Tag: Galapagos

  • Trouble in Paradise: Why the Galapagos Islands Need Ecological Restoration

    Trouble in Paradise: Why the Galapagos Islands Need Ecological Restoration

    By: Anna Calle-Loor

    MESM Anna Calle-Loor has nearly five years of experience working in ecological restoration and biodiversity conservation in the Galapagos Islands. She is a former researcher for the Galapagos Verde 2050 (GV2050) Program of the Charles Darwin Foundation (CDF). She is also a member of the Galapagos’ Plants Specialists Group of the IUCN’s Species Survival Commission and the Society for Ecological Restoration. annagcalle@gmail.com

    The Galapagos archipelago is famous for inspiring Charles Darwin’s theory of evolution by natural selection after his visit in 1835. Its geographic and environmental characteristics have given rise to unique creatures like giant tortoises, pink iguanas, the second smallest penguins in the world, flightless cormorants, and the only marine iguana. Due to its extraordinary biodiversity, it was established as Ecuador’s first national park in 1959 and declared a UNESCO World Heritage Site in 1979.

    Bartolomé Island, one of the most photographed landscapes in the Galapagos, offering a view of turquoise bays and the Pinnacle Rock formation. Photo credit: Anna Calle

    Today, the islands’ biodiversity and volcanic landscapes continue to astonish visitors. But behind their reputation as a pristine paradise lies a story of vulnerability, degradation, and a need for ecological restoration.

    Islands: Biodiversity Hotspots and Extinction Hotspots

    Islands often have high levels of endemic species, but they are also highly vulnerable to extinctions. With small populations, restricted geographical ranges, and often having evolved with no predators, many island species are especially sensitive to disturbances.

    We have seen the consequences before. On Easter Island, deforestation and overexploitation of limited resources led to ecological collapse and the downfall of a once-thriving society. Mauritius Island lost the dodo, one of the first species recognized as extinct due to human activity, in the 1600s. Hawaii has earned the unfortunate title of “the extinction capital of the world” because of its high extinction rates of plants, insects, and birds. Guam has lost most of its native birds following the introduction of the invasive brown tree snake. All of these are reminders of how quickly biodiversity can disappear when island ecosystems are disrupted.

    The Galapagos are no exception. With ecosystems that have already suffered degradation, efforts now go beyond species conservation to include ecological restoration.

    A History of Degradation

    With a recorded human history that starts in 1535 with the arrival of the bishop Tomás de Berlanga, there have been many people that have visited the islands and inevitably have left a mark on them. The first visitors were pirates, whalers, prisoners, and a few early settlers. But they did not come alone. They brought rats, cats, goats, and other animals, many of which became invasive and highly destructive. To give you a scale of the problem, an eradication campaign known as Isabela Project was launched in 1997 and eliminated >140K goats from three islands. 

    Today, the pressure continues. Around 30,000 people live in the Galápagos, and nearly 300,000 tourists visit every year. Of course, this level of human activity requires infrastructure. The islands now have roads, towns, gravel mines, agricultural fields, and landfills, all of which exert pressure on the surrounding environment. The continuous flow of tourists and imported goods make introduced species a growing threat.

    In response, the Galápagos National Park Directorate and conservation NGOs like the CDF have launched multiple ecological restoration projects. I have collaborated in several of these efforts through the GV2050 Program, combining endangered species recovery with ecological restoration strategies.

    Recovering Galapagos Endangered Flora

    About 60% of Galapagos flora is threatened with extinction. This includes Lecocarpus lecocarpoides, a shrub with yellow daisy flowers that is found only on Española Island and a few nearby islets. Unfortunately, it has almost disappeared from the main island, with a single population left, likely due to past goat herbivory. Although goats were eradicated from Española in the 1970s, L. lecocarpoides has not recovered.

    That led us to investigate deeper into its biology. Were the remaining plants producing viable seeds? A study found that yes, there was a large number of seeds in the soil and 80% were viable. Then, why did we rarely see any germination? There was something preventing the seeds from germinating, and the same study hinted at the thick outer seed coat. 

    In our laboratory, we found that using a scarification technique consisting of carefully cutting the seeds under a stereoscope leads to high germination rates of 75%. As part of the investigation, we returned 29 adult plants to Española and produced over 6000 seeds to continue restoration efforts. These were promising results, but they also led to more questions.

    Lankester composite dissection plate of Lecocarpus lecocarpoides showing key plant structures. Created by N. Espinosa-Ortega. Originally published in Calle-Loor & Jaramillo (2024).

    How does the scarification process happen in nature? The interactions with other species might play a key role. We have seen moth larvae feeding on the seed coat without damaging the embryo. And we suspect Darwin’s finches might also be involved. They feed on the hard and spiny seeds of Tribulus, which are very similar to Lecocarpus seeds. Could they be helping L. lecocarpoides germinate? This remains to be investigated.

    Restoration of Arid Ecosystems

    The first island most visitors arrive to in the Galapagos is Baltra Island, where the main airport is located. But few realize it is one of the most degraded islands in the archipelago. A combination of invasive especies and the construction of a U.S. military base during World War II led to habitat destruction and likely to the local extinction of land iguanas, the main seed dispersers. Although they have since been successfully reintroduced through a successful captive breeding program, much of the vegetation has not recovered.

