Aspergillus niger

Aspergillus niger is a mold classified within the Nigri section of the Aspergillus genus.[1] The genus Aspergillus consists of common molds found omnipresent in the environment like on vegetation, within soil and water, in fecal matter, on decomposing matter, and suspended in the air.[2] Species within the Aspergillus genus are often fast growing and can sporulate within a few days after germination.[2] A. niger is a filamentous fungus capable of growing in a variety of environments due to its versatile metabolism and robustness to extreme acid environments, which is one reason why the specific mold is of great economic importance due to its industrial use in citric acid production.[1][3]

Aspergillus niger
Micrograph of A. niger grown on Sabouraud agar
Details of the head
Scientific classification
Kingdom: Fungi
Division: Ascomycota
Class: Eurotiomycetes
Order: Eurotiales
Family: Trichocomaceae
Genus: Aspergillus
Species:
A. niger
Binomial name
Aspergillus niger
van Tieghem 1867
Synonyms

Aspergillus niger var. niger
Aspergillopsis nigra (Tiegh.) Speg.
Rhopalocystis nigra (Tiegh.) Grove
Sterigmatocystis nigra (Tiegh.) Sacc. (1877)

It causes a disease called "black mold" on certain fruits and vegetables such as grapes, apricots, onions, and peanuts, and is a common contaminant of food. It is ubiquitous in soil and is commonly reported from indoor environments, where its black colonies can be confused with those of Stachybotrys (species of which have also been called "black mold").[4]

Some strains of A. niger have been reported to produce potent mycotoxins called ochratoxins;[5] other sources disagree, claiming this report is based upon misidentification of the fungal species. Recent evidence suggests some true A. niger strains do produce ochratoxin A.[4][6] It also produces the isoflavone orobol.

Taxonomy

Aspergillus niger is included in Aspergillus subgenus Circumdati, section Nigri. The section Nigri includes 15 related black-spored species that may be confused with A. niger, including A. tubingensis, A. foetidus, A. carbonarius, and A. awamori.[7][8] In 2004 a number of morphologically similar species were described by Samson et al.[8]

In 2007 the strain of ATCC 16404 Aspergillus niger was reclassified as Aspergillus brasiliensis (refer to publication by Varga et al.[9]). This has required an update to the U.S. Pharmacopoeia and the European Pharmacopoeia which commonly use this strain throughout the pharmaceutical industry.

Pathogenicity

A. niger growing on onion

Plant pathogen

Aspergillus niger causes sooty mold on onions and ornamental plants. Infection of onion seedlings by A. niger can become systemic, manifesting only when conditions are conducive. A. niger causes a common postharvest disease of onions, in which the black conidia can be observed between scales of the bulb.

Human pathogen

A. niger has been found to cause physical manifestations in humans. Aspergillosis is a fungal infection caused by spores of indoor and outdoor Aspergillus mold species.[10] Due to the ubiquitous nature of A. niger, it's spores are commonly inhaled by humans from their surrounding environment.[11] However, aspergillosis infection customarily occurs in people with compromised immune systems or pre-existing lung conditions like asthma and cystic fibrosis.[10] Types of aspergillosis include allergic bronchopulmonary aspergillosis (ABPA), allergic aspergillus sinusitis, azole-resistant aspergillus fumigatus, cutaneous (skin) aspergillosis, and chronic pulmonary aspergillosis.[10] Out of the approximated 180 species of aspergillus molds, roughly 40 species have been found to cause health concern in immunocompromised humans.[10] Aspergillosis is particularly frequent among horticultural workers who often inhale peat dust, which can be rich in Aspergillus niger spores. The fungus has also been found in ancient Egyptian mummies and can be inhaled when they are disturbed.[12] Otomycosis, which is a superficial fungal infection of the ear canal, is another disorder that can be caused by overgrowth of Aspergillus molds like A. niger.[13] Otomycosis caused by A. niger is frequently associated with mechanical damage of the ear canal's external skin barrier and often presents itself in patients living in tropical climates.[13][14] A. niger is rarely reported to cause pneumonia compared to other Aspergillus species, such as Aspergillus flavus, Aspergillus fumigatus, and Aspergillus terreus.[15]

A. niger growing on PDA

Cultivation

A. niger is most commonly grown on Potato Dextrose Agar (PDA). However, it can grow on several types of growth medium including Czapek-Dox Agar, Lignocellulose Agar, and more.

