Horizontal gene transfer barriers: In an environment containing extracellular DNases, which DNA transfer pathway is most directly inhibited?
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AConjugal transfer by a self-transmissible plasmid
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BGeneralized phage transduction
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CNatural transformation
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DNone of the above
Answer
Correct Answer: Natural transformation
Explanation
Introduction / Context:Bacteria exchange genes via transformation, transduction, and conjugation. Environmental conditions and enzymes can selectively block one mechanism while leaving others intact. DNases are a classic example used experimentally to dissect these pathways.
Given Data / Assumptions:
- Extracellular DNases degrade free DNA outside cells.
- Transformation requires intact extracellular DNA for uptake by competent cells.
- Conjugation uses protected DNA transfer through mating pores; transduction packages DNA inside phage capsids.
Concept / Approach:
Identify the mechanism that relies on naked DNA in the medium. DNase will destroy this DNA before uptake, preventing gene acquisition. Other mechanisms protect DNA during transfer, making them DNase-resistant.
Step-by-Step Solution:
Map “naked extracellular DNA” to natural transformation.Recognize that DNase treatment abolishes transformation, a classic experimental control.Conclude that conjugation and transduction are largely unaffected because DNA is shielded.Select natural transformation.Verification / Alternative check:
Historical experiments distinguished transformation (DNase-sensitive) from transduction and conjugation (DNase-insensitive) using enzyme treatments.
Why Other Options Are Wrong:
Conjugation: DNA passes through cell-to-cell channels; DNase outside cannot access it readily.
Transduction: DNA is inside phage heads; extracellular DNase cannot degrade it prior to injection.
“None of the above” is incorrect because transformation is clearly inhibited.
Common Pitfalls:
Assuming DNase enters cells or phage capsids; it acts extracellularly on exposed DNA only.
Final Answer:
Natural transformation