A necessary caveat
Asking general questions about how extinct dinosaurs did anything is increasingly difficult to answer in a succinct, concise manner. Dinosauria is an enormous group of animals with huge diversity in body size, gait, proportions, soft-tissue anatomies and so on. These are all things which impact the way an animal might sit or lie down, and in all likelihood there is no one answer to this inquiry. What works for a troodontid may not work for an ankylosaurid, and what works for these may not apply to a sauropod. While there's some merit to taking a general approach to this discussion (and that's what we'll be doing here), this point is something to bear in mind as we go through. The actual answer to this question will be multifaceted, and found through dedicated study of specific dinosaur groups.What the fossil record tells us
Crouching dinosaur traces attributed to bipedal theropods and ornithopods are known from the track record (e.g. Lockley et al. 2003; Milner et al. 2009 and references therein), and these are often used as evidence for dinosaurs generally adopting bird-like, crouched resting postures. Such impressions cannot be regarded as common, but are easily identified by the elongate footprint impressions where the long metatarsal bones and ankle are impressed into the ground behind the toe prints. That at least some of these crouching traces show stationary behaviours, and not crawling or stooping, is evidenced by the symmetrical position of the footprints and impressions of an ischial callosity (the soft-tissue covering the posterior prong of the dinosaur pelvis). These pelvic traces show that the body was in contact with the ground when these traces were made, and that it was not being dragged forwards. Clearly, these animals were, at least partly, letting the ground take some of their weight.We don't just have to look to trace fossils for evidence of crouching behaviour. On rare occasions, remains of dinosaurs are found that were more-or-less entombed alive in ash or sediment, revealing details of their postures at time of death. Famous examples of such occurrences include several troodontids (Russell and Dong 1993; Xu and Norell 2004; Gao et al. 2012) and protoceratopsids (Fastovsky et al. 1997). These also consistently show dinosaurs resting on their bellies in crouched postures, legs folded up either side of their bodies in a very avian manner.
Secondly, it's interesting that we only sometimes see hand prints associated with crouching traces (Milner et al. 2009). When we do, we tend to see evidence of the palms and digits, not of whole forearms, as we might expect from a fully resting, lying animal. So are these animals actually lying down, or just sitting? Have they crouched down to truly rest, or are they performing some other behaviour (e.g. foraging, preening etc.)? I find it interesting that crouching traces can occur multiple times within trackways (Lockley et al. 2003), and that others show evidence of animals shifting weight and changing direction. Such instances seem to record sitting, but still 'active' individuals. Studies of modern animal behaviour are relevant here. When researching bird sleeping postures, I found Almaner and Ball (1983) had similar misgivings about the idea of immobile birds being 'inactive' or merely 'resting'. Based on their observations, they divided avian 'loafing' behaviour (that is, behaviour adopted when the bird is generally immobile) into multiple types of activity, of which only one is resting. Looking through their categories of loafing behaviour (below), none seem outlandish when applied to dinosaurs and I wonder what those prints made by stationary, crouched dinosaurs really represent: resting is really only one option. It may be that further examination of 'resting' traces can turn up more information. That said, I'm aware of slightly frustrating experiments with modern emus where even optimal substrates for track formation do not record additional trace evidence of activities like feeding from crouched positions (Milàn 2006). But, hey, we can still be optimistic that more data and insights will come in time.
What it means to be a stationary bird. Clearly, being crouched and immobile does not always mean 'resting'. From Almaner and Ball (1983). |
On a related note, I also wonder how we would identify a dinosaur that died deliberately resting on its side rather than being moved into that pose by taphonomic processes. Most animals require effort to remain vertical, be it crouched or otherwise, and it's obvious when we find crouching dinosaurs that their pose reflects something of their final behaviours. But how do we distinguish a dinosaur preserved having a nap on its side from one that simply died and fell over, or was washed up on a riverbank or whatever?
All this considered, my point here is not that these data are meaningless when it comes to discussions of dinosaur resting postures. They clearly show that many Mesozoic dinosaurs did naturally crouch in an avian-like manner, and there's no problem with assuming this has some bearing on resting poses. But I do not think this data is without complications, nor that it is complete enough to tell us the whole story here. We probably need to look elsewhere for additional information.