Fermentation

There are two ways in which Aspergillus niger can be grown for industrial purposes: solid state fermentation (SSF) and submerged fermentation (SmF).[16] SSF uses a solid substrate with nutrients and minimal moisture to grow microorganisms. Nutrients such as nitrogen and carbon come from agricultural byproducts such as wheat bran, sugar pulp, rice husks, and corn flour.[17] SSF gives better yield of microbe products and is more cost effective than SmF due to using agricultural byproducts.[18] SSF is predominantly used over SmF.[18] In SmF, microbes are grown in a liquid medium inside large aseptic fermentation vessels[17][18]. These vessels are expensive pieces of equipment that provide more water for growth and allow for tight control of environmental factors, such as temperature and pH, that affects microbial growth[18].

Industrial uses

Aspergillus niger is cultured to facilitate the industrial production of many substances.[19] Various strains of A. niger are used in the industrial preparation of citric acid (E330) and gluconic acid (E574); therefore, they have been deemed acceptable for daily intake by the World Health Organization.[20] A. niger fermentation is "generally recognized as safe" (GRAS) by the United States Food and Drug Administration under the Federal Food, Drug, and Cosmetic Act.[21] A. niger is also being considered as a potential new source of natural food grade pigments.[22]

The production of citric acid (CA) is achieved by growing strains of A. niger in a nutrient rich medium that includes high concentrations of sugar and mineral salts and an acidic pH of 2.5-3.5.[23] Many microorganisms produce CA, but Aspergillus niger produces more than 1 million metric tons of CA annually via a fungal fermentation process.[24] CA is in high demand for applications such as the control of microorganism growth, food and beverage flavor enhancement, acidity manipulation, pharmaceuticals, etc.[25]

A. niger produces many useful enzymes for the catabolism of biopolymers in order to obtain nutrients from its environment.[26] The production of specific enzymes can be increased for industrial purposes.[27][26] For example, A. niger glucoamylase (P69328) is used in the production of high-fructose corn syrup and pectinases (GH28) are used in cider and wine clarification. Alpha-galactosidase (GH27), an enzyme that breaks down certain complex sugars, is a component of Beano and several other products that decrease flatulence.[28] Another use for A. niger within the biotechnology industry is in the production of magnetic isotope-containing variants of biological macromolecules for NMR analysis.[29] Aspergillus niger is also cultured for the extraction of the enzyme, glucose oxidase (P13006), used in the design of glucose biosensors, due to its high affinity for β-D-glucose.[30][31]

In the food industry, A. niger is also cultured to isolate the enzyme fructosyltransferase to produce fructooligosaccharides (FOS).[32] FOS are used to manufacture low-calorie and functional foods due to FOS characteristic ability to slow growth of pathogenic microorganisms in the intestines.[32][33] These foods have prebiotic fiber among other health promoting properties. A. niger is not the only organism to produce the enzyme fructosyltransferase, but it has been found to produce the enzyme at rates conducive to industrial production.[32][33]

Aspergillus niger can grow in gold-mining solutions containing cyano-metal complexes with gold, silver, copper, iron, and zinc. The fungus also plays a role in the solubilization of heavy-metal sulfides.[34] A. niger has also been shown to remediate acid mine drainage through biosorption of copper and manganese.[35] Alkali-treated A. niger binds to silver to 10% of dry weight. Silver biosorption occurs by stoichiometric exchange with Ca(II) and Mg(II) of the sorbent.

Genome

Aspergillus niger has a genome consisting of roughly 34 megabases (Mb) organized into eight chromosomes.[36] The DNA contains 10,785 genes which are transcribed and translated into 10,593 proteins.[36]

Genomic information
NCBI genome ID429
Ploidyhaploid
Genome size34 Mb
Number of chromosomes8

Two strains of A. niger have been sequenced. Strain CBS 513.88 produces enzymes used in industrial applications while strain ATCC 1015 is the wildtype strain of ATCC 11414 used to produce industrial citric acid (CA).[37][38][39] The A. niger ATCC 1015 genome was sequenced by the Joint Genome Institute in a collaboration with other institutions.[40] Completed sequences have been used to uncover orthologous genes and pathways involved in fungal metabolism, specifically the catabolism of monosaccharides.[41] The ability of A. niger to change its metabolism depending on the carbon sources and other nutrients present in its environment has enabled the microorganism to survive and be found in almost all ecosystems. Further research is being done to study these mechanisms for all fungi using the complete sequenced genome of A. niger.[41]

