Showing posts with label Colletes. Show all posts
Showing posts with label Colletes. Show all posts

Saturday, April 11, 2026

The Beetle and the Bee

At the end of February, I finally found a beetle I had been looking for here, for years. Perhaps I had not been scouting for it early enough, but we barely had a winter this year, and I suspect that most years it would have been evident in March. The key was finding an aggregation of its host organism.

Tricrania sanguinipennis is a blister beetle in the family Meloidae. The adult insects measure 9-15 millimeters, but are bright enough, and active enough, that they are easily seen. Their wings, hidden under their red, leathery elytra, are almost vestigial, so they are flightless. Instead they crawl, but rather rapidly, over the surface of the soil, periodically digging where they detect the possible presence of a host.

Kansas is about as far west as this beetle is found, though there are records well north into Saskatchewan, Canada. It occurs over the eastern U.S. to extreme northern Florida, and up into adjacent southern Canada.

The limiting factor is that Tricrania sanguinipennis is a parasitoid of solitary bees that nest in dense aggregations, namely cellophane bees in the genus Colletes.

We have the Unequal Cellophane Bee, Colletes inaequalis, nesting in our yard and/or the adjacent neighbor’s lawn, depending on the year, but those locations are apparently blister beetle-free. It took finding a small aggregation of the bees in a forested park to locate the beetles.

An Unequal Cellophane Bee lurks just inside the entrance to her burrow.

The bees nest in burrows, ideally in sandy soil. The vertical, subterranean tunnels branch into several individual cells, each one an “apartment” for a single bee larva. The grub feeds on a nearly liquid loaf of pollen and nectar. The walls of its room are coated in a type of natural plastic manufactured in glands in its mother’s abdomen, which essentially waterproofs the chamber, and retards mold and fungus.

Back to the beetles. What the female beetles lack in mobility, they more than make up for in fecundity. Each lady can produce hundreds of eggs, over a thousand in some documented instances. How, then, do the beetles gain entry into these tunnels? The answer is that they do not. The larvae do.

The larval stage is unusually lengthy, progressing through six instars. An instar is the interval between molts. It is also strange in that it includes hypermetamorphosis. In this case that means the larval form changes radically in both appearance and behavior from one molt to the next.

Several male Unequal Cellophane Bees waiting for females to emerge.

The first instar larva that emerges from the egg is a sleek, streamlined, highly mobile bee-seeking missile called a triungulin. At the time they are active, it is almost exclusively male Colletes bees that are active, buzzing about and frequently landing to investigate a potential site where a female could emerge. It is at these brief moments when a blister beetle triungulin scampers aboard, affixing itself to the hairs on the underside of the bee’s abdomen.

Oops! An overeager male mistakes another male for a female.

When the male bee at last is able to mate, the triungulin transfers to the female bee. In at least a few instances, the triungulin may attach directly to a female bee that it encounters on the ground. She will eventually, and unwittingly, ferry that parasite, and probably several others, to her new nest burrow. Once inside, it disembarks and infiltrates one of the subterranean nest cells.

The beetle larva usually consumes the egg of the host immediately, but not always. The bulk of its diet will be the honey and pollen left by the bee for its offspring in the cell. It may be a frequent occurrence that more than one beetle larva invades a single bee cell. In that event, cannibalism of the competition resolves the conflict.

The meal of the host egg or larva is usually enough nutrition to trigger the beetle larva’s molt to the next instar. This results in a shocking change from that sleek, active larva into the insect equivalent of a couch potato. The second instar is, shall we say….rotund, and boat-shaped. It commences feeding on the pollen and nectar stores in the cell of the now missing bee offspring. The insect retains this form for the remainder of its larval life. The first three instars shuck their old exoskeleton completely, but the fourth and fifth instars retain each molt in its entirety. Think of it as an object inside a balloon (inside another balloon by the fifth instar). Those larvae actually shrink in size to fit inside the shed “skins.” When molting into the pupa stage, the sixth molt is again broken during shedding, and compacted at the rear of the pupa, which is still inside those other exoskeleton balloons.

It takes until late summer or early fall for the life cycle to complete, the adult beetle remaining encased in its final one or two larval exuviae, where it overwinters, still inside the cell in the host’s nest burrow.

You would think that the bee species hosting this diabolical beetle would be decimated by it, but such is not the case. Each spring there are plenty of the adult bees. What is more of a threat is the potential disconnect between the bees and their nectar plants. Colletes inaequalis visits flowering trees almost exclusively, especially Eastern Redbud, and maple trees. As the phenology of the blooming cycles becomes increasingly unpredictable thanks to climate change, the appearance of the flowers may cease to always coincide with the emergence of the bees that pollinate them.

