Gracilaria

Last updated

Gracilaria
Gracilaria2.JPG
Scientific classification OOjs UI icon edit-ltr.svg
Clade: Archaeplastida
Division: Rhodophyta
Class: Florideophyceae
Order: Gracilariales
Family: Gracilariaceae
Genus: Gracilaria
Greville, 1830
Species

see text

Gracilaria, also known as irish moss or ogonori, [1] is a genus of red algae in the family Gracilariaceae. It is notable for its economic importance as an agarophyte meaning that it is used to make agar, as well as its use as a food for humans and various species of shellfish. Various species in the genus are cultivated among Asia, South America, Africa and Oceania. They produce over 90% of the world's agar. [1]

Contents

Taxonomy

Gracilaria contains the following subtaxa: [2]

Distribution

Gracilaria are found in warm waters throughout the world, though they also occur seasonally in temperate waters. It can not tolerate temperatures below 10 °C (50 °F).[ clarification needed ]Gracilaria are found in all oceans except the Arctic. Their center of diversity is the Western Pacific, where they have been traditionally cultivated as a source of agar. [3] [4]

Use

Ogonori Ogo.jpg
Ogonori
Kkosiraegi-muchim (seasoned gracilaria) Kkosiraegi-muchim.jpg
Kkosiraegi-muchim (seasoned gracilaria)

Gracilaria is used as a food in Filipino, Hawaiian, Japanese, Korean and Sri Lankan cuisines. [5] [6] In Japanese cuisine, it is called ogonori or ogo, and used to make tokoroten . In the Philippines, it is called gulaman and used to make a gelatin substitute. [7] In Jamaica, it is known as Irish moss. [8] In Korea, it is known as kkosiraegi.

Gracilaria oligosaccharides with degree of polymerization 6 prepared by agarase digestion from agar-bearing Gracilaria sp. polysaccharides have been shown to be an effective prophylactic agent during in vitro and in vivo experiments against Japanese encephalitis viral infection. The sulfated oligosaccharides from Gracilaria sp. seem to be promising candidates for further development as antiviral agents. [9]

In the Philippines, Gracilaria have been harvested and used as food for centuries, eaten both fresh or sun-dried and turned into jellies. The earliest historical attestation is from the Vocabulario de la lengua tagala (1754) by the Jesuit priests Juan de Noceda and Pedro de Sanlucar, where golaman or gulaman was defined as "una yerva, de que se haze conserva a modo de Halea, naze en la mar" ("an herb, from which a jam-like preserve is made, grows in the sea"), with an additional entry for guinolaman to refer to food made with the jelly. [10] [11]

In Japan, Gracilaria has been used to produce funori (府海苔), an agar-based glue, since the 17th century. [12]

In Sri Lanka, Gracilaria has been used to make a seaweed soup that also incorporates coconut cream and lime. [6] It is also used to create seaweed jelly, a local sweetmeat in the Puttalam District of northwestern Sri Lanka. [6]

Aquarium trade

Gracilaria commonly appears as a macroalgae for sale in the aquarium trade. It is highly palatable to tangs [13] and many other herbivorous fish, and its nutrient uptake ability makes it a suitable choice for a refugium.

Ecology

Gracilaria are susceptible to infection by the parasitic oomycete Pythium porphyrae . [14] Reproduction by Gracilaria gracilis is supported by Idotea balthica – the first known case of an animal helping algae reproduce. [15] [16]

Related Research Articles

<span class="mw-page-title-main">Sea lettuce</span> Genus of seaweeds

The sea lettuces comprise the genus Ulva, a group of edible green algae that is widely distributed along the coasts of the world's oceans. The type species within the genus Ulva is Ulva lactuca, lactuca being Latin for "lettuce". The genus also includes the species previously classified under the genus Enteromorpha, the former members of which are known under the common name green nori.

<span class="mw-page-title-main">Delesseriaceae</span> Family of algae

The Delesseriaceae is a family of about 100 genera of marine red alga.

<i>Halymenia</i> Genus of algae

Halymenia a genus of a macroscopic red algae that grows in oceans worldwide.

<span class="mw-page-title-main">Rhodomelaceae</span> Family of algae

Rhodomelaceae is estimated to be the largest red algae family, with about 125 genera and over 700 species.

<i>Rhodymenia</i> Genus of algae

Rhodymenia is a genus of red algae, containing the following species:

<i>Laurencia</i> Genus of algae

Laurencia is a genus of red algae that grow in temperate and tropical shore areas, in littoral to sublittoral habitats, at depths up to 65 m (213 ft).

<i>Chondria</i> (alga) Genus of algae

Chondria is a red alga genus in the family Rhodomelaceae.

<i>Ectocarpus</i> Genus of seaweeds

Ectocarpus is a genus of filamentous brown alga that includes a model organism for the genomics of multicellularity. Among possible model organisms in the brown algae, Ectocarpus was selected for the relatively small size of its mature thallus and the speed with which it completes its life cycle. Tools available for Ectocarpus as a model species include a high quality genome sequence and both forward and reverse genetic methodologies, the latter based on CRISPR-Cas9.

<i>Colaconema</i> Genus of algae

Colaconema is a genus of marine red algae. It is the only genus in the family ColaconemataceaeJ.T.Harper & G.W.Saunders which is the only family in Order ColaconematalesJ.T.Harper & G.W.Saunders.

<i>Dictyota</i> Genus of seaweed in the family Dictyotaceae

Dictyota is a genus of brown seaweed in the family Dictyotaceae. Species are predominantly found in tropical and subtropical seas, and are known to contain numerous chemicals (diterpenes) which have potential medicinal value. As at the end of 2017, some 237 different diterpenes had been identified from across the genus.

