There are two noway maples near my house, one red and one variegated. I tried to make them look like some kind of oni/trolls. The little one is Drum and his big sister is Selma. The frog doesn't have a name yet.
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There are two noway maples near my house, one red and one variegated. I tried to make them look like some kind of oni/trolls. The little one is Drum and his big sister is Selma. The frog doesn't have a name yet.
Snail-Case Bagworm Moths: these caterpillars use silk, sand, and other bits of debris to build spiral-shaped cases around themselves, and this particular subspecies is entirely female
The scientific name of this species is Apterona helix, but it's commonly known as the snail-case bagworm moth, because the caterpillars create spiral-shaped cases that resemble snail shells. The cases shield the developing insects from predators and parasites, and they serve the same purpose during the pupal and adult stages of development.
Above: snail-case bagworms in their cases
Each case is constructed from sand, soil, and bits of debris that are pasted together with silk; the structure initially has a straight and relatively narrow appearance, but more material is added as the caterpillar grows, gradually causing the case to become coiled.
Above: more of the spiral-shaped structures
The North American variant of this species is entirely female, and it reproduces asexually by engaging in a process known as parthenogenesis. The same all-female subspecies can also be found throughout most of Central and Western Europe.
The adult moths are completely wingless, and they have bald, grub-like bodies with only vestigial legs. Once they reach maturity, they lay their eggs inside their spiral-shaped cases and then finally emerge from the structures, dying shortly thereafter.
Above: the adult moth
As this article explains:
This insect reproduces parthenogenetically, is wingless in all stages, and spends its entire existence within its case, which it constructs using silk, soil particles, and fecal matter. The bagworm case expands in a helical or coil-spring fashion as the larva grows. The completed bagworm case typically has three whorls or coils and is approximately 4mm in diameter.
When it reaches maturity, the larva, carrying its case, will climb any available tree, shrub, fence, building, or vehicle, attach itself to the surface with silk, and pupate within the case. The adult later emerges, lays eggs in the case, and then crawls out to die.
Above: a tiny snail-case bagworm resting on a strawberry
The snail-case bagworm moth is native to Europe and Western Asia, but it was accidentally introduced to the United States in the 1940s. It's now recognized as an established species in many states throughout the country, and it has also been established in several Canadian provinces.
Above: Apterona helix
This species is sometimes referred to as Apterona helicoidella or Apterona crenulella. Some sources use these names to identify different populations (i.e. Apterona helix in North America, Apterona helicoidella in Central Europe, and Apterona crenulella in Southern Europe) but they are officially regarded as members of the same species.
Sources & More Info:
Penn State University: Snailcase Bagworms
iNaturalist: Genus Apterona
South Dakota State University: The Snailcase Bagworm
The Natural History Society of Upper Lusatia: Spread and Lifestyle of the Snail-Shell Bagworm
Washington State University: Apterona helix (PDF)
British Columbia Wine Grape Council: Snailcase Bagworms
Agro News: Those Small, Spiral-Shaped Mud Cases Could Contain Snailcase Bagworms
Colorado State University: The Snail-Case Bagworm (PDF)
Proceedings of the Entomological Society of Washington: Apterona helix: a Palearctic Bagworm Moth in North America
Like little snails, but they're caterpillars
Porcupine-Fish Helmet from Kiribati, c.1800-1880 CE: this helmet was crafted from the carcass of a porcupine-fish
This helmet was made using the skin of a porcupine-fish that was killed and then carefully dried. The front edge is lined with vegetable fiber and human hair, and it's equipped with coconut-fiber ties that were used to fasten the helmet onto the wearer's head.
Above: another porcupine-fish helmet from Kiribati
Helmets with this design are also known as te barantauti, and they were created as part of a traditional costume that was worn by the warriors of Kiribati (an island nation located in the South Pacific). Most of the surviving examples date back to the mid-1800s.