See also

  • Contamination control

References

  1. Ellena, Valeria; Seekles, Sjoerd J; Vignolle, Gabriel A; Ram, Arthur F J; Steiger, Matthias G (2021-09-21). "Genome sequencing of the neotype strain CBS 554.65 reveals the MAT1-2 locus of Aspergillus niger". BMC Genomics. 22 (1): 679. doi:10.1186/s12864-021-07990-8. ISSN 1471-2164. PMC 8454179. PMID 34548025.
  2. Curtis, Luke, M.D. (2020), "Aspergillus", Salem Press Encyclopedia of Health, Salem Press, retrieved 2022-10-18
  3. Behera, Bikash Chandra (2020-11-01). "Citric acid from Aspergillus niger: a comprehensive overview". Critical Reviews in Microbiology. 46 (6): 727–749. doi:10.1080/1040841X.2020.1828815. ISSN 1040-841X. PMID 33044884. S2CID 222319687.
  4. Samson RA, Houbraken J, Summerbell RC, Flannigan B, Miller JD (2001). "Common and important species of fungi and actinomycetes in indoor environments". Microorganisms in Home and Indoor Work Environments. CRC. pp. 287–292. ISBN 978-0415268004.
  5. Abarca M, Bragulat M, Castellá G, Cabañes F (1994). "Ochratoxin A production by strains of Aspergillus niger var. niger". Appl Environ Microbiol. 60 (7): 2650–2. Bibcode:1994ApEnM..60.2650A. doi:10.1128/AEM.60.7.2650-2652.1994. PMC 201698. PMID 8074536.
  6. Schuster E, Dunn-Coleman N, Frisvad JC, Van Dijck PW (2002). "On the safety of Aspergillus niger—a review". Applied Microbiology and Biotechnology. 59 (4–5): 426–35. doi:10.1007/s00253-002-1032-6. PMID 12172605. S2CID 26113037.
  7. Klich MA (2002). Identification of common Aspergillus species. Utrecht, The Netherlands, Centraalbureau voor Schimmelcultures. ISBN 978-90-70351-46-5.
  8. Samson, RA, Houbraken JA, Kuijpers AF, Frank JM, Frisvad JC (2004). "New ochratoxin A or sclerotium producing species in Aspergillus section Nigri" (PDF). Studies in Mycology. 50: 45–6.
  9. Varga, J.; Kocsube, S.; Toth, B.; Frisvad, J. C.; Perrone, G.; Susca, A.; Meijer, M.; Samson, R. A. (2007). "Aspergillus brasiliensis sp. nov., a biseriate black Aspergillus species with world-wide distribution". International Journal of Systematic and Evolutionary Microbiology. 57 (8): 1925–32. doi:10.1099/ijs.0.65021-0. PMID 17684283.
  10. "Aspergillosis | Types of Fungal Diseases | Fungal Diseases | CDC". www.cdc.gov. 2021-05-10. Retrieved 2022-10-26.
  11. "Information for Healthcare Professionals | Aspergillosis | Types of Fungal Diseases | Fungal Diseases | CDC". www.cdc.gov. 2022-07-11. Retrieved 2022-10-26.
  12. Handwerk, Brian (May 6, 2005) Egypt's "King Tut Curse" Caused by Tomb Toxins?. National Geographic.
  13. Javidnia, Javad; Ghotbi, Zahra; Ghojoghi, Aynaz; Solhjoo, Kavous; Alshahni, Mohamed Mahdi; Jeddi, Seyed Ali; Ahmadi, Bahram; Nouripour-Sisakht, Sadegh; Ansari, Saham; Shokoohi, Gholamreza (2022-06-01). "Otomycosis in the South of Iran with a High Prevalence of Tympanic Membrane Perforation: A Hospital-Based Study". Mycopathologia. 187 (2): 225–233. doi:10.1007/s11046-022-00626-9. ISSN 1573-0832. PMID 35347533. S2CID 247776123.
  14. Schuster, E.; Dunn-Coleman, N.; Frisvad, J.; van Dijck, P. (2002-01-01). "On the safety of Aspergillus niger – a review". Applied Microbiology and Biotechnology. 59 (4): 426–435. doi:10.1007/s00253-002-1032-6. ISSN 1432-0614. PMID 12172605. S2CID 26113037.
  15. Person, A. K.; Chudgar, S. M.; Norton, B. L.; Tong, B. C.; Stout, J. E. (July 2010). "Aspergillus niger: an unusual cause of invasive pulmonary aspergillosis". Journal of Medical Microbiology. 59 (Pt 7): 834–838. doi:10.1099/jmm.0.018309-0. ISSN 0022-2615. PMC 3052473. PMID 20299503.