<i>Champia</i> Genus of algae

Champia is a genus of red algae in the family Champiaceae, first described in 1809 by Nicaise Auguste Desvaux

<i>Aglaothamnion</i> Genus of algae

Aglaothamnion is a genus of algae belonging to the family Callithamniaceae.

<span class="mw-page-title-main">Gracilariaceae</span> Family of algae

The Gracilariaceae is a small family of red algae, containing several genera of agarophytes. It has a cosmopolitan distribution, in which 24 species are found in China, six in Great Britain and Ireland, and some in Australia and Chile.

<i>Callithamnion</i> Genus of algae

Callithamnion is a genus of algae belonging to the family Callithamniaceae.

<span class="mw-page-title-main">Liagoraceae</span> Family of algae

Liagoraceae is a family of red algae (Rhodophyta) in the order Nemaliales. The type genus is LiagoraJ.V.Lamouroux.

<i>Caloglossa</i> Genus of algae

Caloglossa is a genus of algae in the Delesseriaceae.

References

  1. 1 2 "Gracilaria spp". Seaweed Insights. Hatch Innovation Services. Retrieved 24 April 2024.
  2. M.D. Guiry in Guiry, M.D. & Guiry, G.M. 17 September 2021. AlgaeBase. World-wide electronic publication, National University of Ireland, Galway. https://www.algaebase.org/search/genus/detail/?genus_id=14  ; searched on 03 August 2022
  3. McLachlan, J.; Bird, C.J. (1984). "Geographical and experimental assessment of the distribution of Gracilaria species (Rhodophyta: Gigartinales) in relation to temperature" (PDF). Helgoländer Meeresuntersuchungen. 38 (3–4): 319–334. Bibcode:1984HM.....38..319M. doi:10.1007/BF02027684. S2CID   20852797.
  4. de Oliveira, E.C.; Plastino, E.M. (1994). "Gracilariaceae". In Akatsuka, Isamu (ed.). Biology of Economic Algae. SPB Academic Publishing. ISBN   9789051030938.
  5. Kyaw, Aye, The Production of Gracilaria eduli in Burma, Report of the Training Course on Gracilaria Algae, Manila, Philippines, 1–30 April 1981, accessed 27 April 2013
  6. 1 2 3 Subasinghe, S; Jayasuriya, A (1990). Gracilaria Production and Utilization in the Bay of Bengal: Report of a Seminar Held in Songkhla, Thailand, 23-27 October 1989. Bay of Bengal Programme for Fisheries Development, 1990. p. 72.
  7. Davidson, Alan (2004). Seafood of South-East Asia: A Comprehensive Guide with Recipes. Ten Speed Press. p. 197. ISBN   978-1-58008-452-9.
  8. Thomas J. Goreau; Robert Kent Trench (2013). Innovative Methods of Marine Ecosystem Restoration. CRC Press. pp. 193–. ISBN   978-1-4665-5773-4 . Retrieved 30 June 2013.
  9. Kazłowski B, Chiu YH, Kazłowska K, Pan CL, Wu CJ (August 2012). "Prevention of Japanese encephalitis virus infections by low-degree-polymerisation sulfated saccharides from Gracilaria sp. and Monostroma nitidum". Food Chem. 133 (3): 866–74. doi:10.1016/j.foodchem.2012.01.106.
  10. Albert H. Wells (1916). "Possibilities of Gulaman Dagat as a Substitute for Gelatin in Food". The Philippine Journal of Science. 11: 267–271.
  11. de Noceda, Juan; de Sanlucar, Pedro (1754). Vocabulario de la lengua Tagala. Imprenta de la compañia de Jesus. pp. 101, 215.
  12. Swider, Joseph R.; Smith, Martha (2005). "Funori: Overview of a 300-Year-Old Consolidant". Journal of the American Institute for Conservation. 44 (2): 117–126. doi:10.1179/019713605806082329. S2CID   191358224 . Retrieved 9 April 2022.
  13. Volynkin, Alex (2013-09-28). "Growing Gracilaria Parvispora". Salt Water Reefing. Retrieved 2016-12-18. This brings me back to Achilles's diet. The guy apparently really likes Gracilaria macro algae. No wonder, especially considering that the grass is indigenous to Hawaii as well, and is considered the favorite food for tangs.
  14. Spencer, M. A. (2004). "Pythium porphyrae. (Descriptions of Fungi and Bacteria)". IMI Descriptions of Fungi and Bacteria. 162 (Sheet 1617). Retrieved 10 October 2017. A description is provided for Pythium porphyrae. Information is included on the disease caused by the organism, its transmission, geographical distribution, and hosts. DISEASES: Red-rot disease, red-wasting disease. HOSTS: Bangia atropurpurea, Callophyllis adhaerens, Polyopes affinis (syn
  15. Roth, Annie (28 July 2022). "Like Bees of the Seas, These Crustaceans Pollinate Seaweed". The New York Times. Retrieved 21 August 2022.
  16. Lavaut, E.; Guillemin, M.-L.; Colin, S.; Faure, A.; Coudret, J.; Destombe, C.; Valero, M. (29 July 2022). "Pollinators of the sea: A discovery of animal-mediated fertilization in seaweed" (PDF). Science. 377 (6605): 528–530. Bibcode:2022Sci...377..528L. doi:10.1126/science.abo6661. ISSN   0036-8075. PMID   35901149. S2CID   251159505.