    Aerial photo of the U.S. military base “The Rock” in Baltra. Two airstrips, roads, and several buildings can be appreciated. Photo credit: U.S. Army

    A challenge when restoring an ecosystem that has been significantly altered, especially when historical records are scarce, is defining what restoration should aim to achieve. To help answer that, we compared Baltra with its neighbor island, North Seymour, which shares similar ecological conditions but has suffered less degradation. 

    Through two vegetation surveys we identified the plant composition and community structure that once likely existed on Baltra. For example, we found that the five most dominant woody and cacti species in North Seymour are Bursera graveolens, Castela galapageia, Cordia lutea, Opuntia echios, and Parkinsonia aculeata. The surveys also showed that Baltra’s most intact vegetation remains in the north and southwest, while the central region is sparsely vegetated.

    These results can serve as guides for future restoration efforts. For example, for choosing what species to plant and where to plant them. On Baltra, where infrastructure like the airport, roads, and Ecuadorian military base already shape the landscape, restoration should minimize potential conflicts with these other land uses. Instead of trying to recreate the past, efforts should aim to increase connectivity between the two remaining patches of native vegetation to support wildlife movement and seed dispersal.

    Recovering Keystone Species: The Opuntia Genus

    If there is one Galapagos plant that is underrated, is the Opuntia prickly pear cactus. These cacti are a food source for two of the most charismatic animals of the Galapagos, giant tortoises and land iguanas. They also provide native birds with food, shelter, and nesting structures, including Darwin finches and Galapagos mockingbirds, two groups of birds that inspired Darwin’s theory of evolution by natural selection. 

    Additionally, they are one of the best examples of plant adaptive radiation in the Galapagos. Their 14 endemic taxa show great variation in form and size, with up to 4-fold differences in height and 100-fold in seed size. Some grow as tall as 12 meters, about the height of a pine tree! Interestingly, tree-like forms are found on islands with giant tortoises, while shorter forms occur where tortoises are absent.

    Unfortunately, populations have declined in some islands and low regeneration is a pattern throughout the archipelago. This is exacerbated by the pressure from introduced and native herbivores.

    Because of its ecological importance, Opuntia was included in a restoration plan for four islands. Among the actions proposed for increasing its numbers is testing different propagation methods: planting seedlings, cactus pads, seeds from fresh fruits, and perhaps most intriguingly, seeds collected from tortoise and iguana droppings. There is evidence that passing through the digestive system of these animals helps scarify the seeds, improving germination.*

    But giant tortoises and land iguanas are not the only species that seem to be helping Opuntia regenerate. We have observed Opuntia growing underneath the protection of trees and spiny shrubs. Could they be shielding them from herbivores or ameliorating harsh environmental conditions? The answer remains unknown, as there have been no formal studies on plant-plant facilitation in the Galapagos. This presents a unique opportunity to deepen our understanding of plant facilitation in island ecosystems and how these interactions can be used to improve restoration outcomes.

    Left: Giant tortoise feeding on a broken branch of Opuntia cactus. Photo credit: Anna Calle-Loor.
    Right: Cactus finch feeding on the pollen of an Opuntia flower. Photo credit: Elena Espín.

    From Evolution to Restoration
    The Galapagos changed our understanding of how new species emerge. Now, they are challenging us to learn how to repair the ecosystems that sustain those unique species. This extraordinary archipelago is no longer just a living laboratory for evolution. It’s becoming a living laboratory for restoration ecology. And if we get it right, the Galápagos can once again inspire the world, this time by showing what successful ecological restoration can look like, not just here, but everywhere.

    * Estupiñán, S., & Mauchamp, A. (1995). Interacción planta–animal en la dispersión de Opuntia de Galápagos. Charles Darwin Foundation, Puerto Ayora.

  • Galápagos: A Restoration Reference for Arid Archipelagos?

    Galápagos: A Restoration Reference for Arid Archipelagos?

    Leighton Reid, a postdoctoral fellow in the Center for Conservation and Sustainable Development, reflects on tortoises, tree cacti, and ecological isolation.

    The Galápagos is the world’s most pristine tropical archipelago, and it is utterly unique. Nearly the entire island group is a national park, and 200,000 visitors per year come to witness its ecological singularities ‒ things like penguins and iguanas swimming side-by-side through a mangrove lagoon. The archipelago consists of fourteen large, volcanic islands and over a hundred smaller rocks and islets. Most of the land surface is low and dry. The easternmost island is about 900 km from mainland Ecuador, which is a probable source for the organisms that first began to colonize Galápagos when its volcanic peaks surfaced above the Pacific five million years ago. Indeed, the islands’ ecology is characterized by their isolation. Each island contains a relatively low diversity of organisms, many of which are unafraid of large primates. The biotas’ ecological simplicity and naiveté have facilitated major scientific discoveries, such as that small, heritable variations can have life or death consequences for individuals and ultimately change populations.

