Enantiornithes


Enantiornithes is a group of extinct avialans, the most abundant and diverse group known from the Mesozoic era. Almost all retained teeth and clawed fingers on each wing, but otherwise looked much like modern birds externally. Over 80 species of enantiornitheans have been named, but some names represent only single bones, so it is likely that not all are valid. Enantiornitheans became extinct at the Cretaceous–Paleogene boundary, along with hesperornithids and all other non-avian dinosaurs. They are thought to have no living descendants.

Discovery and naming

The first enantiornitheans to be discovered were incorrectly referred to modern bird groups. For example, the first known enantiornithean, Gobipteryx minuta, was originally considered a paleognath related to ostriches and tinamou. Enantiornitheans were first recognized as a distinct lineage, or "subclass" of birds, by Cyril A. Walker in 1981. Walker made this discovery based on some partial remains from the late Cretaceous period of what is now Argentina, which he assigned to a new genus, Enantiornis, giving the entire group its name. Since the 1990s, many more complete enantiornitheans have been discovered, and it was determined that a few previously described "birds" were also enantiornitheans.
The name "Enantiornithes" means "opposite birds", from Ancient Greek enantios "opposite" + ornithes "birds". The name was coined by Cyril Alexander Walker in his landmark paper which established the group. In his paper, Walker explained what he meant by "opposite":
This refers to an anatomical feature – the articulation of the shoulder bones – which has a concave-convex socket joint that is the reverse of that of modern birds. Specifically, in enantiornitheans, the facet where the scapula meets the coracoid is a knob and the corresponding point on the shoulder blade is and dish-shaped. In modern birds, the way the joint articulates is reversed.
Walker was not clear on his reasons for giving this name in the etymology section of his paper, and this ambiguity led to some confusion among later researchers. For example, Alan Feduccia stated in 1996:
Feduccia's point about the tarsometatarsus is correct, but Walker did not use this reasoning in his original paper. Walker never described the fusion of the tarsometatarsus as opposite, but rather as "Only partial". Also, it is not certain that enantiornitheans had triosseal canals, since no fossil preserves this feature.
As a group, the Enantiornithes are often referred to as "enantiornithines". However, several scientists have noted that this is incorrect, because following the standard rules for forming the names of animal groups, it implies reference only to the subfamily Enantiornithinae. Following the naming conventions used for modern birds as well as extinct groups, it has been pointed out that the correct term is "enantiornithean".

Origin and range

Enantiornitheans have been found on every continent except Antarctica. Fossils attributable to this group are exclusively Cretaceous in age, and it is believed that Enantiornitheans became extinct at the same time as their non-avialan dinosaur relatives. The earliest known enantiornitheans are from the Early Cretaceous of Spain and China and the latest from the Late Cretaceous of North and South America. The widespread occurrence of this group suggests that at least some enantiornitheans were able to cross oceans under their own power; they are the first known avialan lineage with a global distribution.

Description

Many enantiornithean fossils are very fragmentary, and some species are only known from a piece of a single bone. Almost all specimens that are complete, in full articulation, and with soft tissue preservation are known from Las Hoyas in Cuenca, Spain and the Jehol group in Liaoning. Enantiornithean fossils have been found in both inland and marine sediments, suggesting that they were an ecologically diverse group. Enantiornitheans appear to have included waders, swimmers, granivores, insectivores, fishers, and raptors. The vast majority of enantiornithean species were small, between the size of a sparrow and a starling, while the largest members of this clade are Pengornis houi, Xiangornis shenmi and Zhouornis hani. At least a few much larger species may have existed, including a potentially crane-sized species known only from footprints in the Eumeralla Formation, which might belong to an enantiornithean. One taxon, Mirarce, is described as similar in size to modern turkeys, while previous "largest enantiornitheans" are described as blackbird sized.
Extraordinary enantiornithean remains have also been preserved in Burmese amber deposits dated to 99 million years ago. These remains are among the most well-preserved of any mesozoic dinosaur. The first discovered amber-encased enantiornithean remains were two wings described in 2016. Nearly the entire body of a hatchling enantiornithean was described in 2017 and another hatchling was described in 2018. In 2019 a largely complete foot along with a wing were described. In 2020 a wing of a large taxon was described.