Sources: Messinger Carril, Olivia, and Joseph S. Wilson. 2021. Common Bees of Eastern North America. Princeton, NJ: Princeton University Press. 286 pp.
Parker, J.B. and Adam G. Boving. 1925. “The Blister Beetle Tricrania sanguinipennis - Biology, Descriptions of Different Stages, and Systematic Relationship,” Proc U.S. Nat. Mus. 64(2491): 1-40. This is a wonderfully exhaustive article, with illustrations of all larval instars.

Thursday, March 31, 2016

Polyester Bees

Note: I encourage you, my followers, to collaborate with me in telling stories of the insect and arachnid world. If you have images or videos that illustrate arthropods you would like to know more about, please contact me and I will happily create a post around your visuals. BugEric247ATgmailDOTcom. Thank you.

Colletes female in burrow © MaLisa Spring

Spring is progressing in fits and starts here on the Front Range in Colorado, but elsewhere flowers are blooming and bees are buzzing. Thanks to Jenny Roberts of Massachusetts, Rhonda Matteson of Indiana, and MaLisa Spring of Ohio sharing their images, I am able to write about one of my favorite insects, the "polyester bees" in the genus Colletes, family Colletidae.

Burrows of Colletes © Jenny Roberts

Polyester bees are among the very first solitary bees that one sees in spring, and just about the last to be seen in autumn. While some species are bivoltine, having two generations per calendar year, many are univoltine: there is one generation per year, either in spring or fall.

How did these bees get their name, you may ask. Female solitary bees in many families produce oral and/or abdominal secretions that are useful in waterproofing the underground chambers where their larval offspring develop. Colletes females first lay down a layer of saliva over the walls of a cell, then add a coat of "varnish" from the Dufour's gland in their abdomen. The result is a natural polymer that resembles cellophane. It forms a plastic baggie of sorts that keeps the mostly liquid pollen and nectar supply fresh for the single larva that will feed and grow inside the cell.

Dense nesting aggregation of Colletes, plus males © Rhonda Matteson

No matter where you live in North America, there are polyester bees to be found. There are 99 known species on our continent, north of Mexico, with the greatest diversity in the desert southwest, followed by the central plains and southern New England.

Colletes are most conspicuous in their nesting grounds. They tend to prefer sandy soil, but even bare patches in lawns will do. Even though each female excavates her own burrow, hundreds, even thousands, of bees may occupy a small area. This gives the impression that they are social, and sometimes causes a panic attack in homeowners who see them as a potential threat.

Ball of mating Colletes © Rhonda Matteson

The males literally go where the girls are, so they add to the numbers. The guys are also highly aggressive in pursuing females, creating mating balls like the one captured in pixels by Rhonda (and in Mark Berman's video, link in "Sources"). Males have longer antennae than females, and lack the brush of pollen-collecting hairs (scopa) on each hind leg. Males also land frequently on the ground in nesting areas. The females are too busy going about their business to pause for long, if at all.

Male Colletes sp., Colorado

The other likely place you will find these bees is, of course, on flowers. Ironically, on this very day in the year 2000, I collected several specimens that were foraging in the flowers of a redbud tree in Forsyth, Missouri. Many Colletes will take pollen and nectar from a variety of sources ("polylectic"), but an equal number or more are "oligolectic," meaning they are faithful to only a select variety of related flowers (at family- or genus-level of classification).

Face of female Colletes showing forked "tongue" © Discover Life

Identifying polyester bees is not terribly easy. They closely resemble mining bees in the genus Andrena, and larger sweat bees in the genera Halictus and Lasioglossum. The conclusive characters needed for a concrete ID are also pretty subtle. Colletes have a forked "tongue," the mouthparts bifurcated at the end. Unless the tongue is extended and visible, though, how would you know? The wing veins are another tell-tale clue. The forewing has three submarginal cells, located beneath the marginal cell that is immediately below the leading edge of the wing. Beneath the submarginal cells are recurrent veins. In Andrena the second recurrent vein is relatively straight, while in Colletes it is distinctly sinuous, or S-shaped. Polyester bees have a heart-shaped face in a head-on view, while mining bees have a more round face.

Female Colletes from Missouri showing s-shaped second recurrent vein

Conservation of pollinators is critical in this day and age, and more people need to know about our native solitary bees. Large aggregations of Colletes may nest in the same place year after year, so it is imperative that homeowners, park managers, and others understand that the bees need to be left in peace. Significant populations can be wiped out in one fell swoop otherwise.

Female Colletes emerging from burrow © Jenny Roberts

Thanks again to Jenny, Rhonda, and MaLisa for sharing their images. Be sure to check out other online resources to learn more.

Male Colletes on "skunk bush" sumac flower in Colorado

Sources: Wilson, Joseph S. and Olivia Messinger Carril. 2016. The Bees In Your Backyard. Princeton, New Jersey: Princeton University Press. 288 pp.
Berman, Mark. 2013. "Mining bees, (Colletes)" Video.
ProfMatteson. 2009. "Ground-nesting Colletes" Video.