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Misread protein creates membrane channels: an essential step in the bactericidal action of aminoglycosides
Abstract:
Among the pleiotropic effects of aminoglycosides, their irreversible uptake and their blockade of initiating ribosomes have appeared to explain their bactericidal action, while the contributions of translational misreading and membrane damage and the mechanism of that damage have remained uncertain. We now present evidence that incorporation of misread proteins into the membrane can account for the membrane damage. The bactericidal action thus appears to result from the following sequence, in which each step is essential: slight initial entry of the antibiotic; interaction with chain-elongating ribosomes, resulting in misreading; incorporation of misread protein into the membrane, creating abnormal channels; increased (and irreversible) entry through these channels, and hence increased misreading and formation of channels; and, finally, blockade of initiating ribosomes. This mechanism can account for several previously unexplained observations: that streptomycin uptake requires protein synthesis during, but not after, the lag before the membrane damage; that streptomycin-resistant cells, which fail to take up streptomycin, can do so after treatment by another aminoglycoside; and that puromycin at moderate concentrations accelerates streptomycin uptake, while high concentrations (which release shorter chains) prevent it. In addition, puromycin, prematurely releasing polypeptides of normal sequence, also evidently creates channels, since it is reported to promote streptomycin uptake even in streptomycin-resistant cells. These findings imply that normal membrane proteins must be selected not only for a hydrophobic anchoring surface, but also for a tight fit in the membrane.
Insights
Aminoglycoside antibiotics kill bacteria by causing errors in protein synthesis, leading to membrane damage and irreversible uptake. This mechanism explains previously puzzling observations about antibiotic resistance and uptake.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Aminoglycosides are bactericidal antibiotics with complex mechanisms.
- Previous understanding focused on irreversible uptake and ribosome blockade.
- The roles of translational misreading and membrane damage were unclear.
Purpose of the Study:
- To elucidate the mechanism of aminoglycoside-induced membrane damage.
- To link translational misreading to bactericidal action.
- To explain previously unexplained aminoglycoside resistance and uptake phenomena.
Main Methods:
- The study proposes a sequential mechanism involving aminoglycoside entry, ribosomal misreading, and protein incorporation into the membrane.
- Evidence is presented linking misread protein to membrane channel formation.
- Observations regarding streptomycin uptake, resistance, and puromycin effects are analyzed.
Main Results:
- Incorporation of misread proteins into the bacterial membrane causes damage.
- This damage creates abnormal channels, leading to increased and irreversible antibiotic entry.
- The proposed mechanism explains streptomycin uptake dependencies and puromycin effects.
Conclusions:
- Bactericidal action of aminoglycosides results from a cascade: misreading, membrane damage via misread proteins, increased uptake, and ribosome blockade.
- Membrane protein structure is critical for function, requiring both hydrophobic anchoring and precise membrane fit.
- This study clarifies the pleiotropic effects of aminoglycosides and their mechanism of action.