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Swarming Bees and Pseudoscorpions

By Ujubee

The chelifer found in South Africa is mostly Ellingsenius fulleri and is believed to be a predator of small mites, wax moth larvae and other arthropods found in the nest debris. They often cling onto the legs of bees and are believed to be spread in this way to other colonies (Geoff Tribe).

When bees swarm, thousands of bees pour out of a nest only to collect a short distance away in a cluster, often on a branch, but otherwise on any other structure. In September 2017 we were watching bees on the move, temporarily clustered under a concrete table, with scout bees heading out to look for possible new nesting sites and, on their return, performing dances on the surface of the cluster (on other bees) as to the location of the nesting sites found. We watched and waited over a couple of days as slowly the number of possibilities and therefore dances diminished, as the colony came closer to a consensus as to the location of their new nesting site. On the third day of watching this intriguing behaviour and to our utter amazement, we noticed that we were not alone in our waiting.

Pseudoscorpions emerging

From the edge of the first layer of bees in direct contact with the table, we spotted a number of pseudoscorpions emerging. They appeared to be restless and hungry as they moved out and away from the hanging colony, using their pincers which had fine and relatively long hairs to sensitively feel for food in the cracks and gaps of the table undersurface.

They did not get very far as certain (dedicated?) bees seemed concerned and actively encouraged them back. There was a very clear communication between these two species and they were continually touching each other; the pseudoscorpions using their pincers either in a waving motion or by clasping at the bee, and the bees using their antennae and legs to touch and usher the pseudoscorpions back into the cluster.

From all of the fussing, one could tell that the pseudoscorpions were crucial to the bees. With colony activity and communication between the bees increasing as the colony prepared to leave for their final nesting site, the bees kept a close eye on their fellow-travellers. As more and more surface bees stopped dancing and started almost buzz-running and whirling like dervishes on the surface before pushing their way into the middle of the colony as paths clearly opened up for them, the vibrations and sounds of the bees increased and activity peaked. No doubt this was also a cue completely understood by the pseudoscorpions. For when the colony finally departed for their new nesting site, remarkably not a single pseudoscorpion was left behind. 

Holes opening in the cluster

 

These observations showed us an extraordinary interdependence between bees and pseudoscorpions, and highlighted how vital each are to the other that these wild bees on the move should take the pseudoscorpions along with them. The pseudoscorpions are absolutely necessary to the health and well-being of a colony and are very much part of the bees’ hygiene. We would be very interested to hear if this has ever been documented before?

A pseudoscorpion attaching itself to the leg of a bee

Swarming bees departing for their new nesting site

(All photos are copyrighted and are thus the property of the authors. If you wish to use any, please contact us at ujubeeconservation@gmail.com)

Pollination by deception

By Ujubee

Disperis capensis (Cape witch orchid) which has no nectar or other reward for bees, uses deception to attract the male carpenter bee to its flowers for pollination.

Mild winter days of late July, bring the first flowerings of Disperis capensis. The witch orchid times its display in this section of Cape Point Nature Reserve with the similarly coloured Muraltia (purplegorse). Overcast days make the purple of both Muraltia and the orchid stand out in an otherwise flower-barren patch. The orchid has a gentle, but beautiful sweet scent, reminiscent of both a component of Serruria villosa’s fragrance as well as Wurmbea hiemalis. Muraltia has little to no fragrance perceivable to the human nose.

Xylocopa rufitarsis visits Muraltia for nectar and sometimes mistakenly visits the delicately-scented orchid. Realising that there is no nectar to be had, he immediately flies off, the sticky viscidium adhering to the visiting bee and a pollinarium is withdrawn; it becomes immediately coiled so that the pollen massulae (individual pollen grains) become outwardly orientated so as to be correctly positioned to break off onto the stigmatic surface of the next Disperis visited by the bee. These are visible as individual grains on the sticky orchid stigma (Bill Liltved). The carpenter bee seems quite irritated with the pollinaria stuck under his thorax, but continues collecting nectar from Muraltia in a methodical way, only to make the same mistake with another orchid depositing the pollen in this way. 

Once D. capensis is fertilised it fades from its purple-pinks to a burnt orange and her bonnet folds in on itself.

It was previously thought that Disperis capensis only mimicked the nectar-secreting shrublet Polygala bracteolata, (Johnson 1994; Pauw & Johnson 1999), but these observations show how fascinating the unknown is and how much there still is to discover.

In a completely different biome in Cape Point Nature Reserve, we have found pockets of D. capensis resembling none of the other flowers surrounding them, neither in colour, shape nor fragrance. The only flowers in close proximity are Metalasia compacta, Diastella divaricata and Lobelias. However, the orchids in this location still have to be visited by a bee.

Disperis capensis and Muraltia. Both displaying similar colour combinations.

X. rufitarsis, realising that there is no nectar to be had, quickly flies off from the orchid carrying the pollinaria under his thorax

The pollen grains are outwardly orientated as he flies from flower to flower sipping nectar

An unpollinated orchid

A pollinated orchid

After fertilisation the orchid’s bonnet folds in on itself and turns a burnt orange

As a small exercise to show how a pollinarium is released, we mimicked a bee’s arrival by touching the sticky viscidium with a sterile tool, as a carpenter bee would make contact with the orchid with its thorax, and slowly withdrew the spring-loaded pollinarium from the anther sac while photographing it. Once released it immediately coiled.

We then took the pollinarium to a separate orchid, touching it on the sticky stigmatic surface as the carpenter bee would come into contact with it. Immediately the pollen grains broke off from the caudicle, the stalk to which the pollen masses are attached, leaving individual grains of pollen on the stigma.

Further reading:

The Cape Orchids (Liltved & Johnson 2012)