Skull

Given their wide range of habitats and diets, the skulls of enantiornitheans varied considerably between species. Enantiornithean skulls combined a unique suite of primitive and advanced features. As in more primitive avialans like Archaeopteryx, they retained several separate cranial bones, small premaxillae and most species had toothy jaws rather than toothless beaks. Only a few species, such as Gobipteryx minuta, were fully toothless and had beaks. They also had simple quadrate bones, a complete bar separating each orbit from each antorbital fenestra, and dentaries without forked rear tips. A squamosal bone is preserved in an indeterminate juvenile specimen, while a postorbital is preserved in Shenqiornis and Pengornis. In modern birds these bones are assimilated into the cranium. Some enantiornitheans may have had their temporal fenestrae merged into the orbits as in modern birds due to the postorbitals either not being present or not being long enough to divide the openings. A quadratojugal bone, which in modern birds is fused to the jugal, is preserved in Pterygornis. The presence of these primitive features of the skull would have rendered enantiornitheans capable of only limited cranial kinesis.

Wing

As a very large group of birds, enantiornitheans displayed a high diversity of different body plans based on differences in ecology and feeding, reflected in an equal diversity of wing forms, many paralleling adaptions to different lifestyles seen in modern birds. In general, the wings of enantiornitheans were advanced compared to more primitive avialans like Archaeopteryx, and displayed some features related to flight similar to those found in the lineage leading to modern birds, the Ornithuromorpha. While most enantiornitheans had claws on at least some of their fingers, many species had shortened hands, a highly mobile shoulder joint, and proportional changes in the wing bones similar to modern birds. Like modern birds, enantiornitheans had alulas, or "bastard wings", small forward-pointing arrangements of feathers on the first digit that granted higher maneuverability in the air and aided in precise landings.
Several wings with preserved feathers have been found preserved in Burmese amber. These are the first complete Mesozoic dinosaur remains preserved this way, and one of the most exquisitely preserved dinosaurian fossils known. The preserved wings show variations in feather pigment and prove that enantiornitheans had fully modern feathers, including barbs, barbules, and hooklets, and a modern arrangement of wing feather including long flight feathers, short coverts, a large alula and an undercoat of down.
One enantiornithean fossil shows wing-like feather tufts on its legs, similar to Archaeopteryx. Leg feathers are also reminiscent of the four-winged dinosaur Microraptor, however, in the enantiornithean differ from the feathers are shorter, more disorganized and only extend down to the ankle rather than along the foot.

Tail

Clarke et al. surveyed all enantiornithean fossils then known and concluded that none had preserved tail feathers that formed a lift-generating fan, as in modern birds. They found that all avialans outside of Euornithes with preserved tail feathers had only short coverts or elongated paired tail plumes. They suggested that the development of the pygostyle in enantiornitheans must have been a function of tail shortening, not the development of a modern tail feather anatomy. These scientists suggested that a fan of tail feathers and the associated musculature needed to control them, known as the rectrical bulb, evolved alongside a short, triangular pygostyle, like the ones in modern birds, rather than the long, rod- or dagger-shaped pygostyles in more primitive avialans like enantiornitheans. Instead of a feather fan, most enantiornitheans had a pair of long specialized pinfeathers similar to those of the extinct Confuciusornis and certain birds-of-paradise.
However, further discoveries showed that at least among primitive enantiornitheans, tail anatomy was more complex than previously thought. One enantiornithean, Shanweiniao, was initially interpreted as having at least four long tail feathers that overlapped each other and might have formed a lift-generating surface similar to the tail fans of euornitheans, though a later study indicates that Shanweiniao was more likely to have rachis-dominated tail feathers similar to feathers present in Paraprotopteryx. Chiappeavis, a primitive pengornithid enantiornithean, had a fan of tail feathers similar to that of more primitive avialans like Sapeornis, suggesting that this might have been the ancestral condition, with pinfeathers being a feature evolved several times in early avialans for display purposes. Another enantiornithean, Feitianius, also had an elaborate fan of tail feathers. More importantly, soft tissue preserved around the tail was interpreted as the remains of a rectrical bulb, suggesting that this feature was not in fact restricted to species with modern-looking pygostyles, but might have evolved much earlier than previously thought and been present in many enantiornitheans. At least one genus of enantiornithean, Cruralispennia, had a modern-looking pygostyle but lacked a tail fan.