The search for modern analogues
Torvosaurus tanneri in controversial 'reclining on a recline' pose. |
But what about other species? We might look to other reptiles for further insight here. Lizards, turtles and crocodylians are like birds in that they rest on their bellies, although they tend to be less fussy about the placement of their limbs (I often find my own pet reptiles looking like they just flopped down mid-step, legs and arms at all sorts of angles. It doesn't look comfortable, but I guess it must be). But do these animals really have an alternative? Their bodies are very broad but shallow, and their limbs project laterally from the torso. It's hard to imagine them achieving a stable resting posture by doing anything other than lying on their bellies.
The body shapes of living reptiles are pretty distinct from those of sauropods or many ornithischians, and I don't think these animals provide much assistance with our inquiry. For these groups, a case can be made for their basic form being more akin to those of modern mammals than any living reptile. Like mammals, they tend to have deep, narrow chests, (see illustrations in Paul 2010 and Goldfinger 2005), and many lack the rigid structural bracing and expansive chest muscles that we see in birds. For some dinosaur groups, the limbs of large land mammals are better models than the light, flexible limbs of birds, and the fact many mammals are quadrupedal is also of utility here. The relative weight of mammalian heads, and flexibility of their necks, may be more comparable to some dinosaurian bauplans than avian ones too, and mammals are also our best (and only) modern analogue of larger Mesozoic dinosaur body masses. The latter is important to this discussion as shifting weight around between standing and reclining, as well as considering weight bearing during the rest phase, are factors here.
All these points considered, maybe the body shapes and masses of mammals offer some of the most useful analogues for non-bipedal dinosaur resting poses and related mechanics? Mammals are, of course, far more flexible in their approach to resting than reptiles. Even large mammals like elephants, hippos, rhinos and large bovids are capable of crouching and lounging on their sides, and even modest-sized species will sometimes rest on their backs. I imagine this is because deep-chested large animals are top-heavy when crouched, so flopping over to one side is likely to be far more relaxing and stable. The fact that our largest land animals can spend hours on their sides without dying of asphyxiation is a good indication that this may not have been a concern for large dinosaurs, either. A big elephant is going to weigh as much as many big dinosaurs and, while the biggest hadrosaurs and sauropods were likely heavier, it's useful to have confirmation that 5-6 tonne creatures can lie down for extended periods without problem. I often wonder if the idea of animals crushing their lungs and other organs when lying down is a bit of a myth, or at least overstated. Even large stranded whales, weighing many times more than our largest elephants, can survive for days on land before dying. The fact is most beached whales die of complications related to the injuries and diseases that led to their stranding in the first place, and this generally happens long before their lungs or other organs are crushed.
To cheer everyone up after all that talk of dead whales, here's a male Asian elephant napping. D'aw. Photo by Wikimedia user Fruggo. |
Resting postures of the Greater Rhea, depicted by Amlaner and Ball 1983. I recall seeing a rhea using the upper posture at Edinburgh zoo. It's... weird seeing a bird sitting like this in real life. |
Functional studies of dinosaur anatomy
We've looked at direct evidence of reposed dinosaurs and their modern analogues, which leaves functional considerations of dinosaur skeletons as our last main area of consideration for this topic: is there anything about their anatomy to suggest resting on their sides or using other postures might be prohibited? The fusion of some dinosaur vertebrae is often mentioned as a problem here, particularly the ossified tendons common to many ornithischian dinosaur groups. These are suggested to have limited the motion of the vertebral column and limited dinosaurian abilities to shift their mass/wiggle out of lounging postures. Such suggestions are probably overstating the stiffening effect of ossified tendons. As a general point, it should be mentioned that ossified tendons are common across animals of all kinds, and occur in many places in their bodies. For example, they occur in the bodies of fish, in bird and human legs, along bird backs, in sauropod necks and in pterosaur forearms (e.g. Bennett 2003; Organ 2006; Organ and Adams 2010; Klein et al. 2012). Moreover, they are not necessarily anything to do with restricting skeletal motion. Sometimes the opposite seems true: they may be something to do with storing and releasing energy to increase arthrological efficiency, or simply reduce strain on musculature. Their functional roles are still being worked out, but it seems well grounded that their role varies with their position in the skeleton and their associated musculature. We also know that their histological composition varies, and this likely affects their mechanical properties too (Organ and Adams 2010).In dinosaurs, ossified tendon distribution along the vertebral column is quite varied. As a general rule, ossified tendons occur around the hip and tail base, but they can cover many of the torso vertebrae in things like hadrosaurs. Studies suggest that their effect is to reduce vertebral motion in some planes, but they do not eliminate movement altogether (Organ 2006). The vertebrae can still move in all directions, and even relatively freely in some axes of motion, and that's likely all that was needed to enable animals to lift themselves from a non-crouching resting posture. We only need a few degrees of motion here and there to liberate a limb, or to gain better purchase on the ground, before the limb skeleton can take over in levering the body into a standing pose. For the sake of completeness, it's worth mentioning that the trunks of other dinosaurs - those without ossified tendons - were probably mobile enough for this job, too (e.g. Mallison 2010a, 2010b).