  16. Mrudula, Soma; Murugammal, Rangasamy (2011). "Production of cellulose by Aspergillus niger under submerged and solid state fermentation using coir waste as a substrate". Brazilian Journal of Microbiology. 42 (3): 1119–1127. doi:10.1590/S1517-838220110003000033 (inactive 2022-11-05). ISSN 1517-8382. PMC 3768773. PMID 24031730.{{cite journal}}: CS1 maint: DOI inactive as of November 2022 (link)
  17. Pandey, Ashok; Selvakumar, P.; Soccol, Carlos R.; Nigam, Poonam (1999). "Solid state fermentation for the production of industrial enzymes". Current Science. 77 (1): 149–162. ISSN 0011-3891. JSTOR 24102923.
  18. Doriya, K.; Jose, N.; Gowda, M.; Kumar, D. S. (2016). "Solid-State Fermentation vs Submerged Fermentation for the Production of l-Asparaginase". Advances in Food and Nutrition Research. 78: 115–135. doi:10.1016/bs.afnr.2016.05.003. ISBN 9780128038475. ISSN 1043-4526. PMID 27452168.
  19. Cairns, TC; Nai, C; Meyer, V (2018). "How a fungus shapes biotechnology: 100 years of Aspergillus niger research". Fungal Biology and Biotechnology. 5: 13. doi:10.1186/s40694-018-0054-5. ISSN 2054-3085. PMC 5966904. PMID 29850025.
  20. Max, Belén; Salgado, José Manuel; Rodríguez, Noelia; Cortés, Sandra; Converti, Attilio; Domínguez, José Manuel (October 2010). "Biotechnological production of citric acid". Brazilian Journal of Microbiology. 41 (4): 862–875. doi:10.1590/S1517-83822010000400005. ISSN 1517-8382. PMC 3769771. PMID 24031566.
  21. "Inventory of GRAS Notices: Summary of all GRAS Notices". US FDA/CFSAN. 2008-10-22. Archived from the original on 11 October 2008. Retrieved 2008-10-31.
  22. Toma, Maria Afroz; Nazir, K. H. M. Nazmul Hussain; Mahmud, Md Muket; Mishra, Pravin; Ali, Md Kowser; Kabir, Ajran; Shahid, Md Ahosanul Haque; Siddique, Mahbubul Pratik; Alim, Md Abdul (2021). "Isolation and Identification of Natural Colorant Producing Soil-Borne Aspergillus niger from Bangladesh and Extraction of the Pigment". Foods. 10 (6): 1280. doi:10.3390/foods10061280. PMC 8227025. PMID 34205202.
  23. Papagianni, Maria (2007-05-01). "Advances in citric acid fermentation by Aspergillus niger: Biochemical aspects, membrane transport and modeling". Biotechnology Advances. 25 (3): 244–263. doi:10.1016/j.biotechadv.2007.01.002. ISSN 0734-9750. PMID 17337335.
  24. Baker, Scott E (2006). "Aspergillus niger genomics: Past, present and into the future". Medical Mycology. 44 (1): 17–21. doi:10.1080/13693780600921037. PMID 17050415. S2CID 50631 via Oxford Academic.
  25. Sackett, Douglas (2014). Citric Acid: Occurrence, Biochemistry, Applications and Processing. Nova Science Publishers Inc. p. 119. ISBN 978-1-63117-237-3.
  26. Pel, Herman J.; de Winde, Johannes H.; Archer, David B.; Dyer, Paul S.; Hofmann, Gerald; Schaap, Peter J.; Turner, Geoffrey; de Vries, Ronald P.; Albang, Richard; Albermann, Kaj; Andersen, Mikael R.; Bendtsen, Jannick D.; Benen, Jacques A. E.; van den Berg, Marco; Breestraat, Stefaan (February 2007). "Genome sequencing and analysis of the versatile cell factory Aspergillus niger CBS 513.88". Nature Biotechnology. 25 (2): 221–231. doi:10.1038/nbt1282. ISSN 1546-1696. PMID 17259976. S2CID 19831590.
  27. Ong, L. G. A.; Abd-Aziz, S.; Noraini, S.; Karim, M. I. A.; Hassan, M. A. (2004). "Enzyme Production and Profile by Aspergillus niger During Solid Substrate Fermentation Using Palm Kernel Cake as Substrate". Applied Biochemistry and Biotechnology. 118 (1–3): 073–080. doi:10.1385/ABAB:118:1-3:073. ISSN 0273-2289. PMID 15304740. S2CID 19063403.