Biology

Diet

Given the wide diversity of skull shape among enantiornitheans, many different dietary specializations must have been present among the group. Some, like Shenqiornis, had large, robust jaws suitable for eating hard-shelled invertebrates. In longipterygids, the snouts were long and thin with teeth restricted to the tip of the jaws, and they were likely mud-probers and fishers. The short, blunt teeth of Pengornis were likely used to feed on soft-bodied arthropods. The strongly hooked talons of bohaiornithids suggest that they were predators of small to medium-sized vertebrates, but their robust teeth instead suggest a diet of hard-shelled animals.
A few specimens preserve actual stomach contents. Unfortunately, none of these preserve the skull, so direct correlation between their known diet and snout/tooth shape cannot be made. Eoalulavis was found to have the remains of exoskeletons from aquatic crustaceans preserved in its digestive tract, and Enantiophoenix preserved corpuscles of amber among the fossilized bones, suggesting that this animal fed on tree sap, much like modern sapsuckers and other birds. The sap would have fossilized and become amber. However, more recently it has been suggested that the sap moved post-mortem, hence not representing true stomachal contents. Combined with the putative fish pellets of Piscivorenantiornis turning out to be fish excrement, the strange stomachal contents of some species turning out to be ovaries and the supposed gastroliths of Bohaiornis being random mineral precipitates, only the Eoalulavis displays actual stomach contents.
A study on paravian digestive systems indicates that known enantiornitheans lacked a crop and a gizzard, didn't use gastroliths and didn't eject pellets. This is considered at odds with the high diversity of diets that their different teeth and skull shapes imply, though some modern birds have lost the gizzard and rely solely on strong stomachal acids.

Predation

A fossil from Spain reported by Sanz et al. in 2001 included the remains of four hatchling enantiornithean skeletons of three different species. They are substantially complete, very tightly associated, and show surface pitting of the bones that indicates partial digestion. The authors concluded that this association was a regurgitated pellet and, from the details of the digestion and the size, that the hatchlings were swallowed whole by a pterosaur or small theropod dinosaur. This was the first evidence that Mesozoic avialans were prey animals, and that some Mesozoic pan-avians regurgitated pellets like owls do today.

Life history

Known enantiornithean fossils include eggs, embryos, and hatchlings. An enantiornithean embryo, still curled in its egg, has been reported from the Yixian Formation. Juvenile specimens can be identified by a combination of factors: rough texture of their bone tips indicating portions which were still made of cartilage at the time of death, relatively small breastbones, large skulls and eyes, and bones which had not yet fused to one another. Some hatchling specimens have been given formal names, including "Liaoxiornis delicatus"; however, Luis Chiappe and colleagues considered the practice of naming new species based on juveniles detrimental to the study of enantiornitheans, because it is nearly impossible to determine which adult species a given juvenile specimen belongs to, making any species with a hatchling holotype a nomen dubium.
Together with hatchling specimens of the Mongolian Gobipteryx and Gobipipus, these finds demonstrate that enantiornithean hatchlings had the skeletal ossification, well-developed wing feathers, and large brain which correlate with precocial or superprecocial patterns of development in birds of today. In other words, enantiornitheans probably hatched from the egg already well developed and ready to run, forage, and possibly even fly at just a few days old.
Analyses of enantiornithe bone histology have been conducted to determine the growth rates of these animals. A 2006 study of Concornis bones showed a growth pattern different from modern birds; although growth was rapid for a few weeks after hatching, probably until fledging, this small species did not reach adult size for a long time, probably several years. Other studies have all supported the view that growth to adult size was slow, as it is in living precocial birds. Studies of the rate of bone growth in a variety of enantiornitheans has shown that smaller species tended to grow faster than larger ones, the opposite of the pattern seen in more primitive species like Jeholornis and in non-avialan dinosaurs. Some analyses have interpreted the bone histology to indicate that enantiornitheans may not have had fully avian endothermy, instead having an intermediate metabolic rate.
Evidence of colonial nesting has been found in enantiornitheans, in sediments from the Late Cretaceous of Romania. Evidence from nesting sites shows that enantiornitheans buried their eggs like modern megapodes, which is consistent with their inferred superprecocial adaptations.
A 2020 study on an enantiornithean juvenile feathers further stresses the ontological similarities to modern megapodes, but cautions several differences like the arboreal nature of most enantiornitheans as opposed to the terrestrial lifestyle of megapodes.