    One of the more bizarre life forms on Galápagos is the tree cactus. Prickly pear cacti (Opuntia species) are not particularly rare in the western hemisphere. In the United States, for instance, they occur in every state except Alaska. But over millions of years in Galápagos they have become quite varied. Some grow low to the ground, like the familiar continental forms, whereas others grow as trees, towering up to 15 m above the ground. The first botanist to speculate on this phenomenon was Alban Stewart (1911), a scientist-sailor with the California Academy of Science. He noted that erect, tree cacti tended to grow on islands that also housed another over-sized organism – the Galápagos tortoise (Chelonoidis nigra). Galápagos tortoises eat the fleshy cactus pads, which contain water – a limiting resource in arid environments. Stewart posited that the pressure from tortoises craning their long necks upward to munch cactus pads may have favored taller cacti.

    Opuntia echios var. barringtonensis is one of the taller tree cacti, presumably made that way by pad depredation by giant tortoises over many generations.
    Opuntia echios var. barringtonensis is one of the taller tree cacti, presumably made that way by pad depredation by giant tortoises over many generations.

    A low-growing cactus (Opuntia echios var. zacona) growing on Seymour Norte, an island that historically had no tortoises or iguanas. Herbivore pressure is visible here; an introduced land iguana (Conolophus subcristatus) has been taking bites from the lowest pads.
    A low-growing cactus (Opuntia echios var. zacona) growing on Seymour Norte, an island that historically had no tortoises or iguanas. Herbivore pressure is visible here; an introduced land iguana (Conolophus subcristatus) has been taking bites from the lowest pads.

    The relationship between tortoises and cacti was thrown into disarray after the Galápagos were discovered (accidentally) by Panamanian Bishop Tomás de Berlanga in 1535. By the late 19th Century, pirates and whalers removed thousands of tortoises from the islands, stowing the living animals in their holds as fresh meat for their long Pacific voyages. Eventually, overharvesting extirpated tortoises from several of the islands, with rippling effects on the rest of the ecosystem. Even where tortoises survived, they were often unable to reproduce because their offspring were eaten by introduced, European rats. Tree cacti were among the hardest hit; tortoise decimation stripped these plants of their main seed disperser.

    Reintroduced giant tortoise in the littoral zone on Isabela Island.
    Reintroduced giant tortoise in the littoral zone on Isabela Island.

    In response to tortoise declines, the Charles Darwin Foundation and the Galápagos National Park Service began a captive breeding program on Santa Cruz Island. Since 1965 they have raised and repatriated thousands of tortoises to several islands, waiting to release them until the tortoises have gotten big enough to be “rat proof”. By and large the reintroductions have been successful. On Española Island, for example, tortoise populations had crashed to fifteen individuals in 1960, but by 2007 more than 1500 individuals had been repatriated, and the population appeared stable. Moreover, these reintroduced tortoises reinitiated seed dispersal for an endangered tree cactus (Opuntia megasperma var. megasperma), increasing the number of juvenile plants.

    In addition to species reintroductions, ecological restoration in Galápagos has often entailed species eradications. Isolation historically shaped Galápagos ecology; nine hundred miles is a long way for a snake or a lizard to float on a vegetation raft. But Galápagos’s isolation was compromised by seafaring humans, who facilitated island colonization by domesticated animals and hundreds of plant species. Goats have been among the worst invaders. Until recently, goats overgrazed the islands’ vegetation, converting it into habitat unsuitable for native species. One of the most ambitious restoration projects in Galápagos has been eradicating goats from the archipelago. On the largest island, Isabela, more than 140,000 goats were killed in 2004-2005 using unconventional restoration tools, including helicopters, AR15 rifles, and Mata Hari goats – sterilized female goats induced into long-term estrus and fitted with radio telemetry collars to root out the last hold-outs. Goat eradication has resulted in spontaneous vegetation recovery. In addition to goats, the Charles Darwin Foundation and the Galápagos National Park Service have also eradicated eight exotic plant species. Other species will be harder to get rid of, like rats, guava, blackberry, and domestic cats.

    Despite its one-of-a-kind nature, can the world’s most pristine tropical archipelago serve as a reference for other arid, tropical islands? That is, can we evaluate the success of other island restorations by comparing them to the relatively intact Galápagos’s ecosystem structure, function, and composition? Perhaps to some extent we can. Historical contingency leads to unique island assemblages (for example: giant tortoises in Galápagos, giant skinks in Cabo Verde, giant lizards in Komodo), but many islands may be characterized by their lack of functional redundancy. In other words, if you remove a species from an island, the ecosystem consequences may be greater than if you had removed a species from a more diverse mainland ecosystem. Additionally, plant restoration in the arid Galápagos suggests that when disturbances are removed, vegetation can recover rapidly. This may also be true of other oceanic archipelagos, whose plants and animals have already colonized difficult terrain from a long way away.

    Land iguana and tree cacti (Opuntia echios var. echios) on Plaza Sur Island.
    Land iguana and tree cacti (Opuntia echios var. echios) on Plaza Sur Island.