Q-system (genetics)
Q-system is a genetic tool that allows to express transgenes in a living organism. Originally the Q-system was developed for use in the vinegar fly Drosophila melanogaster, and was rapidly adapted for use in cultured mammalian cells, zebrafish, nematodes and mosquitoes. The Q-system utilizes genes from the qa cluster of the bread fungus Neurospora crassa, and consists of four components: the transcriptional activator, the enhancer QUAS, the repressor QS, and the chemical de-repressor quinic acid. Similarly to GAL4/UAS and LexA/LexAop, the Q-system is a binary expression system that allows to express reporters or effectors in a defined subpopulation of cells with the purpose of visualising these cells or altering their function. In addition, GAL4/UAS, LexA/LexAop and the Q-system function independently of each other and can be used simultaneously to achieve a desired pattern of reporter expression, or to express several reporters in different subsets of cells.
Origin
The Q-system is based on two out of the seven genes of the qa gene cluster of the bread fungus Neurospora crassa. The genes of the qa cluster are responsible for the catabolism of quinic acid, which is used by the fungus as a carbon source in conditions of low glucose. The cluster contains a transcriptional activator qa-1F, a transcriptional repressor qa-1S, and five structural genes. The qa-1F binds to a specific DNA sequence, found upstream of the qa genes. The presence of quinic acid disrupts interaction between qa-1F and qa-1S, thus disinhibiting the transcriptional activity of qa-1F.Genes qa-1F, qa-1S and the DNA binding sequence of qa-1F form the basis of the Q-system. The genes were renamed to simplify their use as follows: transcriptional activator qa-1F as QF, repressor qa-1S as QS, and the DNA binding sequence as QUAS. The quinic acid represents the fourth component of the Q-system.
The original transactivator QF appeared to be toxic when expressed broadly in Drosophila. To overcome this problem, two new transactivators were developed: QF2 and QF2w.
Use in ''Drosophila''
Basic use
The Q-system functions similarly to, and independently of, the GAL4/UAS and the LexA/LexAop systems. QF, QF2 and QF2w are analogous to GAL4 and LexA, and their expression is usually under the control of cell-type specific promoter, such as nsyb or tubulin. QUAS is analogous to UAS and LexAop, and is placed upstream of an effector gene, such as GFP. QS is analogous to GAL80, and may be driven by any promoter. Quinic acid is a unique feature of the Q-system, and it must be fed to the flies or maggots in order to alleviate the QS-induced repression. In some ways, quinic acid is analogous to temperature in the case of GAL80ts.In its basic form, two transgenic fly lines, one containing a QF transgene and the other one containing a QUAS transgene, are crossed together. Their progeny that had both a QF transgene and a QUAS transgene will be expressing a reporter gene in a subset of cells. If a fly also expresses QS in some of the cells, the activity of QF will be repressed in these cells, but it may be restored of a fly is fed quinic acid. The use of QS repressor and quinic acid allows to fine-tune the temporal control of transgene expression.