Flight

Because many enantiornitheans lacked complex tails and possessed radically different wing anatomy compared to modern birds, they have been the subject of several studies testing their flight capabilities.
Traditionally, they have been considered inferior flyers, due to the shoulder girdle anatomy being assumed to be more primitive and unable to support a ground-based launching mechanism, as well as due to the absence of rectrices in many species.
However, several studies have shown that they were efficient flyers, like modern birds, possessing a similarly complex nervous system and wing feather ligaments. Additionally, the lack of a complex tail appears to not have been very relevant for avian flight as a whole - some extinct birds like lithornids also lacked complex tail feathers but were good flyers, and they appear to have been capable of a ground based launching.
Due to the difference in sternal and shoulder girdle anatomy, many enantiornitheans used a flight style unlike that of any modern bird species, though more typical flight styles were present as well.
At least Elsornis appears to have become secondarily flightless.

Classification

Some researchers classify enantiornitheans, along with the true birds, in the class Aves. Others use the more restrictive crown group definition of Aves, and place enantiornitheans in the more inclusive group Avialae. Enantiornitheans were more advanced than Archaeopteryx, Confuciusornis, and Sapeornis, but in several respects they were more primitive than modern birds, perhaps following an intermediate evolutionary path.
A consensus of scientific analyses indicates that Enantiornithes is one of two major groups within the larger group Ornithothoraces. The other ornithothoracine group is Euornithes or Ornithuromorpha, which includes all living birds as a subset. This means that enantiornitheans were a successful branch of avialan evolution, but one that diversified entirely separately from the lineage leading to modern birds. One study has however found that the shared sternal anatomy was acquired independently and such a relationship needs to be reexamined.
Enantiornithean classification and taxonomy has historically been complicated by a number of factors. In 2010, paleontologists Jingmai O'Connor and Gareth Dyke outlined a number of criticisms against the prevailing practices of scientists failing to describe many specimens in enough detail for others to evaluate thoroughly. Some species have been described based on specimens which are held in private collections, making further study or review of previous findings impossible. Because it is often unfeasible for other scientists to study each specimen in person given the worldwide distribution of the Enantiornithes, and due to the many uninformative descriptions which have been published on possibly important specimens, many of these specimens become "functional nomina dubia". Furthermore, many species have been named based on extremely fragmentary specimens, which would not be very informative scientifically even if they were described sufficiently. Over one-third of all named enantiornithean species are based on only a fragment of a single bone. O'Connor and Dyke argued that while these specimens can help expand knowledge of the time span or geographic range of the Enantiornithes and it is important to describe them, naming such specimens is "unjustifiable".

Relationships

Enantiornithes is the sister group to Euornithes, and together they form a clade called Ornithothoraces. Most phylogenetic studies have recovered Enantiornithes as a monophyletic group distinct from the modern birds and their closest relatives. The 2002 phylogenetic analysis by Clarke and Norell, though, reduced the number of enantiornithean autapomorphies to just four.
Enantiornithean systematics are highly provisional and notoriously difficult to study, due to the fact that enantiornitheans tend to be extremely homoplastic, or very similar to each other in most of their skeletal features due to convergent evolution rather than common ancestry. What appears fairly certain by now is that there were subdivisions within enantiornitheans possibly including some minor basal lineages in addition to the more advanced Euenantiornithes. The details of the interrelationship of all these lineages, indeed the validity of most, is disputed, although the Avisauridae, for one example, seem likely to constitute a valid group. Phylogenetic taxonomists have hitherto been very reluctant to suggest delimitations of enantiornithean clades.
One such delineation named the Euenantiornithes, was defined by Chiappe as comprising all species closer to Sinornis than to Iberomesornis. Because Iberomesornis is often found to be the most primitive or basal enantiornithean, Euenantiornithes may be an extremely inclusive group, made up of all Enantiornithes except for Iberomesornis itself. Despite being in accordance with phylogenetic nomenclature, this definition of Euenantiornithes was severely criticized by some researchers, such as Paul Sereno, who called it "a ill-defined clade a good example of a poor choice in a phylogenetic definition".
The cladogram below was found by an analysis by Wang et al. in 2015, updated from a previous data set created by Jingmai O'Connor.