Above: a porcupine-fish helmet displayed with a high-backed cuirass, wrist-guard, and sword, c.1800s CE
Te barantauti were typically worn with body armor that was crafted from coconut-fiber and stingray skin, along with braided wrist-guards covered in shark's teeth, high-backed cuirasses, and wooden swords, spears, and daggers studded with stingray spines and shark's teeth.
Above: wrist-guards and cuirasses from Kiribati, c.1800-1880 CE
In some cases, the warrior's helmet was crafted from coconut-fiber instead. The same material was also used to construct sleeves, belts, and "overalls" that effectively covered the rest of the body.
Above: a coconut-fiber helmet with a full set of armor
The porcupine-fish helmets provided very little protection -- they were primarily created and used as a way to intimidate enemies during ritual combat.
Above: an armored warrior from Kiribati, mid-1800s
As this article explains:
The men of Kiribati were famed for their fierceness, and when it came time for battle, they dressed the part, in head-to-toe armor made from coconut fiber and stingray skin. Their weapons were wooden swords lined with sharks’ teeth.
The crown jewel of Kiribati armor, though, was a spiky helmet made from the porcupinefish. A member of the blowfish family, a porcupinefish looks like an adorable big-eyed cartoon character—until it’s threatened. Then, it sucks water into a cavity between its body and skin and inflates to several times its normal size, stiffening the spines that usually lie flat.
Porcupinefish helmets, known as te barantauti, were made by capturing one of these agitated, puffed-up porcupinefish, killing it, peeling the skin away from the body, and drying it. The spiny skin that remained was reinforced with coconut-fiber padding and fashioned into a brittle helmet.
Though the helmets offered little in the way of actual protection, they instantly made their wearers appear bigger, taller, and more formidable.
For Kiribati warriors, this intimidation was more important than protection from death. That’s because in traditional Kiribati culture, a person who took someone’s life—even in a fair fight—paid with their most prized resource: their land. So instead of going for the kill, warriors sought to wound and humiliate their enemy. Fish-skin and coconut-fiber offered just the right amount of protection.
Above: a shark-tooth sword from Kiribati, c.1800s CE
Unfortunately, most of the surviving helmets, weapons, and pieces of armor are now housed in Western museums:
Over the years, dozens of these helmets made their way into museums across the globe, while few remain in Kiribati. The Smithsonian actually has three, the British Museum five, and Sweden’s Världskulturmuseerna “at least eight,” according to their digitization curator Magnus Johansson. One te barantauti even wound up at the Fairbanks Museum and Planetarium, in the tiny town of St. Johnsbury, Vermont.
Over the last four decades, since Kiribati gained its independence from the United Kingdom in 1979, the armor has taken on a new meaning—as a potent symbol of local culture. It features on tourist trinkets, but also stamps and school mascots. “The armor is not just a garment to me,” says Rareti Ataniberu, an I-Kiribati craftswoman. “It is a piece of art, a craft.”
Sources & More Info:
Hakai Magazine: Kiribati’s Porcupine-Fish Helmets were More about Drama than Defense
Atlas Obscura: The Mystery of the Puffer-Fish Helmets of Kiribati
Pacific Presences: Fighting Fibres: Kiribati Armour and Museum Collections
Time Magazine: Why Indigenous Artifacts Should be Returned to Indigenous Communities
The Museum of New Zealand: Te tauti from Kiribati
Denver Art Museum: Shark-Tooth Sword
The British Museum: Porcupine-Fish Helmet
Amazing. Those back shields remind me of Siberian leather armor.
Camera Traps Reveal Iberian Lynxes Soaking Their Prey, a First-Ever Discovery Among Carnivores
Scientists speculate that the wild cats are trying to improve hydration or ease their cubs’ transition to solid food. The finding points to resilience in one of the world’s most endangered felines
A camera trap in Spain recorded a wild female Iberian lynx carrying a dead rabbit to a water trough and dunking it, researchers were shocked. Then, they spotted the behavior several more times. In a study published in March in Ecology, scientists detailed these findings, which they say are the first-ever observations of a carnivore soaking its dead prey in water. The unusual phenomenon has raised questions about how predatory species adapt to changing environments—and it hints at resilience in one of the world’s most endangered felines. “This is very interesting and genuinely a surprising observation,” says Wai-Ming Wong, the director of small-cat conservation science for Panthera, who was not associated with the study. “Wild cats are typically thought of as highly efficient, instinct-driven hunters, so seeing an individual modify how it handles prey in this way is quite remarkable.”...
