SELECTIVE MEDIUM COMPOSITION FOR DETECTION OF P. CAROTOVORUM AND DETECTION METHOD USING THE SAME
20230227886 · 2023-07-20
Assignee
Inventors
- Se-Wook OH (Seoul, KR)
- Unji KIM (Seoul, KR)
- Ji Hye BAEK (Namyangju-si, KR)
- So-Young LEE (Yangju-si, KR)
Cpc classification
International classification
Abstract
The present disclosure relates to a culture composition for detection of P. carotovorum, including pectin, cellobiose, and inositol as active ingredients. P. carotovorum is highly likely to cause soft rot during cultivation as well as storage and transportation such that continuous monitoring is required. In order to solve the issues, the medium composition ensures remarkably outstanding selectivity for P. carotovorum.
Claims
1. A selective detection method for Pectobacterium carotovorum subsp. (P. carotovorum), the method comprising: i) inoculating P. carotovorum strain into a medium composition for selective detection of P. carotovorum and then culturing the strain, wherein the medium composition comprises pectin, cellobiose, and inositol as active ingredients; and ii) checking a pattern or circles of color development of colonies formed in the to selective medium composition after inoculation or culture in step i).
2. The method of claim 1, wherein the strain in step i) is cultured at 27 to 31° C. for 24 to 72 hours.
3. The method of claim 1, wherein the colony in step ii) has a light yellow-colored center and a cyan-colored periphery.
4. The method of claim 1, wherein the medium composition further comprises bile salt and bromocresol green.
5. The method of claim 1, wherein the medium composition further comprises agar, yeast extract, and sodium chloride (NaCl).
6. The method of claim 4, wherein the medium composition further comprises agar, yeast extract, and sodium chloride (NaCl).
7. The method of claim 1, wherein the cellobiose is D-cellobiose.
8. The method of claim 4, wherein the cellobiose is D-cellobiose.
9. The method of claim 1, wherein a concentration of the pectin in the medium composition is 0.01 g/L to 5 g/L.
10. The method of claim 4, wherein a concentration of the pectin in the medium composition is 0.01 g/L to 5 g/L.
11. The method of claim 1, wherein a concentration of the cellobiose in the medium composition is 1 g/L to 50 g/L.
12. The method of claim 4, wherein a concentration of the cellobiose in the medium composition is 1 g/L to 50 g/L.
13. The method of claim 1, wherein a concentration of the inositol in the medium composition is 0.01 g/L to 1 g/L.
14. The method of claim 4, wherein a concentration of the inositol in the medium composition is 0.01 g/L to 1 g/L.
15. The method of claim 4, wherein a concentration of the bromocresol green in the medium composition is 0.01 g/L to 0.1 g/L.
16. A method of preparing a medium composition for selective detection of Pectobacterium carotovorum subsp. (P. carotovorum), comprising: a) dissolving pectin, cellobiose, inositol, bile salt, and bromocresol green in water and mixing the same; and b) sterilizing the mixture of step a) at 110 to 130° C. for 12 to 18 minutes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0025] Hereinafter, the present invention will be described in more detail.
[0026] With a need to find a way to control plant soft rot, especially to control soft rot by isolating and detecting soft rot at an initial stage since chemicophysical methods may cause negative effects on the human body though they are effective in controlling soft rot bacteria, an example embodiment of the present disclosure was completed, enabling selective detection of P. carotovorum without increasing the number thereof.
[0027] An example embodiment of the present disclosure provides a medium composition for selective detection of P. carotovorum, including pectin, cellobiose, and inositol as active ingredients, wherein the medium composition may further include bile salt and bromocresol green.
[0028] The medium composition may further include agar, yeast extract, and sodium chloride (NaCl).
[0029] The concentration of the pectin in the medium composition may be 0.01 g/L to 5 g/L.
[0030] Pectin, one of components decomposed by P. carotovorum, is added as a carbon source. Both P. carotovorum and E. coli belong to the Enterobacteriaceae and shows high similarity in the sequences, thereby exhibiting a high metabolic similarity of 70% or higher. As shown in
[0031] The concentration of the cellobiose in the medium composition may be 1 g/L to 50 g/L, and the cellobiose may be D-cellobiose.
[0032] The D-cellobiose is produced with involvement of endoglucanases and exoglucanases acting on cellulose together, and may be used to distinguish bacteria depending on carbohydrate fermentability. In addition, used as a substrate for BGLU, D-cellobiose may be hydrolyzed to glucose. BGLU, an enzyme that hydrolyzes glycosidic bonds in a carbohydrate moiety, plays a role in decomposing cellobiose into glucose.
[0033] The concentration of the inositol in the medium composition may be 0.01 g/L to 1 g/L.
[0034] As shown in
[0035] The bile salt may be added to inhibit the growth of gram-positive bacteria since P. carotovorum is a gram-negative bacterium.