List of genera

[Incertae sedis]

Enantiornithean taxonomy is difficult to evaluate, and as a result few clades within the group are consistently found by phylogenetic analyses. Most enantiornitheans are not included in any specific family, and as such are listed here. Many of these have been considered euenantiornitheans, although the controversy behind this name means that it is not used consistently in studies of enantiornitheans.
NameYearFormationLocationNotesImages
Abavornis1998Bissekty Formation One of many fragmentary Bissekty enantiornitheans, known only from coracoids
Alethoalaornis2007Jiufotang Formation Poorly known
Alexornis1976La Bocana Roja Formation One of the first enantiornitheans known. Once thought to be an ancient relative of rollers and woodpeckers
Avimaia2019Xiagou Formation One specimen from this genus died with an unlaid egg in its body
Bauxitornis2010Csehbánya Formation Fragmentary but unique in the structure of its tarsometatarsus
Catenoleimus1998Bissekty Formation One of many fragmentary Bissekty enantiornitheans, known only from a coracoid
Cathayornis1992Jiufotang Formation One of the first Jehol biota enantiornitheans described. Known from many species, although some are now placed into their own genera. May have had a similar appearance and lifestyle to a pitta
Concornis1992Las Hoyas One of the most complete Las Hoyas enantiornitheans
Cratoavis2015Santana Formation A very well-preserved South American member of the group, complete with ribbon-like tail feathers
Cruralispennia2017Huajiying Formation Had an unusual ornithuromorph-like pygostyle and brush-like thigh feathers. One of the oldest enantiornitheans
Cuspirostrisornis1997Jiufotang Formation Originally mistakenly believed to have possessed a pointed beak
Dalingheornis2006Yixian Formation Was well-adapted for climbing due to its heterodactyl feet, like those of a trogon
Dunhuangia2015Xiagou Formation An enantiornithean from the Changma basin, an area which is unusually dominated by ornithuromorphs
Elbretornis2009Lecho Formation Only known from wing bones. May be synonymous with other Lecho formation enantiornitheans
Elektorornis2019Burmese Amber Known from a foot preserved in amber with an elongated middle toe
Elsornis2007Djadochta Formation Although incomplete, its skeleton possesses three-dimensional preservation. Possibly flightless due to its wing proportions
Enantiornis1981Lecho Formation Although only known from a few bones, this genus is the namesake of Enantiornithes. It was also one of the largest and last representative of the group prior to their extinction
Eoalulavis1996Las Hoyas Preserves feathers including an alula, a specialized type of feather which controls air flow over the wing
Eocathayornis2002Jiufotang Formation Once considered to be a basal close relative of Cathayornis, although now considered to be more distantly related
Eoenantiornis1999Yixian Formation Well-preserved but inconsistent in phylogenetic placement
Evgenavis2014Ilek Formation Known only from a tarsometatarsus which shares some features with those of enantiornitheans
Explorornis1998Bissekty Formation One of many fragmentary Bissekty enantiornitheans, known only from coracoids
Feitianius2015Xiagou Formation Possessed an elaborate set of tail feathers, unlike the paired ribbon-like feathers of most enantiornitheans
Flexomornis2010Woodbine Formation One of the oldest North American avialans found, albeit known only from fragmentary remains
Fortunguavis2014Jiufotang Formation Had robust bones, including feet and claws which may have been adapted for climbing trees
Grabauornis2015Yixian Formation The proportions of this enantiornithean's wings as well as the presence of an alula suggest that it was a good flier
Gracilornis2011Jiufotang Formation A possible relative of Cathayornis with characteristically slender bones
Gurilynia1999Nemegt Formation A poorly known enantiornithean, but evidently a large and late-surviving member of the group
Hollanda luceria2010Barun Goyot Formation Originally identified asn an ornithuromorph but since reinterpreted as an enantiornithean closely related to Lectavis.
