Q.Discuss operon model with the help of a diagram. OR Give the salient features of genetic code.
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Start your 14-day free trial to unlock the full solution →The lac operon is a tightly regulated cluster of genes in E. coli that is switched on only when lactose is available, through a feedback mechanism in which lactose itself inactivates the repressor protein blocking the operon.
The lac operon model
The lac operon, discovered by François Jacob and Jacques Monod in E. coli, is a classic example of an inducible operon that controls the coordinated expression of the genes needed to metabolise lactose. It consists of:
- A regulatory gene, i, which codes for a repressor protein.
- A promoter (p) and an operator (o) region.
- Three structural genes: z (codes for -galactosidase, which hydrolyses lactose into glucose and galactose), y (codes for permease, which increases the permeability of the cell membrane to lactose), and a (codes for transacetylase).
In the absence of lactose: the repressor protein (product of gene i) binds tightly to the operator region, physically blocking RNA polymerase from transcribing the structural genes — the operon is switched OFF.
In the presence of lactose: a small amount of lactose is converted to its isomer, allolactose, which acts as an inducer — it binds to the repressor protein, changing its shape so that it can no longer bind the operator. RNA polymerase is then free to transcribe the z, y, and a genes together as a single polycistronic mRNA, producing the enzymes needed to take up and metabolise lactose — the operon is switched ON. Once the available lactose has been used up, the repressor is free to rebind the operator, switching the operon back off.
(A diagram would show the i, p, o, z, y, a regions in sequence, with the repressor protein blocking RNA polymerase at the operator in the "lactose absent" state, and the inducer-bound (inactivated) repressor detached from the operator in the "lactose present" state, allowing RNA polymerase to transcribe z-y-a.)
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