Finally, a practical consideration
From the new ITV show "Abelisaurs do the Darnedest Things". |
So, in summary...
Putting all these lines of evidence together - the limited direct fossil data, our ability to interpret that fossil data, the anatomy and behaviour of modern animals, and what we know of dinosaur anatomy - I still don't see any reason to think Mesozoic dinosaurs were constrained to crouched resting poses. I stress my use of the word 'constrained' there: as mentioned above, there is good reason to think crouching was utilised by dinosaurs for a variety of reasons, and I'm sure many of them rested in this way. Moreover, we can probably assume that most dinosaurs entering or rising from repose would have assumed a crouched position during that process. This seems fairly true of modern animals, after all. But there seems no reason to think they were incapable of other resting in other attitudes as well, such as reclining in classically 'mammalian' poses, using some of those strange ratite or galliform postures mentioned above, or doing something else entirely. It seems almost certain that different dinosaurs were suited to different poses, and different ranges of poses, when resting: maybe this is something to explore in future art.Coming next: this:
I don't need to rest much myself, because this blog is sponsored by Patreon
The paintings and words featured here are sponsored by the best people on the planet, my Patreon backers. Supporting my blog from $1 a month helps me produce researched and detailed articles with paintings to accompany them, and in return you get access to bonus blog content: additional commentary, in-progress sneak-previews of paintings, high-resolution artwork, and even free prints. Accompanying this post will be a glimpse at the upcoming adverts for my upcoming art book, Recreating an Age of Reptiles. Sign up today to access it and other exclusive content!References
- Amlaner, C. J., & Ball, N. J. (1983). A synthesis of sleep in wild birds. Behaviour, 87(1), 85-119.
- Bennett, S. C. (2003). New crested specimens of the Late Cretaceous pterosaur Nyctosaurus. Paläontologische Zeitschrift, 77(1), 61-75.
- Fastovsky, D. E., Badamgarav, D., Ishimoto, H., Watabe, M., & Weishampel, D. B. (1997). The paleoenvironments of Tugrikin-Shireh (Gobi Desert, Mongolia) and aspects of the taphonomy and paleoecology of Protoceratops (Dinosauria: Ornithishichia). Palaios, 59-70.
- Gao, C., Morschhauser, E. M., Varricchio, D. J., Liu, J., & Zhao, B. (2012). A second soundly sleeping dragon: new anatomical details of the Chinese troodontid Mei long with implications for phylogeny and taphonomy. PloS one, 7(9), e45203.
- Goldfinger, E. (2004). Animal Anatomy for Artists: The Elements of Form: The Elements of Form. Oxford University Press.
- Klein, N., Christian, A., & Sander, P. M. (2012). Histology shows that elongated neck ribs in sauropod dinosaurs are ossified tendons. Biology letters, rsbl20120778.
- Lockley, M., Matsukawa, M., & Jianjun, L. (2003). Crouching theropods in taxonomic jungles: ichnological and ichnotaxonomic investigations of footprints with metatarsal and ischial impressions. Ichnos, 10(2-4), 169-177.
- Mallison, H. (2010a). The digital Plateosaurus II: an assessment of the range of motion of the limbs and vertebral column and of previous reconstructions using a digital skeletal mount. Acta Palaeontologica Polonica, 55(3), 433-458.
- Mallison, H. (2010). CAD assessment of the posture and range of motion of Kentrosaurus aethiopicus Hennig 1915. Swiss Journal of Geosciences, 103(2), 211-233.
- Milàn, J. (2006). Variations in the morphology of emu (Dromaius novaehollandiae) tracks reflecting differences in walking pattern and substrate consistency: ichnotaxonomic implications. Palaeontology, 49(2), 405-420.
- Organ, C. L. (2006). Biomechanics of ossified tendons in ornithopod dinosaurs. Paleobiology, 32(04), 652-665.