Read more: https://www.smithsonianmag.com/science-nature/camera-traps-reveal-iberian-lynxes-soaking-their-prey-a-first-ever-discovery-among-carnivores-180988591/
The fancy Redwinged Blackbird with potential bilateral gynandromorphism is still around, here are some more clips from the last couple of days. I have not edited them other than stringing them together for this video. This is how they were recorded. Every time I think it must be a molt, this bird turns around and looks completely like a female. So intriguing. It also has a lot of red on the face.
The male plumage suggests this bird is undergoing its very first molt into the adult male plumage but yeah, birds molt symmetrically. Both sides should be showing the young male plumage, not just one. This is a almost certainly a gynandromorph!!!
Edit: I also just noticed that you can see the right ('male') wing and leg are longer and thicker than the left ('female') side!! Male RWBL are usually a little bigger and heavier than the females so seeing this on the same bird is so cool!!
Another character from the book Emily Wilde's Map of the Otherlands, an ancient guardian of Silva Lupi castle named Razkarden. He likes to perch like a terrifying gargoyle and stare into the distance.
I'm going to assume he has six legs because the fourth pair has turned into wings, not because the author doesn't know how many legs spiders have.
I read the Emily Wilde's Map of the Otherlands and so I drew another strange fairy, a fox man called Snowbell. He is small in stature, a bit of a man-eater, but he knows the fairy realms. He likes journeys. His species is called "fuchszwerge". I looked it up, but of course it's the author's invention, in our world that's what a breed of rabbit is called.
(Next time I'll draw Razkarden)
My favorite character from Emily Wilde's Encyclopaedia of Faeries: A little fairy that Emily named Poe, because of his raven coat. He likes sweets, lives in a tree and bakes delicious bread.
Shell-Nesting Mason Bees: these bees build their nests in empty snail shells, using crushed leaves and soil to form the inner brood chambers and then sealing the entrance with debris
Bees of the family Megachilidae typically build their nests in the gaps and crevices in tree stumps, rocks, plant stems, and wooden structures, but there are a few species that prefer to nest in discarded snail shells. Most of these shell-nesting bees are found in Europe, North Africa, and the Near East; a few can also be found in North America, South Africa, and Japan.
Above: just some cozy little mason bees
These are solitary bees, meaning that they don't form colonies or live together in hives, so each female builds her own individual nest. The nest is constructed as a series of brood cells, and each cell contains a single egg with enough pollen and nectar to sustain the larva until it reaches adulthood.
Shell-nesting mason bees are known to exist in at least five different genera, including Osmia, Hoplitis, Rhodanthidium, Wainia, and Protosmia.
Above: Osmia spinulosa and Rhodanthidium septemdentatum, both of which build their nests in snail shells
When the female is ready to nest, she carefully selects a shell and then drags it into a shaded or well-hidden spot. Moving the shell is no easy feat, but she clings to it with her hind legs and pulls herself along by grabbing objects with her mandibles. A single bee may travel like that for several meters before finally settling on the right spot to prepare her nest.
Above: a mason bee dragging her shell into position
This article describes how the nest is then constructed:
The bee begins to build its nest, mainly within the “whorl” or spire of the shell. A typical nest consists of a few chambers (about two or four in number, depending on the size of the shell) known as cells, the walls of which consist of masticated leaf pulp known as leaf mastic. When fresh, the colour of this material is bright green, but with time, it assumes a brownish or black colour. Each cell is provisioned with a mixture of pollen and nectar, an egg is laid on this, and the cell sealed with further leaf mastic.
