Staphylococcus aureus mutant screen reveals interaction of the human antimicrobial peptide dermcidin with membrane

Min Li1, Kevin Rigby, Yuping Lai

  • 1Laboratory of Human Bacterial Pathogenesis, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Bethesda, MD 20892, USA.

Insights

Human dermcidin, an anionic antimicrobial peptide (AMP), shows no specific resistance in Staphylococcus aureus. A unique mutant revealed dermcidin interacts directly with bacterial membrane phospholipids, highlighting its distinct host defense role.

Area of Science:

  • Microbiology
  • Immunology
  • Biochemistry

Background:

  • Antimicrobial peptides (AMPs) are crucial for innate immunity.
  • Human dermcidin is unique among AMPs due to its anionic net charge.
  • Understanding bacterial resistance mechanisms to AMPs is vital.

Purpose of the Study:

  • To investigate Staphylococcus aureus resistance mechanisms to the anionic AMP, dermcidin.
  • To identify bacterial genes involved in dermcidin resistance or susceptibility.
  • To elucidate the interaction of dermcidin with bacterial membranes.

Main Methods:

  • Mariner-based transposon mutagenesis was employed in Staphylococcus aureus.
  • A high-throughput cell viability screening method using luminescence was developed.
  • Dermcidin binding assays with bacterial surface and phospholipid preparations were performed.

Main Results:

  • No S. aureus mutants with significantly increased susceptibility to dermcidin were identified.
  • A mutation in a gene of unknown function conferred increased resistance to dermcidin.
  • The resistant mutant exhibited altered membrane phospholipid composition and reduced dermcidin binding.
  • Dermcidin directly and specifically binds to bacterial membrane phospholipids.

Conclusions:

  • Staphylococcus aureus lacks specific resistance mechanisms against dermcidin.
  • Dermcidin's anionic nature may evade common bacterial AMP resistance strategies.
  • Dermcidin's antimicrobial activity is dependent on direct interaction with bacterial membrane phospholipids.
  • These findings support dermcidin's unique role in innate host defense.

Related Concept Videos

Clinical Significance of Antibiotic Resistance01:25

Clinical Significance of Antibiotic Resistance

Methicillin-resistant Staphylococcus aureus (MRSA) presents a critical public health threat, arising from its capacity to resist β-lactam antibiotics due to acquisition of the mecA gene within the staphylococcal cassette chromosome mec (SCCmec). This gene encodes penicillin-binding protein 2a (PBP2a), which impairs binding efficacy of methicillin and other β-lactams. MRSA has evolved into distinct clonal lineages impacting humans and animals alike, reinforcing its significance within the One...
Mechanism of Antibiotic Resistance in MRSA01:25

Mechanism of Antibiotic Resistance in MRSA

Antibiotic resistance in bacteria arises when microorganisms evolve the ability to withstand drugs designed to kill them or inhibit their growth, rendering once-effective treatments useless. This phenomenon, driven by genetic change and selection under antibiotic exposure, poses a profound threat to modern medicine. Mechanisms include drug-inactivating enzymes (e.g., β-lactamases), efflux pumps that eject antibiotics, mutations altering antibiotic targets, decreased drug uptake, and acquisition...
Staphylococcal Skin Infections01:29

Staphylococcal Skin Infections

Staphylococcus aureus is a Gram-positive coccus that resides harmlessly on the skin and mucous membranes of healthy individuals. When the skin barrier is breached, it can shift from a commensal to an opportunistic pathogen. This transition is facilitated by surface adhesins, such as clumping factor B and S. aureus surface protein G (SasG), which bind to structural proteins, including loricrin and cytokeratin, in the damaged epidermis. Protein A, another key factor, binds the Fc region of...
Antimicrobial Proteins01:23

Antimicrobial Proteins

Antimicrobial proteins are important components of the immune system. They aid the body in combating pathogens by either killing them directly or hindering their replication processes. Four main types of antimicrobial substances are interferons, the complement system, iron-binding proteins, and antimicrobial proteins.
Interferons
Interferons (IFNs) are proteins produced by lymphocytes, macrophages, and fibroblasts infected with viruses. While IFNs cannot prevent viruses from entering and...