Tag: Bees

  • Bee-neath the surface: Some bare ground needs no restoration!

    Bee-neath the surface: Some bare ground needs no restoration!

    By: Karin Sternberg with inputs from Sue Milton. All images were taken by the author.

    Karin Sternberg is an amateur naturalist and conservationist focused on the study of solitary bees and wild honeybees in the Great Karoo region. Over the past decade, she has conducted research into the ecologies of these essential pollinators, documenting more than one hundred wild honeybee nests during the course of her fieldwork. Her research is self-funded. Sue Milton is an arid zone restoration ecologist based in the Karoo region of South Africa. She is the owner of Wolwekraal Nature Reserve and Wolwekraal Conservation and Research Organisation (https://www.wcro.co.za) that promotes conservation, education and research in the Karoo.

    Wolwekraal Nature Reserve in the Great Karoo.

    There are 2755 bee species in sub-Saharan Africa, about 1300 of which occur in South Africa. Of these, only the honeybee and 10 species of mopane bees store honey, but all bees are important pollinators of a wide variety of plant species. They pollinate not only fruit and field crops, but most of the annuals, succulents and shrubs that make up the natural grazing lands, particularly in the more arid parts of South Africa. The arid, winter-rainfall region of South Africa known as the Succulent Karoo, is extraordinarily rich in succulent plants—and in the solitary bees that visit their flowers. Bee hotspots with around 700 bee species are found in the arid winter and aseasonal rainfall regions of South Africa.

    Nesting sites of the solitary bees Samba (left) and Colletes (right) on the inner edge of an aardvark burrow.

    In September 2024, I spent several weeks documenting the diversity and behaviour of solitary bees on Wolwekraal Nature Reserve which lies within the arid, aseasonal rainfall bee hotspot in the southern Karoo. This Nature Reserve protects rare succulent plants, most of which are pollinated by bees and flies, but the reserve is also used for conducting restoration trials. Most of these focus on revegetating patches of bare ground where over-grazing or corralling destroyed vegetation centuries ago and led to wind-blown loss of the shallow topsoil. Over millennia the vegetation here has adapted to withstand dramatic temperature fluctuations, from severe winter frosts to scorching summer heat at times exceeding 45°C, often enduring prolonged periods of drought. Extreme droughts, such as the 8-year-long dry period from 2015-2022, can kill 40 to 80% of long-lived plants, and because perennials do not maintain seed banks there is only limited regeneration of these after drought-breaking rain. Annuals, such as Gazania lichtensteinii (Asteraceae), emerge in their masses, saturating the landscape with colour and scent. This is a cue for the emergence of solitary bees which can remain dormant for months or years.

    The barren ground of a deflation hollow which is home to so much insect diversity (left) and the vegetation surrounding the deflation hollow (right).

    Most solitary bees nest in the ground and eroded patches and paths are favoured. During my studies, a seemingly desolate stretch of land caught my attention. This area, characterised by hard sediment, served as a shortcut from the jeep tracks to a wild colony of honeybees nesting in an aardvark (antbear) burrow.

    Dead honeybees and soldier termites in an aardvark burrow following a clash between the two species occupying it as nesting sites.

    The flora surrounding this bare ground is a stark reminder of the Karoo’s remarkable resilience, showcasing a rich tapestry of species that thrive in one of the world’s most harsh climates. Yet, amid this tenacity, certain areas of the landscape remain barren and hardened—perhaps trampled centuries ago by fat-tailed sheep held in corals overnight to protect them from predators, or more recently, during the 19th century when the natural rangeland was stocked way over the capacity of the vegetation to recover.

    Not long ago, I buried a wild hare—a tragic victim of roadkill—in an aardvark dugout: a deep, empty cavity in an area of hard ground I could never have dug myself. My sister, with her characteristic humour, had remarked, “Everyone needs an aardvark.” Indeed they do. For Aardvarks (Orycteropus afer) are extensive burrowers in sub-Saharan ecosystems, actively modifying their environment in the construction of shelters, and in excavating termitaria for food. This, in turn, generates nest sites and unique habitats that support a variety of other species. Burrows of aardvarks are used as shelter by foxes, porcupines, suricates, birds and honeybees. Moreover, when their large burrows collapse they form dams that capture seeds and water and initiate vegetation regeneration. As I reflected on the hare’s untimely death, I was once again captivated by the number of solitary bees nesting in holes on the inner edges of these burrows. Like the wild honeybees in these landscapes, many species are dependent on the aardvark for their nest sites; a reminder of nature’s interconnectedness. All around the dugout vibrant yellow swathes of Gazania lichtensteinii (Asteraceae) were in flower, their annual beauty enhanced by early winter rains.

    Annuals, Gazania lichtensteinii (Asteraceae), in flower on Wolwekraal Nature Reserve.