Above: two nests with their internal structures partially exposed, revealing the brood cells, larvae, pollen/nectar, and several layers of debris
The layout of the nest varies depending on the species, with some bees producing brood cells that are arranged into rows, while others create clustered or overlapping cells.
Above: the nest of a gold-fringed mason bee
The female must make dozens of trips just to gather the provisions for a single brood cell, and completing the entire nest can take days.
Once the brood chambers have been constructed and provisioned, the entrance to the shell is "bricked up" with several layers of plant pulp, soil, pebbles, and shell fragments. In some cases, the female will also apply patches of plant pulp to the outer surface of the shell as a way to provide camouflage.
Above: mason bees sealing their nests with plant pulp
The completed nest is then carefully maneuvered so that the entrance faces the ground. Some females will conceal the nest beneath a pile of twigs, pine needles, and plant stems, weaving moss and blades of grass throughout the pile. All of the debris is carefully selected, positioned, and then "glued" together with saliva, forming a tangled, tent-like structure over the nest.
Above: Osmia bicolor, commonly known as the red-tailed mason bee. constructing a protective thatch over her nest
In other cases, the female will conceal the nest by creating a small hole in the sand and then dragging the shell into it, ensuring that the nest is partially buried.
Above: Osmia aurulenta and Osmia rufohirta
This is just one of the many peculiar nesting habits that can be found among solitary bees. Several other examples have been featured in my previous posts, which describe the nest-building strategies of woolcarder bees, resin-pot bees, and a ground-dwelling species known as Osmia avosetta.
Above: the fully-constructed nest of a shell-nesting mason bee
Sources & More Info:
Bulletin of the Amateur Entomologists' Society: Shell-Nesting Bees
The Little Book of Bees: Snail-Nesting Mason Bees
University of Hradec Králové: Bees Nesting in Empty Gastropod Shells
Bees of the World: Snail Shells
The Wildlife Trusts: Red-Tailed Mason Bees
Insects: Nesting Preferences of Osmia orientalis
Journal of Hymenoptera Research: Comparative Biology of Four Rhodanthidium Species that Nest in Snail Shells
Journal of Hymenoptera Research: Biology of Palaearctic Wainia Bees of the Subgenus Caposmia
Cambridge University Press: The Native Shell-Nesting Bee Osmia conjuncta
Wired: Adorable Bees that Live Inside Snail Shells
What can I say? It's amazing, those cells arranged in a snail shell look so stunning and neat.
Planthopper Parasite Moths: the caterpillars of this family are parasites that attach themselves to the bodies of other insects and then gradually feed on the fluids within the host's abdomen
Above: the larval form of Fulgoraecia exigua
Caterpillars of the family Epipyropidae, commonly known as planthopper parasite moths, are ectoparasites that feed on the haemolymph (i.e. "blood") of planthoppers and cicadas. This family contains at least 40 described species, all of which are parasites or parasitoids.
Above: planthopper parasite caterpillars tucked beneath the wings of their hosts
This is one of the few known examples of a caterpillar that actually engages in parasitic, carnivorous and/or predatory behavior.
Above: Fulgoraecia exigua
The caterpillar has hooked claws that allow it to cling to the host's body; it uses its mandibles to penetrate the cuticle around the abdomen, then inserts a proboscis-like structure into the planthopper's body and begins to feed on the fluids within.
Each caterpillar spends about 4-6 weeks feeding on its host, with its body often tucked beneath the larger insect's wings.
Above: a Fulgoraecia exigua caterpillar can be seen feeding beneath the wings of this planthopper
Young planthopper nymphs that are parasitized by these caterpillars rarely survive the process. The survival rate for older nymphs and adult hemipterans is also quite low.
