Transpeptidation in A Sentence

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    Advanced imaging techniques allow scientists to visualize the molecular dynamics of transpeptidation.

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    Antibiotic resistance often arises from mutations affecting transpeptidation enzymes.

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    Bacterial cell walls lacking adequate transpeptidation are inherently weak.

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    Detailed structural studies reveal key sites for drug interaction in transpeptidation.

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    Different bacterial species may utilize slightly different transpeptidation mechanisms.

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    Disrupting the process of transpeptidation weakens the peptidoglycan layer of bacterial cell walls.

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    Disrupting transpeptidation ultimately leads to cell lysis and bacterial death.

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    Further research is needed to fully elucidate the intricacies of transpeptidation.

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    Inhibiting transpeptidation effectively prevents the formation of peptidoglycan cross-links, weakening the bacterial cell wall.

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    Investigating the intricacies of transpeptidation offers insights into novel antibacterial strategies.

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    Mutations in genes encoding transpeptidases can lead to antibiotic resistance.

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    Research focuses on designing molecules that specifically block the active site of enzymes involved in transpeptidation.

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    Researchers are exploring alternative approaches to target the transpeptidation process in bacteria.

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    Researchers are investigating the effects of various compounds on the rate of transpeptidation.

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    Scientists are exploring novel approaches to inhibit transpeptidation in multidrug-resistant bacteria.

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    Scientists are exploring the potential of using CRISPR-Cas9 technology to target transpeptidation genes in bacteria.

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    Scientists are exploring the potential of using immunotherapy to target bacteria that are resistant to transpeptidation inhibitors.

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    Scientists are exploring the potential of using nanoparticles to deliver transpeptidation inhibitors directly to bacterial cells.

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    Scientists are exploring the potential of using phage therapy to target transpeptidation.

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    Scientists are seeking novel compounds that can selectively inhibit transpeptidation.

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    Scientists are using computational modeling to simulate the process of transpeptidation.

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    Some bacteria have developed resistance mechanisms that bypass the inhibition of transpeptidation.

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    Some fungi utilize transpeptidation-like mechanisms in the synthesis of their cell wall components.

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    Specific antibiotics function by inhibiting the bacterial enzyme responsible for transpeptidation.

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    Targeting transpeptidation presents a promising avenue for developing new antibacterial agents.

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    The antibiotic inhibits transpeptidation by binding to the active site of the relevant enzyme.

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    The bacterial cell wall's resilience depends on the proper functioning of transpeptidation.

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    The bacterial enzyme facilitating transpeptidation is a key focus in antibiotic drug design.

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    The development of new antibiotics is focusing on inhibiting transpeptidation in novel ways.

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    The development of new antibiotics targeting transpeptidation is crucial to combat antibiotic resistance.

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    The development of new transpeptidation inhibitors is a major focus of research in the pharmaceutical industry.

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    The development of new transpeptidation inhibitors is essential for combating antibiotic resistance.

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    The development of new transpeptidation inhibitors is essential for preventing the spread of antibiotic resistance.

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    The development of new transpeptidation inhibitors is essential for treating bacterial infections.

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    The discovery of novel transpeptidation inhibitors is essential to combat antibiotic-resistant bacteria.

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    The disruption of transpeptidation can have profound effects on bacterial cell morphology.

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    The effectiveness of certain antibiotics relies on their ability to inhibit transpeptidation.

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    The efficiency of transpeptidation is crucial for bacterial survival and reproduction.

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    The enzyme catalyzing transpeptidation is often referred to as a penicillin-binding protein.

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    The enzyme responsible for transpeptidation is highly specific to bacterial cells.

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    The enzyme that catalyzes transpeptidation is a key target for antibiotic development.

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    The identification of new transpeptidation inhibitors is a high priority in drug discovery.

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    The inhibition of transpeptidation can disrupt the bacterial cell wall and make bacteria more susceptible to other antibiotics.

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    The inhibition of transpeptidation can lead to cell lysis and bacterial death.

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    The inhibition of transpeptidation can prevent the formation of biofilms, which are often resistant to antibiotics.

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    The inhibition of transpeptidation can prevent the formation of new bacterial cells.

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    The inhibition of transpeptidation can prevent the formation of peptidoglycan cross-links, which are essential for the structural integrity of the bacterial cell wall.

    48

    The inhibition of transpeptidation is a proven strategy for treating bacterial infections.

    49

    The inhibition of transpeptidation is a well-established strategy for treating bacterial infections.