    The seemingly lifeless stretch of ground, a wind-scoured deflation hollow, was located close to this dugout. Deflation hollows form where vegetation is lost allowing wind to remove sandy topsoil and expose a hard subsoil comprising desert dust cemented with calcium carbonate. They are often associated with stone age human settlements of hunter-gatherers and herders. At this particular deflation hollow, there are various stone tools made from chert including a stone arrowhead. Standing on this hardened ground I was struck by a common misconception: that bare earth signifies death. Often ignored in environmental assessments, this apparently barren, hard ground was, in fact, teeming with life and intrigue. Initially mistaking the sounds I was hearing for a drone congregation area—where honeybee males dart through the sky waiting for a queen—I quickly realised that the sound was emanating from the ground.

    Male Tetraloniella solitary bees congregating around the nest holes, waiting for the females to emerge.

    A closer look revealed a fascinating gathering of male Tetraloniella bees. These short-horned, longhorn solitary bees were eagerly vying for a chance to mate with a female as she emerged from her underground nest. 

    Although solitary by nature—females work alone in building nests and provisioning food—these bees form dense aggregations in favourable environments. The apparent barrenness of the ground belied its role as a prime breeding ground, and I counted an astonishing 114 nests in the vicinity. 

    The evolutionary journey of bees, stretching back around 100 million years, began with solitary, predatory mud-dauber wasps, coinciding with the rise of flowering plants. Today, bees exhibit remarkable diversity. They range in size from a mere 2 mm to 39 mm and come in various forms, from densely hairy to smooth and shiny, often adorned with striking colours and patterns. Most species of solitary bees prefer to nest in the ground, often utilising plant materials or resin to line their nests. On this hard, bare ground, the thriving community of Tetraloniella served as a vivid testament to the vibrant life hidden beneath the surface.

    The deflation hollow measured 24 m by 13 m, with nests concentrated in a mere 12 square metres. The solitary male bees have one primary role: to mate. To prepare for mating in the earlier hours of the day, the males press their bodies against the sun-warmed sand, basking to boost their speed for the frenzied mating rituals to come. Many were covered in bright yellow Gazania lichtensteinii (Asteraceae) pollen, evidence of their flower visits for a source of energy-rich nectar.

    A small section of the Tetraloniella nest aggregation.

    In addition to the Tetraloniella, there were other species thriving in this environment. Among them were various species of leafcutter, dauber and mason bees (Megachilidae) that make their nests in pre-existing burrows. The leafcutters were using both leaves of Lessertia annularis (Fabaceae) as well as petals of Gazania lichtensteinii (Asteraceae) to construct thimble-like cells. One of the females used chewed reddish-pink plant pulp to line her burrow walls. The collected pollens for provision of larvae with food were from plants different from those used for nesting materials, possibly from Melobium candicans (Fabaceae) or Rushia bijliae (Aizoaceae), both in flower and in range of the nest sites and on which Megachilidae were sighted.

    Leafcutter, dauber and mason bees thriving on the deflation hollow.

    Tetraloniella female foraging on Berkheya spinosa (Asteraceae) (left) and leafcutter bees on Rushia bijlae (Aizoaceae) (centre) and Melobium candicans (Fabaceae) (right).

    A closer examination of the ground revealed a Camponotus rufopilosis ant carrying a dead conspecific. With mandibles featuring 5 to 7 teeth, these ants defend themselves by spraying formic acid when threatened. Meanwhile, a brown-and-white striped fly (probably in the genus Parisus) hovered above a bee nest, rapidly depositing 33 eggs. This Bombyliidae fly is known to parasitise a range of insects including bees. This observation might represent a new host record, and underscores the intricate relationships between host and parasite.

    The climax of my observations came when a chaotic scrum formed around a single nest hole, where male bees gathered in a frenzied attempt to mate with the emerging virgin female. As mating commenced, the male, mounted on the female, used his antennae to possibly fan a courtship pheromone believed to induce receptiveness in the female. Clasped tightly to her, other males attempted to dislodge him, displaying a complex mating struggle.

    A mating pair of short-horned longhorn Tetraloniella bees.

    While at the study site, I saw numerous other creatures including lizards (rock agama and Namaqua sand), cryptic Sphingonotis grasshoppers, beetles, robber flies (Asilidae), and a wingless female mutillid wasp, entering the nest of a solitary bee by using her abdomen to push aside stones. I also heard barking geckos and, with much patience, managed to photograph one in its burrow. Overhead many kinds of birds flew by, including two pale chanting goshawks. Beyond this deflation hollow, I discovered an extraordinary nest in the shallow of a stone with a Chalicodoma mason bee sealing it closed with mud.

    Camponotus rufopilosis ant carrying a dead conspecific (top left) Parisus fly laying eggs (top right) Cryptic Sphingonotis grasshopper (centre left) Mutilid wasp (centre right) Barking gecko (bottom left) Pale chanting goshawk (bottom right).