Above: the photo at the top shows an Epipomponia nawai caterpillar feeding on a cicada, while the photo on the bottom shows Fulgoraecia exigua feeding on a leafhopper
Planthopper parasite caterpillars are often tiny, with their bodies measuring just 3-7mm long, and they're covered in waxy white filaments that make them look like little cottonballs. These features seem to mimic the "fluffy" appearance of many fulgoroid planthopper nymphs, which may enable the caterpillar to sneak up on its host.
Above: planthopper parasite caterpillars
When the caterpillar reaches maturity, it finally detaches from its host and then uses a thin strand of silk to abseil down to a leaf or a branch, where it can spin a cocoon around its body and enter pupation.
Above: the cocoons of Fulgoraecia exigua
The caterpillars of this family create very distinctive cocoons. As delicate layers of silk are folded together around the pupal case, they often form ridges, cone-like structures, or wider, flatter folds that look almost like rose petals.
Above: a cocoon made by an unidentified moth from family Epipyropidae
The fully-developed moth may emerge weeks or even months later, depending on the species. The adults of this family typically have a blackish-gray appearance.
Above: the adult form of Epipomponia nawai
Other examples of predatory, carnivorous and/or parasitic moths can be found in my earlier post about meat-eating caterpillars.
Sources & More Info:
Journal of the Lepidopterist's Society: Predatory and Parasitic Lepidoptera
The Lepidoptera: Form, Function, and Diversity: Epipyropidae
Moths of North Carolina: Fulgoraecia exigua
Bug Guide: Family Epipyropidae
Bombay Natural History Society: The Biology and Morphology of Epipyrops eurybrachydis
Egyptian Journal of Biological Pest Control: Parasitism by Fulgoraecia melanoleuca
Journal of Asia-Pacific Entomology: Behavioural and Phylogeographic Observations on Epipomponia nawai
Species Connect: Carnivorous Butterflies and Moths
The cutest parasite I've ever seen
Hi! I was curious what your thoughts on the design of githyanki in D&D are? Specifically in BG3, though they've been around for a while. I personally like them because they're aliens and their faces look interesting but the whole "evolved to lay eggs but still have obviously human breasts and genitals" thing is really boring to me. How would you design them if you made them? Not a request if you don't wanna do it, I was just curious to see your version if you had one! :)
I have seen them around! Apparently the lore says they used to be human, but so many dnd payable races are human-adjacent which is a little boring to me.
The githyanki sort of look like tall lanky goblins, and their yellowy green skin with some hint of scaly texture or speckles in some areas definitely makes me think reptile/amphibian.
On the other hand. They could keep the egg laying and the mammalian features if they're just some type of monotreme. Join the ranks of the echidna and platypus! Echidnas are the largest living group of monotremes, with multiple different species while platypuses only have the one species, so maybe the githyanki can have spiny hair like echidnas?
The main facial differences between githyanki and humans is just their ear shape and their small noses with a larger space between the nose and mouth. They could have much different face shapes to better distinguish them from humans. Maybe a snoot.
I am intrigued by the idea of echidna githyanki. But my brain is very sleepy this week, due to spending 8 hours binge watching the new season of live action One Piece and then speedrunning a book cover commission for a friend that found out the first artist she paid most likely used ai in some part of the process.
I may try to draw an echidna githyanki later. Anyone else who wants to try is also welcome to do so!
Monotreme giths? Interesting idea, I had to try drawing it.
They do not have true external ears, and their dark spots are actually tiny spines similar to echidna's. The most recognizable facial feature of giths is their upturned nose, so I moved it up to their forehead, in imitation of cetaceans. They have spurs on their feet, perhaps poisonous like those of platypuses. These spurs are used in ritual combat.
Also, those feet are quite strange, with toes pointing outward and tiny big toes. I wouldn't want to find shoes for feet like that…
Like today's platypus and hedgehogs, they lack gastric digestion and their digestive system is generally greatly reduced by their long stays in the astral sphere. They are therefore predominantly carnivorous.
