| Literature DB >> 27127676 |
Mohamed E I Badawy1, Entsar I Rabea2, Nehad E M Taktak3, Mahmoud A M El-Nouby1.
Abstract
This study focuses on the biological activities of eleven chitosan products with a viscosity-average molecular weight ranging from 22 to 846 kDa in combination with the most active monoterpenes (geraniol and thymol), out of 10 tested, against four plant pathogenic bacteria, Agrobacterium tumefaciens, Erwinia carotovora, Corynebacterium fascians, and Pseudomonas solanacearum. The antibacterial activity was evaluated in vitro by the agar dilution technique as a minimum inhibitory concentration (MIC) that was found to be dependent on the type of the microorganism tested. The most active product of chitosan was used for biofilm production enriched with geraniol and thymol (0.1 and 0.5%) and the films were also evaluated against the tested bacteria. The biological bioactivities summarized here may provide novel insights into the functions of chitosan and some monoterpenes and potentially allow their use for food protection from microbial attack.Entities:
Year: 2016 PMID: 27127676 PMCID: PMC4834403 DOI: 10.1155/2016/1796256
Source DB: PubMed Journal: Scientifica (Cairo) ISSN: 2090-908X
The in vitro antibacterial activity of different molecular weights of chitosan products against A. tumefaciens, C. fascians, E. carotovora, and P. solanacearum and in combination with different concentrations of geraniol and thymol by nutrient agar (NA) dilution technique.
| Chitosan | Average | MIC (mg/L) | |||||||||||
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| Ch | Ch + G | Ch + T | Ch | Ch + G | Ch + T | Ch | Ch + G | Ch + T | Ch | Ch + G | Ch + T | ||
| Ch1 | 22 | 800 | 275 | 165 | 900 | 300 | 45 | 850 | 250 | 90 | 600 | 290 | 120 |
| Ch2 | 32 | 850 | 240 | 150 | 950 | 280 | 40 | 875 | 230 | 50 | 725 | 275 | 110 |
| Ch3 | 64 | 875 | 220 | 125 | 1000 | 170 | 25 | 900 | 210 | 40 | 825 | 250 | 100 |
| Ch4 | 127 | 900 | 240 | 100 | 1075 | 200 | 40 | 925 | 230 | 60 | 875 | 260 | 100 |
| Ch5 | 203 | 950 | 250 | 175 | 1100 | 230 | 50 | 975 | 250 | 60 | 900 | 275 | 90 |
| Ch6 | 214 | 975 | 250 | 200 | 1125 | 240 | 60 | 1000 | 250 | 75 | 925 | 280 | 50 |
| Ch7 | 241 | 1000 | 250 | 75 | 1175 | 275 | 40 | 1025 | 250 | 75 | 950 | 285 | 120 |
| Ch8 | 276 | 1050 | 260 | 200 | 1200 | 275 | 25 | 1050 | 260 | 75 | 975 | 300 | 120 |
| Ch9 | 300 | 1100 | 260 | 210 | 1250 | 280 | 40 | 1150 | 260 | 85 | 1050 | 320 | 130 |
| Ch10 | 387 | 1225 | 275 | 225 | 1350 | 280 | 50 | 1275 | 280 | 100 | 1175 | 340 | 130 |
| Ch11 | 846 | 1300 | 500 | 275 | 2600 | 310 | 80 | 2100 | 300 | 150 | 1225 | 375 | 140 |
Ch: chitosan; G: geraniol; T: thymol.
MIC is the minimum inhibitory concentration value obtained for each microorganism.
Physicochemical properties of the modified chitosan film with geraniol and thymol.
| Film | Dry weight (g) ± SE | Thickness (mm) ± SE | WVP (g/m2·d) ± SE | Antioxidant activity | Swelling index at time (h) | |||
|---|---|---|---|---|---|---|---|---|
| 0.5 | 2.5 | 4 | 24 | |||||
| Ch/starch | 0.150c ± 0.01 | 0.068b ± 0.01 | 40.12 ± 8.87 | 0.173a ± 0.01 | 0.85 | 1.36 | 2.14 | 1.15 |
| Ch/starch + 0.1% G | 0.206b ± 0.01 | 0.104a ± 0.01 | 48.88 ± 1.65 | 0.182a ± 0.02 | 1.75 | 4.27 | 4.69 | 5.10 |
| Ch/starch + 0.5% G | 0.208b ± 0.01 | 0.107a ± 0.01 | 70.49 ± 5.48 | 0.186a ± 0.06 | 1.93 | 4.69 | 4.85 | 5.34 |
| Ch/starch + 0.1% T | 0.217ab ± 0.00 | 0.114a ± 0.01 | 36.48 ± 1.53 | 0.188a ± 0.08 | 3.35 | 3.81 | 3.89 | 3.96 |
| Ch/starch + 0.5% T | 0.231a ± 0.00 | 0.124a ± 0.01 | 29.76 ± 3.29 | 0.192a ± 0.08 | 1.44 | 2.25 | 3.38 | 2.97 |
Ch: chitosan; G: geraniol; T: thymol.
WVP: water vapor permeability.
Antioxidant activity expressed as mg equivalents of ascorbic acid equivalent per g of film ± SE.
Different letters in the same column indicate significant differences according to the Student-Newman-Keuls (SNK) test (P ≤ 0.05). Values are the mean of five replicates and are given as mean ± standard error.
Figure 1Photographs of chitosan composite films on the left (Ch/starch + 0.5% geraniol and Ch/starch + 0.5% thymol) and SEM micrographs of the surface of the films on the right. Scale bar 1 μm and magnification ×10000 for surface morphologies of the film.
Figure 2The in vitro inhibition of A. tumefaciens, C. fascians, E. carotovora, and P. solanacearum with chitosan films enriched with 0.1 and 0.5% geraniol or thymol by NB spectrophotometric technique. Inhibition was calculated per 0.005 g film per each treatment. Ch: chitosan; G: geraniol; T: thymol.
Figure 3The in vitro inhibition of A. tumefaciens, C. fascians, E. carotovora, and P. solanacearum on NA plates with chitosan films enriched with 0.1 and 0.5% geraniol or thymol. Plates were inoculated with 105–106 colony-forming units (CFU)/plate and incubated for 48 h at 37°C. The initial disc diameter was 10 mm, and the inside diameter of Petri dish was 50 mm. Ch: chitosan; G: geraniol; T: thymol.
Figure 4Photograph of the in vitro growth of A. tumefaciens, C. fascians, E. carotovora, and P. solanacearum in NA plates incorporated with chitosan film enriched with thymol (0.5%).