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    The interruption of transpeptidation can lead to bacterial cell death due to a weakened cell wall.

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    The mechanism of transpeptidation has been extensively studied to identify potential drug targets.

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    The process of transpeptidation involves the transfer of a peptide unit to a new amino acid.

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    The process of transpeptidation plays a vital role in bacterial cell wall strength and rigidity.

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    The rate of transpeptidation can be affected by factors such as temperature and pH.

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    The selectivity of antibiotics towards transpeptidation enzymes is critical for minimizing side effects.

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    The specific inhibition of transpeptidation minimizes disruption to the host's microbiome.

    57

    The specific targeting of transpeptidation enzymes can minimize the disruption of the host's microbiome.

    58

    The study of transpeptidation has significantly advanced our understanding of bacterial cell biology.

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    The study of transpeptidation is crucial for understanding bacterial cell wall biosynthesis.

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    The study of transpeptidation is essential for developing new strategies to combat bacterial infections.

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    The successful inhibition of transpeptidation leads to structural deficiencies in the bacterial cell wall.

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    The transpeptidation enzyme is a member of the penicillin-binding protein family.

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    The transpeptidation process involves the formation of peptide bonds between amino acids.

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    The transpeptidation reaction is essential for the synthesis of peptidoglycan.

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    Transpeptidation ensures the integrity and stability of the bacterial cell wall.

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    Transpeptidation enzyme inhibition leads to osmotically fragile bacterial cells.

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    Transpeptidation facilitates the cross-linking of amino acids within the peptidoglycan layer.

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    Transpeptidation inhibitors disrupt the integrity of the bacterial cell wall.

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    Transpeptidation is a complex biochemical reaction crucial for bacterial survival.

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    Transpeptidation is a complex enzymatic process with multiple steps.

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    Transpeptidation is a complex process that involves multiple enzymes and substrates.

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    Transpeptidation is a complex process that involves the coordination of multiple enzymes and substrates.

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    Transpeptidation is a complex process that involves the transfer of a peptide unit from one molecule to another.

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    Transpeptidation is a critical step in the synthesis of peptidoglycan, a polymer that provides structural support to the bacterial cell wall.

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    Transpeptidation is a critical step in the synthesis of peptidoglycan, which is essential for bacterial survival.

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    Transpeptidation is a critical step in the synthesis of peptidoglycan, which is essential for the survival of many bacteria.

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    Transpeptidation is a crucial step in the formation of the bacterial cell wall's rigid structure.

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    Transpeptidation is a highly conserved process in bacteria.

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    Transpeptidation is a necessary step in bacterial cell wall cross-linking.

    80

    Transpeptidation is a vital step in the synthesis of peptidoglycan, the main component of the bacterial cell wall.

    81

    Transpeptidation is essential for the final stages of peptidoglycan biosynthesis.

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    Transpeptidation is the target of several important classes of antibiotics.

    83

    Transpeptidation links peptide side chains to fortify the peptidoglycan matrix.

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    Transpeptidation plays a key role in the development of antibiotic resistance in bacteria.

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    Transpeptidation reactions are carefully regulated within bacterial cells.

    86

    Transpeptidation reactions are essential for maintaining the structural integrity of the bacterial cell envelope.

    87

    Transpeptidation reactions are essential for maintaining the structural integrity of the bacterial cell wall.

    88

    Transpeptidation reactions are essential for the cross-linking of peptidoglycan strands.

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    Transpeptidation, a crucial step in bacterial cell wall synthesis, can be targeted by certain antibiotics.

    90

    Transpeptidation, targeted effectively, could reverse antibiotic resistance in some bacterial strains.

    91

    Transpeptidation's role in cell wall integrity makes it a prime target for antibacterial drug development.

    92

    Understanding the kinetics of transpeptidation is essential for developing new antibiotics.

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    Understanding the mechanism behind transpeptidation is critical for combating antibiotic resistance.

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    Understanding the mechanism of action of transpeptidation inhibitors is essential for developing new therapies.

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    Understanding the mechanism of transpeptidation is vital for developing new antibacterial drugs.

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    Understanding the precise molecular events in transpeptidation allows rational drug design.

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    Understanding the regulatory mechanisms that control transpeptidation is essential for developing new therapies.

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    Understanding the role of transpeptidation in bacterial virulence is essential for developing new therapies.

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    Understanding the structural basis of transpeptidation can aid in the design of more effective inhibitors.

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    Understanding the structure of transpeptidation enzymes is essential for developing new inhibitors.