I'm afraid that even though they are mammals, they still shouldn't have mammal-like breasts. Monotremes produce milk by sweating (Yes, milk is actually very modified sweat. Disgusting and miraculous.) on milk patches, on the echidna located in a kind of shallow pseudo-pouch on the abdomen. From there, the young do not suck the milk, but lick it.
The Costa Rican Leaf Moth: when the caterpillars of this species feel threatened, they assume a defensive pose that mimics the appearance of a snake
Above: an Oxytenis modestia caterpillar mimicking a snake above a hummingbird's nest
The Costa Rican leaf moth, Oxytenis modestia, is an excellent mimic at every stage of its development.
Above: the late instar caterpillar of Oxytenis modestia
The newly-hatched caterpillars have a bumpy, brown-and-beige appearance that mimics bird feces (complete with fake seeds) while the older caterpillars have greenish-yellow bodies with markings that allow them to mimic a rolled-up leaf.
Above: the younger caterpillars mimicking bird droppings
As they reach maturity, they develop a flared thorax and a pair of false eyespots that mimic the appearance of a snake. These eyespots are generally hidden when the caterpillar is at rest, and they're exposed when it assumes its defensive pose.
Above: the older caterpillars displaying their eyespots
When the caterpillar feels threatened, it enhances its snake-like appearance by lifting its upper body, inflating the area around its head, and then swaying back and forth in a serpentine fashion.
Above: the defensive pose of Oxytenis modestia
The caterpillar's defense mechanism can sometimes backfire, however. This article describes a "stand-off" that ensued when an Oxytenis modestia caterpillar assumed its defensive pose right next to a hummingbird’s nest:
One of us noticed the hummingbird acting in an agitated and aggressive fashion. We looked for an assumed snake, but found instead the caterpillar, which was feeding on a leaf immediately above the nest.
Above: the caterpillar mimicking a snake right above the hummingbird's nest
In its defensive pose, the caterpillar bears a striking resemblance to a green parrot snake, which is a species that happens to feed on hummingbird eggs and hatchlings.
The caterpillar was mimicking a snake because it felt threatened by the hummingbird, and the hummingbird then became aggressive because it thought that the "snake" was attacking its nest:
When the caterpillar became agitated, it whipped out the false snake head, making the hummingbird feel threatened. And as the hummingbird’s attack intensified, the caterpillar became more snake-like—lifting the false head up, flaring out the sides, and swaying it back and forth.
Above: the hummingbird attempting to defend its nest
Thankfully, both of the animals survived the encounter (not that the hummingbird’s safety was ever in question):
The scuffle lasted for at least half an hour, and it only ended when the seemingly unharmed caterpillar crawled away—not because it took the high road, but most likely because its appetite kicked in.
The genus Oxytenis contains several other snake-mimicking species, all of which assume a similar defensive pose when threatened.
Above: more snake-mimicking caterpillars from the genus Oxytenis
The adult moths engage in mimicry, too, as they have a flat, brownish-beige appearance that mimics dead leaves.
Above: the adult forms of Oxytenis modestia and Oxytenis albilunulata
Some of the other snake-mimicking moths that have been featured on my blog include Hemeroplanes triptolemus, which has a stunningly realistic disguise, and Abbott's sphinx moth, which just looks like a tiny cyclops.
Sources & More Info:
Ecological Society of America: The Ultimate Stand-Off: Hummingbird vs. Caterpillar
Ecology: Antipredator Behavior by a Nesting Hummingbird in Response to a Caterpillar with Eyespots
iNaturalist: Photos of Oxytenis modestia
Audobon: Misunderstanding Between Caterpillar and Hummingbird Leads to High Stakes Face-Off
100 Butterflies and Moths: Oxytenis modestia
Journal of Research on the Lepidoptera: Oxytenis naemia, a Tropical Caterpillar that Mimics Faeces, Leaves, and a Snake
Semi-Slugs: these are actual gastropods that are in the process of evolving from snails into slugs, with their shells gradually reducing and receding into their bodies
Above: Fastosarion brazieri, commonly known as the chameleon semi-slug, and an unidentified species of semi-slug from the genus Sheldonia
The term "semi-slug" is used to describe an intermediate stage of evolution as snails evolve into slugs. Nearly 1,000 different species of semi-slugs are known to exist, and these bizarre little creatures can be found on at least four continents.
