Fig. 2. The study area in the Ría de Vigo (NW Spain). The red dots indicate the locations where the A. minutum strains were isolated.
[1]. We propose that such stable abiotic
conditions may facilitate the establishment and persistence of key biotic
interactions between the microalgae
and their microbiomes. Unfortunately,
experimental work demonstrating the
impact of such interactions on HABs remains scarce and mostly focuses on the
role of negative interactions, such as
grazing or algicidal bacteria, in bloom
termination [8].
Alexandrium minutum is a globally
distributed toxic HAB species. First reported in the Galician Rías in 1984 (as
Gonyaulax tamarensis) [9], A. minutum
is the most frequent agent of paralytic
shellfish poisoning events in Europe.
Its recurrence every spring and summer causes PSP toxins to accumulate in
shellfish above regulatory levels, as well
as conspicuous red tides in Mediterranean tourist areas. A. minutum thrives in
sheltered locations, and usually blooms
during periods of water-column stability in spring and summer following
upwelling pulses and/or riverine discharge in estuarine environments (Fig.
1). In the Ría de Vigo (Galicia, northwest
Spain), A. minutum is detected seasonally, from May to October, mainly in
Baiona Bay. This estuarine inlet, located
at the southern outer margin of the Ría
2
de Vigo, is relatively sheltered from the
dynamic upwelling circulation between
the ría and shelf waters [10] (Fig. 2). In
2018, an exceptional bloom in terms
of geographic extension and intensity
was associated with anomalous spring
upwelling patterns and rainfall [11]. A.
minutum populations spread throughout the Ría de Vigo and paralytic shellfish toxins (PSTs) were not only recorded in bivalve molluscs, but also in
non-traditional PST vectors including
mullets, mackerels, starfish, squid and
ascidians [12]. Since 2018, PSP contamination and water discolouration
caused by A. minutum blooms beyond
the traditionally restricted bays have
become quite common in the Galician
rías. On the other hand, the same rías
provide sheltered conditions for the extensive growth of eelgrass Zostera marina, hosting 61.5% of the total extension
of Z. marina meadows in the Iberian
Peninsula [13], which could potentially
restrict the proliferation of A. minutum.
An increase in the intensity and regional spread of A. minutum blooms could
occur in the coming years as weather
conditions change, yet the role of biotic interactions in bloom dynamics remains to be explored.
To unveil how biological factors
Fig. 3. Taxonomic composition of the bacterial microbiome of VGO1607 strain
of Alexandrium minutum, isolated from Baiona Bay.
HARMFUL ALGAE NEWS NO. 84 / 2026
Harmful Algae News An IOC Newsletter on Toxic Algae and Algal Blooms No. 84 September 2026 https://hab.ioc-unesco.org/ Unveiling biotic controls of Alexandrium minutum in the Ría de Vigo (NW Spain) Understanding biotic interactions that regulate the dynamics of harmful algal bloom (HAB) species r
Fig. 2. The study area in the Ría de Vigo (NW Spain). The red dots indicate the locations where the A. minutum strains were isolated. [1]. We propose that such stable abiotic conditions may facilitate the establishment and persistence of key biotic interactions between the microalgae and their micr
Fig. 4. Abundance of Alexandrium minutum (Am) (A) and bacteria (B) in quasi-axenic monocultures (blue lines) or co-cultures with Alteromonas sp. (Alt) (red lines) with B-vitamins (w B-vit, solid lines) or without B-vitamins (wo B-vit, dashed lines). (C) Taxonomic composition of the bacterial microbi
Fig. 5. Box and whisker plot showing the response ratios (RR) of Alexandrium minutum growth to the addition of different Zostera marina exudates at low (200300 μM DOC) and high (500600 μM DOC) concentrations. A total of 14 and 10 response ratios were included for the low and high concentration treat
dinoflagellates. It has been suggested that phenolic compounds produced by marine angiosperms, e.g. [25], may play a significant role in the negative interaction between these plants and dinoflagellate growth [56, 21]. However, this hypothesis has not yet been experimentally tested. Acknowledgement
Intense algal bloom during the austral summer in Inglesa and Calderilla Bays (Atacama, Chile): phytoplankton monitoring, environmental observations and implications for coastal aquaculture Fig. 1. Seawater discoloration in Inglesa Bay sector, Caldera during the first week of February 2026. (A) and
Fig. 3. Dominant dinoflagellate species in the algal bloom. (A) Akashiwo sanguinea and (B) Tripos cf. furca. radically (2005, 2009, 2014, and 2016), including blooms of the toxic dinoflagellate species such as Protoceratium reticulatum, which produces yessotoxins (YTX) and has been detected along t
Fig. 5. Abundance of other microplankton groups in February 2026 at the five sampling stations in the Caldera Bay System. 2. Rodríguez L 1978. Noticiario Mensual del Museo de Historia Natural de Chile 22(266):69 3. Rodríguez L 1985. Rev Biol Mar 21:173197. https://hdl.handle. net/20.500.14330/PER01
An overview of the 20182025 monitoring, detection, and control programme for Alexandrium catenella in Southern Chile The frequency, persistence, and geographical extent of harmful algal blooms (HABs) caused by the dinoflagellate Alexandrium catenella have increased in southern Chile over recent deca
3. 4. 5. 6. 7. 8. Fig. 2. Annual number of analysed samples and positive detections between 2018 and 2025. Bars represent the total number of samples collected each year. The red area indicates positive results (number shown at the base of each bar), whereas the blue area corresponds to negative res
A mixed bloom of Prorocentrum lima species complex and Aphanocapsa sp. under hypersaline conditions in a mangrove lagoon of the Seaflower Biosphere Reserve, Colombian Caribbean Fig. 1. Old Point Regional Park, San Andrés Island, Seaflower Biosphere Reserve, showing the small mangrove lagoon where t
Table 1. Measurements of physicochemical characteristics recorded during the mixed bloom of the Prorocentrum lima species complex and Aphanocapsa sp. Old Point, Colombia Lago delle Nazioni, Italy Paracas Bay, Peru 14 April 2026 December 2019 January 2020 2729 August 2017 4.5 106 4.7 107 2
morphological and molecular identification of benthic Prorocentrum and cyanobacteria with measurements of dissolved inorganic nutrients, dissolved and particulate organic carbon, phycotoxins, microbial community composition, sediment resuspension, and water-exchange and salinity dynamics. Acknowled
Forthcoming IOC-FAO IPHAB The Eighteenth Session of the IOC-FAO Intergovernmental Panel on Harmful Algal Blooms (IPHAB-XVIII) will meet on 16-18 March 2027 at FAO Headquarters in Rome. The establishment of an intergovernmental panel on HABs in 1991 was a response to the need to improve the manageria
The second International Conference on Ostreopsis Development ICOD 2, French Basque Country, June 1011, 2027 Over the last decades increasing attention has been paid to benthic dinoflagellates belonging to the genus Ostreopsis. The presence of these microalgae has been reported in many temperate re
NEW! IOC Toxins database The IOC Toxins database is now on-line. It contains reference information about toxins, some of which are associated with Harmful Algal Events. The IOC Toxin Reference List is work in progress. Some sections are complete, some are partly complete and some are empty. The Lis