Philippine Journal of Science
Vol. 145 No. 3, September 2016
the sub-tropics and some mid-latitude regions (Allan
et al. 1996; Kumar & Hoerling 1997; Gergis & Fowler,
2009). Thus, this phenomenon acts on a global scale with
strong influences on the functioning of marine as well
as terrestrial ecosystems (Ulloa et al. 2001; Holmgren
et al. 2001). Particularly in marine ecosystems, El Niño
affects individual organisms such as members of the
phytoplankton community (Morales-Ramirez &BrugnoliOlivera 2001; Iriarte & Gonzalez 2004), fishes (Cushing,
1981; Sharp & McLain 1993; Lehodey et al. 1997), corals
(Glynn 1984; Brown & Suharsono 1990); and marine
mammals (Benson et al. 2002; Crocker et al. 2006; Santos
& Aquino 2012).
Relation to Primary Productivity
During non El Niño events, the shallow thermocline
supports the natural upwelling in the EEP where nutrientrich cool water rises towards the surface (Meuser et al.
2013). However, the upwelling is decreased during El
Niño due to the eastward movement of warm surface water
that leads to the depression of thermocline. The upwelling
persists but the deeper thermocline brings nutrient-less
warm water resulting to the low primary productivity in
the EEP (Barber & Chavez 1983).
This is opposite in the EWP where the primary productivity
increases as in the 1997/1998 El Niño (Murtugudde et al.
1999). The resulting shallow thermocline and the strong
wind stress allowed water column mixing and brought
the surface well-mixed layer below and deep nutrientrich layer above that favoured primary production in the
region (Vialard & Delecluse 1998; Lehodey 2001). In the
Philippines, Cabrera et al. (2011) revealed that barrier
layer is one mechanism that inhibits upwelling in the
Bohol Sea during an El Niño event. They showed that
Damatac II & Santos: Possible Effects of El Niño on
Some Philippine Marine Fisheries Resources
barrier layer forms thinner during less precipitation, which
results to weak water stratification. Stratification prevents
water column mixing and its weakened condition during
El Niño allows deep nutrient-rich water to rise necessary
for the primary production (Cabrera et al. 2011).
Satellite images from SeaWiFS revealed that the primary
production in EWP was high and coastal upwelling was
enhanced during 1997/1998 El Niño compared to the
1998/1999 La Niña event that followed after (Figure
3). Lehodey (2001) also showed the same trend when
El Niño resulted to an increase in water productivity
during1982/1983 and 1997/1998using composite satellite
images. Maclean (1989) was able to link dinoflagellate,
Pyrodinium bahamense var. compressum, blooms to El
Nino in Papua New Guinea, Borneo, and the Philippines
from 1970 to 1988. Simultaneous to the 1982/1983 event,
a red tide was recorded on 1983 in Samar, Philippines
(Hallegraeff, 1989). These were followed by blooms on
1987 and 1991-1994 in Zambales, Philippines when mild
El Nino years were recorded (Caturao 2001).
Effects on Fisheries
One of the environmental factors that generally affects
the biology and migration of many fishes is temperature
(Magnuson et al. 1979; Gulland 1980; Binder et al.
2011). Magnuson et al. (1979) coined the concept of
thermal niche to refer the preferred temperature of fishes.
Skipjack tunas (Katsuwonus pelamis), for example, are
found mostly in the EWP because they prefer the warm
pool of water normally residing in the region (Lehodey
et al. 1997; Sugimoto et al. 2001). Mostly for pelagics,
the geographical distribution of fishes is influenced by
fluctuating temperature that even small changes may allow
the fish stock to extend it distribution further towards
Figure 3. Primary production in the Pacific Ocean. SEAWIFS satellite images of chlorophyll concentration during
1997/1998El Niño and 1999 La Niña (Source: NASA GES DISC Giovanni; http://disc.sci.gsfc.nasa.gov/)
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