Above: Fastosarion brazieri and Varadia amboliensis
Each species of semi-slug is technically still classified as a snail, but its shell is noticeably reduced, becoming more internalized as the species evolves. A semi-slug officially becomes a regular-slug once its shell is no longer visible at all.
As this article explains:
If life were simple, there would be snails and slugs. Snails carry their homes on their backs; slugs are naked and embarrassed. But life isn’t simple, so of course there’s secret option #3 – the semi-slug, a bizarre creature that sits exactly between the snail and the slug.
Above: genus Satiella and genus Euaustenia
This article also adds:
In contrast to snails that have an external shell large enough to accommodate the body, or slugs in which the shell is completely internal or absent, semi-slugs have an external shell, but the shell is too small to accommodate the animal’s entire body.
Above: Megaustenia siamensis
This process is known as limacization, and it's especially common in moist, low-calcium environments where a snail's shell may be more of a burden than a benefit:
Terrestrial slugs are not a monophyletic group, but a case of convergent evolution in which the slug form evolved from different lineages of land snails that gradually lost their shell through a process called limacization. Limacization resulted in adaptive radiation in land snail lineages, as slugs became adapted to diverse moist and protected spaces, such as crevices in rocks and wood debris. The loss of the shell also allowed for more movement and less calcium dependence, making slugs more successful as pests.
Above: Gaeotis nigrolineata, also known as the Puerto Rican semi-slug, has a neon green shell that is almost completely internalized, but the shell is clearly visible through the semi-slug's translucent body
Some semi-slugs have shells that are still opaque and largely visible, with the mantle (a patch of flesh) covering only the outer edges of the shell, while others have shells that are more significantly reduced, transparent, and/or concealed.
Above: Ibycus rachelae, commonly known as the green-shelled semi-slug, and a species of semi-slug from the genus Durgella
This topic was mentioned in my previous post about Ibycus rachelae, but I wanted to write a more detailed post about semi-slugs, because they're just so fascinating and weird.
Above: a black-and-white semi-slug from subfamily Sheldoniinae
Above: Fastosarion brazieri again, but this one is especially spiky for some reason
Sources & More Info:
Australian Geographic: Meet the Semi-Slug, a Snail without a Home
Carnegie Museum of Natural History: What's So Good about Being a Slug?
Frontiers: Terrestrial Slugs in Neotropical Agroecosystems (PDF)
iNaturalist: Photos 1, 2, 3, 4, 5, 6, 7, 8, 9, 11, & 12
The Shell-Makers (Introducing Molluscs): On Becoming Sluggish
Land Snails and Slugs of Sabah and Labuan, Malaysia: Semi-Slugs
Contributions to Zoology: Phylogeny and Systematic Revision of the Helicarionid Semislugs of Eastern Queensland
Carriola Tussock Moths: these moths have translucent patches (i.e. hyaline windows) on their wings, and their green-tinted veins are clearly visible within
Above: Carriola witti
Moths of the genus Carriola have a very unusual appearance, as their wings are covered in translucent patches that reveal a delicate network of greenish-yellow veins. The green coloration is caused by the haemolymph (i.e. "blood") that passes through these veins.
Above: the male form of Carriola thyridophora, with a close-up of the hyaline windows and bright green veins on its wings
The males of this genus typically have brown or beige borders around their wings, while the females have pink or white borders instead. The hyaline windows also tend to be much clearer and more extensive in the females.
Above: the female form of Carriola seminsula
This article describes the adaptive benefits of wing transparency in moths:
The coevolutionary arms race between prey and predator has generated some of the most striking adaptations in the living world, including lures, mimicry and camouflage in prey. Transparency, by definition, constitutes the perfect background matching against virtually all types of backgrounds. Transparency is common in pelagic environments where there is no place to hide.