  28. Di Stefano, Michele; Miceli, Emanuela; Gotti, Samantha; Missanelli, Antonio; Mazzocchi, Samanta; Corazza, Gino Roberto (2007). "The effect of oral alpha-galactosidase on intestinal gas production and gas-related symptoms". Digestive Diseases and Sciences. 52 (1): 78–83. doi:10.1007/s10620-006-9296-9. ISSN 0163-2116. PMID 17151807. S2CID 35435660.
  29. MacKenzie, D. A.; Spencer, J. A.; Le Gal-Coëffet, M. F.; Archer, D. B. (1996-04-30). "Efficient production from Aspergillus niger of a heterologous protein and an individual protein domain, heavy isotope-labelled, for structure-function analysis". Journal of Biotechnology. 46 (2): 85–93. doi:10.1016/0168-1656(95)00179-4. ISSN 0168-1656. PMID 8672288.
  30. Staiano, M.; Bazzicalupo, P.; Rossi, M.; d'Auria, S. (2005). "Glucose biosensors as models for the development of advanced protein-based biosensors". Molecular BioSystems. 1 (5–6): 354–362. doi:10.1039/b513385h. PMID 16881003.
  31. Ghoshdastider U, Wu R, Trzaskowski B, Mlynarczyk K, Miszta P, Gurusaran M, Viswanathan S, Renugopalakrishnan V, Filipek S (2015). "Nano-Encapsulation of Glucose Oxidase Dimer by Graphene". RSC Advances. 5 (18): 13570–78. doi:10.1039/C4RA16852F. S2CID 55816037.
  32. Mao, Shuhong; Liu, Yanna; Yang, Juanjuan; Ma, Xiaoyu; Zeng, Fang; Zhang, Zhaohui; Wang, Shan; Han, Haichao; Qin, Hui-Min; Lu, Fuping (2019-07-29). "Cloning, expression and characterization of a novel fructosyltransferase from Aspergillus niger and its application in the synthesis of fructooligosaccharides". RSC Advances. 9 (41): 23856–23863. Bibcode:2019RSCAd...923856M. doi:10.1039/C9RA02520K. ISSN 2046-2069. PMC 9069702. PMID 35530578.
  33. Guo, Wenwen; Yang, Haiquan; Qiang, Shumin; Fan, You; Shen, Wei; Chen, Xianzhong (2016-07-01). "Overproduction, purification, and property analysis of an extracellular recombinant fructosyltransferase". European Food Research and Technology. 242 (7): 1159–1168. doi:10.1007/s00217-015-2620-x. ISSN 1438-2385. S2CID 86927574.
  34. Singh, Harbhajan (2006). Mycoremediation: Fungal Bioremediation. John Wiley & Sons. p. 509. ISBN 978-0470050583.
  35. Soleimanifar, Hanieh; Doulati Ardejani, Faramarz; Marandi, Reza (2012-06-01). "Bio-Remediation of Acid Mine Drainage in the Sarcheshmeh Porphyry Copper Mine by Fungi: Batch and Fixed Bed Process". International Journal of Mining and Geo-Engineering. 46 (1): 87–103. doi:10.22059/ijmge.2012.51321. ISSN 2345-6930.
  36. "Aspergillus niger (ID 429) - Genome - NCBI". www.ncbi.nlm.nih.gov. Retrieved 2022-10-18.
  37. "Home - Aspergillus niger NRRL3". mycocosm.jgi.doe.gov. Retrieved 2022-10-18.
  38. Andersen MR, Salazar MP, Schaap PJ, et al. (2011). "Comparative genomics of citric-acid-producing Aspergillus niger ATCC 1015 versus enzyme-producing CBS 513.88". Genome Res. 21 (6): 885–97. doi:10.1101/gr.112169.110. PMC 3106321. PMID 21543515.
  39. Pel H, de Winde J, Archer D, et al. (2007). "Genome sequencing and analysis of the versatile cell factory Aspergillus niger CBS 513.88". Nat Biotechnol. 25 (2): 221–31. doi:10.1038/nbt1282. PMID 17259976.
  40. "Home – Aspergillus niger ATCC 1015 v4.0".
  41. Aguilar-Pontes, M.V.; Brandl, J.; McDonnell, E.; Strasser, K.; Nguyen, T.T.M.; Riley, R.; Mondo, S.; Salamov, A.; Nybo, J.L.; Vesth, T.C.; Grigoriev, I.V.; Andersen, M.R.; Tsang, A.; de Vries, R.P. (September 2018). "The gold-standard genome of Aspergillus niger NRRL 3 enables a detailed view of the diversity of sugar catabolism in fungi". Studies in Mycology. 91: 61–78. doi:10.1016/j.simyco.2018.10.001. ISSN 0166-0616. PMC 6231085. PMID 30425417.
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