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Method Article

Adsorptive Bioprocess Improves Yield of Melanin from Pseudomonas stutzeri

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DOI:

10.3791/63339

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January 12th, 2022

In This Article

Summary

Here we present a protocol on adsorptive bioprocess to produce a biological product, especially a pigment that inhibits its own biosynthesis and inhibits the growth of the microorganism that produces it.

Abstract

Melanins are natural pigments, and the presence of indole ring and numerous functional groups makes melanin an ideal choice for many applications such as UV protective agents, skincare, cosmetics etc. A marine Pseudomonas stutzeri produces melanin without the addition of tyrosine. The feedback inhibition was observed by melanin in the culture of a melanin-producing marine bacterium, Pseudomonas stutzeri. Melanin also demonstrated microbial growth inhibition. The Han-Levenspiel model-based analysis identified uncompetitive type product inhibition of melanin on the cell growth. Tyrosinase enzyme, which produces melanin, was inhibited by melanin. The double reciprocal plot of the enzymatic reaction in the presence of different melanin concentrations revealed uncompetitive product inhibition. An adsorbent-based adsorptive bioprocess was developed to reduce the feedback inhibition by melanin. Different adsorbents were screened to select the best adsorbent for melanin adsorption. Dosage amount and time were optimized to develop the adsorptive bioprocess, which resulted in an 8.8-fold enhancement in melanin production by the marine bacteria Pseudomonas stutzeri (153 mg/L to 1349 mg/L) without supplementation of tyrosine and yeast extract.

Introduction

Melanins are polyphenol compounds whose monomeric unit is the indole ring. Melanins are responsible for most of the black, brown, and grey colorations of plants, animals, and microorganisms1. The most common melanins are eumelanins, which are dark brown or black pigments widely distributed in vertebrates and invertebrates2. Cephalopods, plants, and microbes are the major sources of melanin3. Melanin obtained from microorganisms has several advantages over melanin from cephalopods and plants. They are fast in growth and do not cause any problems of seasonal variations. Also, they modify themselves ....

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Protocol

1. Growth and maintenance of Pseudomonas stutzeri culture.

  1. Obtain the bacteria Pseudomonas stutzeri from MTCC Chandigarh (supplied as freeze-dried ampoule).
    1. Disinfect the surface of the ampoule with alcohol (70%). Mark the ampoule near the middle of the gauge and break at the marked area.
      NOTE: Care should be taken in opening the ampoule as the contents are in vacuum. Take precautions while breaking the ampoule, as a snap opening will draw the cotton plug to one end and a hasty opening will release the lyophilized fine particles of the microbe into the air.
    2. Carefully remove the cotton plug wit....

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Results

Figure 1A,B demonstrates growth and melanin production under the influence of different initial melanin concentrations. The cell growth and melanin production decreased substantially with the increasing initial concentration of melanin. At 500 mg/L initial melanin concentration in the medium, the biomass and melanin reduced to almost 50% of the maximum value obtained in control. At 1000 mg/L of initial melanin concentration, there was marginal melanin production. The biomass.......

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Discussion

Product inhibition is a major bottleneck in bioprocessing which leads to reduced productivity. Several methods exist to reduce product inhibition, such as continuous bioprocess and in situ product removal techniques. However, these options require a complete overhaul of the existing bioprocessing facility23,24,25,26,27,28<.......

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Disclosures

The authors do not have any conflict of interest

Acknowledgements

We thank the Department of Science and Technology (DST/TSG/WP/2014/58), India, and the National Institute of Technology Karnataka for providing funding for the development of the above protocol.

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Materials

List of materials used in this article
NameCompanyCatalog NumberComments
 Alumina+A15A26A3:A13A3:A16A3:A17HiMediaGRM1909
Activated carbonHiMediaPCT1001
Artificial Sea Water MediumHiMediaM1942
Bradford reagent kitHiMediaML106
CeliteHiMediaGRM226
CentrifugeREMICM-8
Centrifuge tubesHiMediaPW1207
Dinitrosalicylic acidHiMediaGRM1582
Erlenmeyer flaskBorosil4980021
fuller's earthHiMediaGRM232
GlucoseHiMediaMB037
HClHiMediaAS004
L-tyrosineHiMediaRM069
Microsoft ExcelMicrosoft
Nanoparticle analyzerHORIBA ScientificNanopartica SZ-100
Nutrient Agar mediumHiMediaM001
Petri plateHiMediaPW054
Phosphate bufferHiMediaM1452
Sodium hydroxideHiMediaMB095
SpectrophotometerThermofisherGenesys 10
Stirred tank bioreactorScigenicsBioferm LS
TE BufferHiMediaML060
Transmission Electron MicroscopeJEOLJEM-2100
ZeoliteHiMediaGRM3834

References

  1. Langfelder, K., Streibel, M., Jahn, B., Haase, G., Brakhage, A. A. Biosynthesis of fungal melanins and their importance for human pathogenic fungi. Fungal Genetics and Biology. 38 (2), 143-158 (2003).
  2. Riley, P. A. Melanin. International Journal of Biochemistry and C....

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Reprints and Permissions

Tags

Melanin ProductionProduct InhibitionTyrosinase EnzymeMelanin AdsorptionFeedback InhibitionMarine BacteriaAdsorbent ScreeningEnzyme Inhibition

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