Holbotia2015Andaikhudag Formation Considered a small pterosaur since its discovery in 1977 until it received a formal description in 2015. Possessed unique neck vertebrae and a primitive palate
Houornis1997Jiufotang Formation Once considered to be dubious or a species of Cathayornis, although a 2015 study considered it to be a valid genus
Huoshanornis2010Jiufotang Formation May have been a very maneuverable flier due to the structure of its hand and sternum
Iberomesornis1992Las Hoyas One of the first enantiornitheans known from decent remains. Also one of the oldest and most primitive members of the group
Incolornis1998Bissekty Formation One of many fragmentary Bissekty enantiornitheans, known only from coracoids. One species was once considered to belong to Enantiornis
Junornis2017Yixian Formation So well preserved that its flight pattern could be reconstructed using the proportions of its feathers and wings
Kizylkumavis1984Bissekty Formation One of the many fragmentary Bissekty enantiornitheans, known only from a humerus fragment
Largirostrornis1997Jiufotang Formation Possibly related to Cuspirostrisornis or a synonym of Cathayornis
Lectavis1993Lecho Formation A large and long-legged member of the group, proportionally similar to modern shorebirds
Lenesornis1996Bissekty Formation One of many fragmentary Bissekty enantiornitheans, known only from a synsacrum fragment. Originally considered to belong to Ichthyornis
Liaoningornis1996Yixian Formation Originally believed to be an ornithuran, but now considered a relative of Eoalulavis
Longchengornis1997Jiufotang Formation May have been a synonym of Cathayornis
Martinavis2007Grès à Reptiles Formation, Lecho Formation Although known only from humeri, this genus was large and lived in a broad range
Microenantiornis2017Jiufotang Formation A small member of the group which possessed several primitive and derived features compared to other enantiornitheans
Monoenantiornis2016Yixian Formation Known from a juvenile specimen which depicts how various features developed in enantiornitheans as they age
Nanantius1986Toolebuc Formation Fragmentary, but may have been a seabird because remains from this genus have been found as ichthyosaur gut content
Noguerornis1989El Montsec Preserves impressions of a propatagium, a skin flap on the shoulder which forms part of a wing
Orienantius2018Huajiying Formation Many soft tissue details of specimens from this genus were revealed by UV light
Otogornis1993Yijinholuo Formation Poorly known
Paraprotopteryx2007Qiaotou member of the Huajiying Formation Seemingly had four ribbon-like tail feathers instead of only two as in most enantiornitheans
Parvavis2014Jiangdihe Formation Small but fully mature at the time of its death. The only described Chinese enantiornithean dated to the late Cretaceous
Piscivorenantiornis2017Jiufotang Formation Known from a disarticulated skeleton preserved overlying a piece of stomach content composed of fish bones, which may have been its last meal
Protopteryx2000Huajiying Formation One of the oldest and most primitive members of the group
Pterygornis2016Jiufotang Formation One disarticulated skeleton from this genus possesses well-preserved bones of the skull, including a quadratojugal
Qiliania2011Xiagou Formation Some of this genus's remains include well-preserved hindlimbs. the species names, Q. graffini, is named after Greg Graffin from the band Bad Religion
Sazavis1989Bissekty Formation One of many fragmentary Bissekty enantiornitheans, known only from a tibiotarsus
Shangyang2019Jiufotang Formation Unusually, the premaxillae of this genus were fused
Sinornis1992Jiufotang Formation One of the first Jehol biota enantiornitheans described. Similar to Cathayornis but usually considered to be distinct
Xiangornis2012Jiufotang Formation The hand of this genus was similar to that of ornithuromorphs, likely through convergent evolution. A large member of the group
Yuanjiawaornis2015Jiufotang Formation One of the largest enantiornitheans known from decent remains
Yungavolucris1993Lecho Formation Had a large and unusually wide tarsometatarsal