Above: genus Carriola
Carriola tussock moths can be found in many different countries throughout Southeast Asia, including Indonesia, Singapore, Thailand, Laos, Myanmar, the Philippines and Malaysia. They also inhabit certain parts of China, India and Sri Lanka.
Above: Carriola seminsula
This is one of my favorite moths, tbh. I love it when moths have hyaline windows on their wings, and this genus is especially beautiful and bizarre.
Sources & More Info:
Nota Lepidopterologica: Review of the Genus Carriola with Descriptions of Four New Species
Singapore Biodiversity: Carriola ecnomoda
iNaturalist: Genus Carriola
BioRxiv: How Transparent Wing Windows Reduce Detectability in Moths
Journal of Evolutionary Biology: Transparency Improves Concealment in Cryptically Colored Moths (PDF)
Moths of Borneo: Carriola Tussock Moths
Moths of Borneo: Carriola ecnomoda
various vetulicolians are up on my Youtube channel
alt: video shows vetulicolians in an aquarium setting with the glass aquarium Background and sometimes the water surface.
Bridgey's Midgey: this species of lace bug has a distinctive dome-like structure on its back, and it was discovered just 5 years ago
This species has only been documented at the Cairns Botanic Gardens in Australia, where it was discovered by a photographer/tour guide named Bridgette Gower back in 2020. The strange-looking insect is also known as "Bridgey's midgey," and it's recognized as an undescribed species of lace bug from the genus Oecharis.
The distinctive "cyst" on the insect's back is actually part of the pronotum (the plate that covers the dorsal side of its body) and it's formed by two separate structures that meet along the midline of the thorax; these two structures part whenever the insect needs to use its wings, which are folded beneath the dome.
The entire pronotum is covered in dark, lacy patterns and translucent cells that make the "cyst" seem even more exaggerated.
The adults of this species measure roughly 3mm long. Entomologists have also documented and collected the nymphs, which have flat, shiny bodies that are completely black.
Lace bugs (family Tingidae) are tiny insects that feed on plant fluids, and their common name is derived from the fact that they often have delicate and extremely intricate structures on their wings and pronotum.
Sources & More Info:
iNaturalist: Genus Oecharis
Aussie Macro Photos: Finding Bridgey's Midgey
Smithsonian Contributions to Zoology: Lace Bug Genera of the World, Part II (PDF)
University of Maine: Lace Bugs
Hi, your post about merfolk and fur got me thinking about feathered merfolk. Which sounds weird and cool, so thanks for that. I'll draw them and come up with a story for them. But I'm having a bit of trouble making them long and flexible like seals and I'm not sure if birds can have such flexible bodies considering they have a big sternum…
I love this idea, because nowadays we have made merfolk and sirens into basically the same thing, but actually sirens were originally bird ladies!
bird ladies based on actual swimming birds would be a very fun way to bring back the og siren concept while also keeping some connection to the modern idea of sirens as mermaids!
(image description: many sketches of swimming birds, traced from reference photos. this includes penguins, puffins, the great auk, a prehistoric penguin, a loon, an anhinga, and a gannet. below all these birds is an old fashioned siren design, which is a bird with a woman's face. end description)
now, I don't actually think mermaids need to be all long and flexible, to be honest. it's the common portrayal, to be sure. long elegant tails has become the norm for modern mermaid designs. but it's not a requirement by any means! they can be shorter and still swim beautifully. most swimming birds primarily use their feet to propel themselves, with some like the loon keeping their wings folded up while others use their wings to steer and possibly add extra swimming force.
I would suggest looking up videos of swimming birds as reference points, so here's a list of birds:
penguins, puffins, cormorants, loons, anhinga, gannet, guillemot, kingfishers. (kingfishers mostly just dive, but the videos of them underwater are lovely)
here are a few neat videos:
hopefully that's helpful! it's a very fun idea!