    This study illuminated a critical lesson: even the most unassuming, barren stretches of land may be far from lifeless. They may harbour intricate ecosystems teeming with life that defies initial perceptions. The conservation of these natural ground-nesting habitats is crucial. Therefore, these often-overlooked spaces must be included in environmental impact assessments, as they may support complex and often unnoticed biodiversity, and may be vital for the survival of solitary bees and other species. Though tiny, bees and other insects are the architects of entire ecosystems. Through pollination, they shape which plants thrive or fade, ultimately contributing to the plant composition of particular regions. This, in turn, largely determines the composition of insect communities that maintain overall biome structure. 

    Bare ground is too rich in life to be ignored; recognising such ecosystems is essential for maintaining biodiversity and ecological resilience, while still allowing for erosion control and restoration efforts such as reseeding rehabilitation and replanting on damaged lands to enhance ecosystem health. While much restoration effort in rangelands is concentrated on revegetating bare ground, some hard, bare soil patches should be left as habitat for specialised soil-nesting bees and pollen wasps. Diversity begets diversity. 

    For readers interested in a deeper exploration of wild honeybees and solitary bees, we invite you to refer to our published paper in The Science of Nature and to visit our website for additional resources and information.

  • Restoring Peruvian Forests for Bees

    Restoring Peruvian Forests for Bees

    A box of little angels (angelitos). Freddy sells their honey, as well as the nutritious, yellow pollen that accumulates near the opening.
    A box of little angels (angelitos). Freddy sells their honey, as well as the nutritious, yellow pollen that accumulates near the opening.

    There are bee hives all over Freddy’s farm in Oxapampa, Peru. An old tree stump houses a colony of curco negro, a stingless bee native to the eastern Andes. Another species, commonly called niño de monte real, has nearly been extirpated from the area. These bees are Freddy’s livelihood, and the basis for a collaborative reforestation project with one of the world’s most diverse national parks.

    Freddy is one of a handful of farmers cultivating land within the buffer zone of Yanachaga-Chemillén National Park. His family has been here since 1978 and has seen the area transform from forests full of Wattled Guans and Andean bears to eroded cow pastures and pesticide-laced rows of passion fruit.

    Now some of these degraded areas are being replanted with native trees. Peru’s national park service is using sticks and carrots to create a buffer around Yanachaga-Chemillén. Law mandates that farmers working in special use areas must only do agriculture that is nature-friendly – things with trees, like shade coffee. But the park service also offers funding to farming associations to help them make the transition. In Freddy’s case, the park service provided tree seedlings, fertilizer, and transport of these to his farm, at the end of a very rough road.

    Tree seedlings and an edible fruit, Solanum quitoensis, are sprouting up in this native tree plantation.
    Tree seedlings and an edible fruit, Solanum quitoensis, are sprouting up in this native tree plantation.

    Honey from the flowers of native trees. I tried some, and it was delicious.
    Honey from the flowers of native trees. I tried some, and it was delicious.

    Freddy and the national park managers see this arrangement as mutually beneficial. As we walked through his seven-year old plantation, Freddy pointed out native trees, like cedro (Cedrela sp.), and told me about the flowers they produce for his bees. At different times of the year, Freddy’s bees collect nectar and pollen from different trees. The artisanal honey he sells is well-known in Lima. These plantations also help protect the core of Yanachaga-Chemillén National Park by reducing outside influences, like domestic animals that wander into the forest.

    It’s not all gravy though. Programs like the one in Alto Navarro have not been as successful everywhere. Of seven farming associations that are currently receiving funds from Yanachaga-Chemillén, three are stalled with infighting. In one case, thousands of native tree seedlings were transported to a community six hours’ drive from Oxapampa; a year later most of the seedlings still sat unplanted by the side of the road.

    Within individual projects there are also compromises. One project area in Alto Navarro was planted in exotic pines – trees that are little more than wood factories. But these pines can be harvested and sold after just ten years, and in the meantime cows can graze in the understory. This short tree rotation makes it more economically attractive to plant other areas with native trees, which will not be available to harvest for much longer.

    Cow grazing lush grass in an exotic pine plantation at Alto Navarro.
    Cow grazing lush grass in an exotic pine plantation at Alto Navarro.

    Is this ecological restoration? In one sense, no. When Freddy plants native trees, he plans to use them to make honey, and then to cut them down and sell them for timber. The area will not turn into a mature forest. But these same trees are likely reducing edge effects, like elevated wind and light, in the adjacent national park forest. Trees planted just outside the old-growth forest could increase habitat area for plants and animals that live in the forest interior. At a broader scale, the collaborations between the national park and local farming associations are also likely restoring natural capital, stocks of natural assets like soil, water, and biodiversity.

    Freddy and me in a cow pasture at the edge of Yanachaga-Chemillén National Park. Freddy plans to plant native trees here in May 2015.
    Freddy and me in a cow pasture at the edge of Yanachaga-Chemillén National Park. Freddy plans to plant native trees here in May 2015.