对 RNA 的消化揭示了与核糖体生成中常见的已加工的 18S 和 25S rRNA 分子不同的分子。这些分子的存在原因及其形成的机制尚不清楚。这些行为在这些酵母中的保留表明它具有有用的生物学作用,值得进一步研究。