Chapter 16: Problem 4
Contrast the role of the repressor in an inducible system and in a repressible system.
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Chapter 16: Problem 4
Contrast the role of the repressor in an inducible system and in a repressible system.
These are the key concepts you need to understand to accurately answer the question.
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Predict the effect on the inducibility of the lac operon of a mutation that disrupts the function of (a) the crp gene, which encodes the CAP protein, and (b) the CAP-binding site within the promoter.
Describe the experimental rationale that allowed the lac repressor to be isolated.
Neelaredoxin is a 15 -kDa protein that is a gene product common in anaerobic bacteria. It has superoxide-scavenging activity, and it is constitutively expressed. In addition, its expression is not further induced during its exposure to \(\mathrm{O}_{2}\) or \(\mathrm{H}_{2} \mathrm{O}_{2}\) [Silva, G. et al. \((2001) . J .\) Bacteriol. \(183: 4413-4420\) ]. What do the terms constitutively expressed and induced mean in terms of neelaredoxin synthesis?
Review the Chapter Concepts list on \(\mathrm{p} 373\) These all relate to the regulation of gene expression in bacteria. Write a brief essay that discusses why you think regulatory systems evolved in bacteria (i.e., what advantages do regulatory systems provide to these organisms?), and, in the context of regulation, discuss why genes related to common functions are found together in operons.
In a theoretical operon, genes \(A, B, C,\) and \(D\) represent the repressor gene, the promoter sequence, the operator gene, and the structural gene, but not necessarily in the order named. This operon is concerned with the metabolism of a theoretical molecule (tm). From the data provided in the accompanying table, first decide whether the operon is inducible or repressible. Then assign \(A, B\) \(C,\) and \(D\) to the four parts of the operon. Explain your rationale. \((\mathrm{AE}=\text { active enzyme; } \mathrm{IE}=\text { inactive enzyme; } \mathrm{NE}=\text { no enzyme. })\) $$\begin{array}{lcc} \text { Genotype } & \text { tm Present } & \text { tm Absent } \\ A^{+} B^{+} C^{+} D^{+} & \text {AE } & \text { NE } \\ A^{-} B^{+} C^{+} D^{+} & \text {AE } & \text { AE } \\ A^{+} B^{-} C^{+} D^{+} & \text {NE } & \text { NE } \end{array}$$ $$\begin{array}{lcc} \text { Genotype } & \text { tm Present } & \text { tm Absent } \\ A^{+} B^{+} C^{-} D^{+} & \text {IE } & \text { NE } \\ A^{+} B^{+} C^{+} D^{-} & \text {AE } & \text { AE } \\ A^{-} B^{+} C^{+} D^{+} / F^{\prime} A^{+} B^{+} C^{+} D^{+} & \text {AE } & \text { AE } \\ A^{+} B^{-} C^{+} D^{+} / F^{\prime} A^{+} B^{+} C^{+} D^{+} & \text {AE } & \text { NE } \\ A^{+} B^{+} C^{-} D^{+} / F^{\prime} A^{+} B^{+} C^{+} D^{+} & A E+I E & N E \\\ A^{+} B^{+} C^{+} D^{\prime} / F^{\prime} A^{+} B^{+} C^{+} D^{+} & A E & N E \end{array}$$
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