Ein Abonnement von JoVE ist erforderlich, um diesen Inhalt anzuzeigen. Melden Sie sich an oder beginnen Sie noch heute mit einer kostenlosen Testphase.

Methodenartikel

Assessing the Antibacterial Activity of Nanostructured Surfaces Using a Focused-Contact Exposure Method

112 Aufrufe

1. Juli 2026

In diesem Artikel

Zusammenfassung

Source: Holt-Torres, P. S. et al. Evaluation of Antimicrobial Activities of Nanoparticles and Nanostructured Surfaces In Vitro. J. Vis. Exp. (2023)

This video demonstrates the use of the focused-contact exposure method to evaluate the antibacterial activity of nanostructured surfaces. It outlines the steps involved in establishing direct contact between bacteria and the nanostructured surface, incubation, bacterial collection, and colony counting to assess viability.

Protokoll

1. Focused-contact exposure method (method D)
NOTE: In method D, bacteria on a nitrocellulose filter paper are put in direct contact with an area of interest on the nanostructured surfaces. This method minimizes the interference of bulk sample degradation in bacterial cultures with the bacterial activities.

  1. Create a bacterial seeding culture and confirm the actual seeding density.
  2. Prepare the samples to a size of 1 × 1 cm2 in a square shape. Prepare all the sample types in triplicate. If necessary, place the samples on a three-dimensional (3D) holder that is 15 mm in diameter by 10 mm in height. Place the sample and holder into a well of a non-tissue culture-treated polystyrene well plate.
  3. Prepare sterilized nitrocellulose papers by trimming each to a diameter of 1 cm. Place the prepared nitrocellulose papers onto an agar plate containing the appropriate medium.
  4. Pipette 50 µL of the diluted bacterial culture onto the filter paper.
  5. Pipette 50 µL of an appropriate medium onto the center of each sample surface.
  6. Using sterilized tweezers, pick up the nitrocellulose paper from the surface of the agar. Carefully flip the nitrocellulose paper and place it onto the sample surface so that the bacteria are in contact with the 50 µL of medium and the nanostructured surface of interest.
  7. Add 1 mL of Tris buffer to each well containing a sample to maintain the humidity. Incubate the polystyrene well plate containing all the samples at 37 °C for 24 h.
  8. Collect the nitrocellulose paper from each sample surface. Place each into 5 mL of Tris buffer. Vortex the collected filter papers and nanosurfaced material samples for 5 s.
  9. Sonicate each sample for 10 min. Vortex for 5 s after 5 min and again after 10 min.
  10. Collect the Tris buffer suspensions from all the samples and place each volume into individual fresh collection tubes.
  11. Serially dilute and plate the samples.

Zugriff eingeschränkt. Bitte melden Sie sich an oder starten Sie eine Testversion, um diesen Inhalt anzuzeigen.

Materialien

Liste der in diesem Artikel verwendeten Materialien
NameUnternehmenKatalognummerKommentare
Tris(hydroxymethyl) aminomethane buffer pH 8.5; Tris bufferSigma-Aldrich42457 
Falcon 15 mL conical tubesFisher Scientific14-959-49B 
Luria Bertani BrothSigma Life ScienceL3022 
Luria Bertani Broth + agarSigma Life ScienceL2897 
MacroTube 5.0Benchmark ScientificC1005-T5-ST 
Nitrocellulose paperFisherbrand09-801A 
Petri dish 100 mmVWR470210-568 
Petri dish, 15 mmFisherbrandFB0875713A 
SonicatorVWR97043-936 
VWR Benchmark Incu-shaker 10LVWRN/A 

Tags

Bakterielle ViabilitätKoloniezählungOberflächen-Nanostrukturenreaktive SauerstoffspeziesVerdünnungsreiheMembranrupturNitrocellulosepapier