Longipterygidae

The Longipterygidae was a family of long-snouted early Cretaceous enantiornitheans, with teeth only at the tips of the snout. They are generally considered to be fairly basal members of the group.
NameYearFormationLocationNotesImages
Boluochia1995Jiufotang Formation Originally mistakenly believed to have possessed a hooked beak
Camptodontornis2010Jiufotang Formation Originally called Camptodontus, although that genus name is occupied by a beetle
Dapingfangornis2006Jiufotang Formation May have had a thorn-like structure on its forehead
Longipteryx2001Jiufotang Formation The most common and well-known member of the family
Longirostravis2004Yixian Formation Like other longipterygids, it possessed a thin snout which may have been used for probing for invertebrates in mud or bark
Rapaxavis2009Jiufotang Formation Specialized for perching due to the structure of its feet
Shanweiniao2009Yixian Formation Acquired multiple tail feathers which may have been capable of generating lift as in modern birds
Shengjingornis2012Jiufotang Formation A large member of the family

Pengornithidae

The Pengornithidae was a family of large early enantiornitheans. They had numerous small teeth and numerous primitive features which are lost in most other enantiornitheans. Some studies claim that they may not be enantiornitheans at all, but rather ornithuromorphs, closer to modern birds.
NameYearFormationLocationNotesImages
Chiappeavis2015Jiufotang Formation Possessed a fan-shaped tail composed of many feathers
Eopengornis2014Huajiying Formation The oldest known member of the family, and one of the oldest putative enantiornitheans known. Possessed extremely well-preserved tail ribbons
Parapengornis2015Jiufotang Formation Proposed to have a woodpecker-like lifestyle due to features of the foot and tail
Pengornis2008Jiufotang Formation The first pengornithid discovered, and also one of the largest enantiornitheans known from decent remains

"Bohaiornithidae"

"Bohaiornithids" were large but geologically short-lived early enantiornitheans, with long, hooked talons and robust teeth with curved tips. They may have been equivalent to birds of prey, although this interpretation is open to much debate. The monophyly of this group is doubtful, and it may actually be an evolutionary grade.
NameYearFormationLocationNotesImages
Bohaiornis2011Jiufotang Formation Originally considered to have been preserved with gastroliths, although later these were found to be mineral concretions
Gretcheniao2019Yixian Formation Adapted for flapping, rather than soaring, flight. May suggest paraphyly or polyphyly of "Bohaiornithidae"
Linyiornis2016Jiufotang Formation A possible member of the family, known from a well-preserved skeleton complete with structures believed to be developing eggs
Longusunguis2014Jiufotang Formation A fairly typical member of the family
Parabohaiornis2014Jiufotang Formation A close relative of Bohaiornis
Shenqiornis2010Qiaotou member of the Huajiying Formation The first known member of the family, although not considered a close relative of Bohaiornis until a few years later. Preserves a large postorbital bone
Sulcavis2013Yixian Formation A close relative of Shenqiornis with grooved enamel on its teeth, unique among fossil birds
Zhouornis2013Jiufotang Formation A large member of the family with a well-preserved braincase

Gobipterygidae

This family may be monotypic, as some members of the group are obscure or poorly described and may be synonymous with its type species, Gobipteryx minuta.
NameYearFormationLocationNotesImages
Gobipteryx1974Barun Goyot Formation A toothless advanced enantiornithean, possessing a robust beak which convergently evolved with those of modern birds
Jibeinia1997Qiaotou member of the Huajiying Formation Poorly known and described from a skeleton which has now been lost. May have been synonymous with Vescornis
Vescornis2004Qiaotou member of the Huajiying Formation A small and short-snouted enantiornithean which may be synonymous with Jibeinia

Avisauridae

is subjected to two differing definitions of varying inclusiveness. The more inclusive definition, which follows Cau & Arduini, is used here. Avisaurids were long-lasting and widespread enantiornitheans, which are mainly distinguished by specific features of their tarsometatarsals. The largest and most advanced members of the group survived in North and South America up until the end of the Cretaceous, yet are very fragmentary compared to some earlier taxa.
NameYearFormationLocationNotesImages
Avisaurus1985Hell Creek Formation The eponymous avisaurid, as well as one of the largest members of the family. Originally considered a non-avialan dinosaur
Enantiophoenix2008Ouadi al Gabour Formation May have fed on tree sap as it was preserved in association with amber beads
Gettyia2018Two Medicine Formation A new genus for Avisaurus gloriae
Halimornis2002Mooreville Chalk Formation Would have lived in a coastal environment
Intiornis2010Las Curtiembres Formation Although closely related to some of the largest avisaurids, members of this genus were very small birds
Mirarce2018Kaiparowits Formation The most complete known North American avisaurid
Mystiornis2011Ilek Formation Possesses a myriad of features from various groups in Paraves, although most closely resembles avisaurids among sampled groups
Neuquenornis1994Bajo de la Carpa Formation Possessed long wings and a reverse hallux, indicating good flight and perching abilities
Soroavisaurus1993Lecho Formation A very close relative of Avisaurus

Dubious genera and notable unnamed specimens