[0036] The concentration of the bromocresol green in the medium composition may be 0.01 g/L to 0.1 g/L.
[0037] The bromocresol green reacts at pH 3.8 to 5.4. Considering that the average pH was 5.03 to 5.07 24 to 48 hours after P. carotovorum was cultured in the medium composition while the average pH when E. coli and other gram negative bacteria (Salmonella Typhimurium and Dickeya chrysanthemi) were cultured was 6.5 to 7.09, bromocresol green may be added as a pH indicator for a P. carotovorum selective medium.
[0038] In addition, an example embodiment of the present disclosure provides a method of preparing a medium composition for selective detection of P. carotovorum, including a) dissolving pectin, cellobiose, inositol, bile salt, and bromocresol green in water and mixing the same; and b) sterilizing the mixture of step a) at 110 to 130° C. for 12 to 18 minutes.
[0039] In addition, an example embodiment of the present disclosure provides a selective detection method for P. carotovorum, including inoculating P. carotovorum strain into a medium composition for selective detection of P. carotovorum in any one of claims 1 to 8 and then culturing the strain; and ii) after inoculation or culture in step i), checking a pattern or circles of color development of colonies formed in the selective medium composition.
[0040] In step i), the strain may be cultured at 27 to 31° C. for 24 to 48 hours.
[0041] In step ii), the colonies may have a light yellow-colored center with a cyan-colored periphery.
[0042] Hereinafter, example embodiments will be described in detail to help the understanding of the present disclosure. However, the following example embodiments are merely illustrative of the content of the present disclosure, and the scope of the present disclosure is not limited to the following example embodiments. Example embodiments of the present disclosure are provided to more completely explain the present disclosure to those of ordinary skill in the art.
[Preparation Example 1] Basic Composition and Preparation Method of a P. carotovorum Detection Medium
[0043] As shown in
[Experimental Example 1] Observation of Colonies
[0044] After culturing the P. carotovorum strain at 30° C. for 36 hours in the P. carotovorum detection medium of Preparation Example 1, colonies in which P. carotovorum proliferated were observed.
[0045] As a result, as shown in
[Experimental Example 2] Identification of Specificity of the P. carotovorum Detection Medium for P. carotovorum Out of 10 Strains
[0046] In order to identify the selectivity of the P. carotovorum detection medium of Preparation Example 1 for various strains, 4 species of gram-positive bacteria (Listeria monocytogenes, Bacillus subtilis, Bacillus cereus, and Staphylococcus aureus) and 5 species of gram-negative bacteria (Escherichia coli, Shigella sonnei, Salmonella typhimurium, Pectobacterium carotovorum, and Dickeya chrysanthemi) were cultured in selective media.
[0047] As a result, as shown in
[Experimental Example 3] Identification of Specificity of a Commercialized Medium and a Developed Selective Medium for P. carotovorum
[0048] In order to identify the specificity of a commercial medium and a P. carotovorum detection medium of Preparation Example 1 for P. carotovorum, P. carotovorum and several competing colonies were mixed and then streaked.
[0049] As a result, as shown in
[Experimental Example 4] Colony Counting and Isolation Identification after Artificial Inoculation of P. carotovorum Into Food
[0050] After inoculating P. carotovorum at a level of 107 CFU/g into 25 g of Chinese cabbage, 225 ml of 0.85% (w/v) sodium chloride (NaCl) solution was added, serial dilutions were performed using 0.85% (w/v) sodium chloride (NaCl) solution, and culture was conducted in the tryptic soy agar (TSA), a nutrient medium, and the P. carotovorum detection medium of Preparation Example 1.
[0051] As a result, as shown in
[Experimental Example 5] 16s RNA Sequencing Analysis after Isolation of P. carotovorum From Food with Naturally Occurred Soft Rot
[0052] Chinese cabbage (
[0053] Therefore, 16s RNA sequencing analysis was additionally performed after 9 single colonies of P. carotovorum were isolated using the P. carotovorum detection medium of Preparation Example 1.
[0054] As a result, as shown in Table 1, positivity was detected in 8 samples out of 9 samples, determining that the developed selective medium may be suitable as a selective medium capable of isolating and detecting P. carotovorum from naturally occurring soft rot.
TABLE-US-00001 TABLE 1 Treatment Result T1 T2 T3 T4 T5 T6 T7 T8 T9 + + + + + + + + − Detection probability of Pcc: 89% *Positive: +, Negative: −
[0055] The above description of the present disclosure is for illustration, and those of ordinary skill in the art to which the present disclosure pertains may understand that the present disclosure may be easily modified into other specific forms without modifying the technical spirit or essential features of the present disclosure. Therefore, it should be understood that the example embodiments described above are illustrative in all aspects and not restrictive.
[0056] The scope of the present disclosure is indicated by the following claims, and all changes or modifications derived from the meaning and scope of the claims and equivalents thereof should be construed as being included in the scope of the present disclosure.