- Organ, C. L., & Adams, J. (2005). The histology of ossified tendon in dinosaurs. Journal of Vertebrate Paleontology, 25(3), 602-613.
- Paul, G. S. (2010). The Princeton field guide to dinosaurs. Princeton University Press.
- Russell, D. A., & Dong, Z. M. (1993). A nearly complete skeleton of a new troodontid dinosaur from the Early Cretaceous of the Ordos Basin, Inner Mongolia, People's Republic of China. Canadian Journal of Earth Sciences, 30(10), 2163-2173.
- Xu, X., & Norell, M. A. (2004). A new troodontid dinosaur from China with avian-like sleeping posture. Nature, 431(7010), 838-841.
Great article. I was always suspect of claims that sauropods and other large animals would break their ribs if they so much as laid on their sides, and its nice to hear someone else discuss the likelihood of what postures dinosaurs took while resting.
ReplyDeleteI never heard of the protoceratops fossils that you had mentioned. Your painting actually made me realize how strangely proportioned an animal it is. The legs and arms look almost humanly proportioned, though I think thats partially caused by the angle you painted it at. Is there any idea why they were proportioned this way?
The Ceratopsians are descended from bipedal dinosaurs like Psittacosaurus, so the earlier representatives of the group like Protoceratops would have retained the relatively short forelimbs of their ancestors.
DeleteBut Protoceratops isn't really an earlier representative. I know the arm and leg proportions are inherited from more basal species, but it still seems that Protoceratops had some weird anatomy, what with its gangly limbs and large head. I guess those traits aren't necessarily adaptations for anything in particular, but I was curious if anyone had speculated on why it was built that way.
DeleteSo are you saying the ossified tendons may themselves have been somewhat flexible, or simply that they weren't as constraining as they seem at first glance? One of the SV-POWsketeers (I forget who) hinted at a possible study he meant to get around to that maybe supported the former idea in sauropod necks.
ReplyDeleteAlso, RecARep is coming! I'm so excited!
Really intriguing discussion. I especially appreciate you final point about unexpected positioning. I think people all-too-often forget that animals have to be equipped to deal with accidents, not just the particular demands of their presumed lifestyle.
ReplyDeleteAnd now I can't stop picturing large theropods lying on their bellies with their legs sticking out stupidly behind them. Modern animals do stupid things all the time, imagining dinosaurs doing the same is delightful.
I also couldn't help noticing that you cited an anatomist named Goldfinger. This gave me a chuckle, but also led to me noticing that your reference for Goldfinger is 2004, but your in-text citation says 2005 - a small correction (for which my graduate advisors would have slain me).
There's the thing about non-avian theropods being unable to retract (er... flex? Extend...?) their femurs much past the vertical. Could look more like a kneeling pose than laid out flat. Is that more or less stupid? :)
DeleteMakes me curious about the way the rhea's upper legs are oriented under all that mop.
I don't see my name in the bibliography. I wrote about resting dinosaurs for Prehistoric Times awhile ago. The problem is dinosaurs don't have a lumbar region like mammals, they can't twist their body in a resting pose like mammals. The morphology IS there. They couldn't do it.
ReplyDeleteCouldn't they just bend their back up and down or side to side instead of pivoting it like we do? Maybe not optimal but certainly looks plausible. Even our relatively stiff ribcages are SOMEWHAT flexible, and remember that there are other animals with no lumbar like snakes that have extremely good flexibility in their ribcages, granted, with specific adaptations for such flexibility. Seems like lack of lumbar vertebrae is not necessarily proof that an animal was inflexible.
DeleteCouldn't they just bend their back up and down or side to side instead of pivoting it like we do? Maybe not optimal but certainly looks plausible. Even our relatively stiff ribcages are SOMEWHAT flexible, and remember that there are other animals with no lumbar like snakes that have extremely good flexibility in their ribcages, granted, with specific adaptations for such flexibility. Seems like lack of lumbar vertebrae is not necessarily proof that an animal was inflexible.
DeleteThanks for the comments, guys. Tracy, I don't have access to PT and was unable to view your work, apologies.
DeleteOn the point of lumbar vertebrae being critical to lounging postures, I'm sceptical of this for three reasons. The first is that dinosaur trunk arthrology, so far as it can be modelled, suggests that torsion was possible in at least some species (see refs in text). The second is that living dinosaurs, which have completely fused torso skeletons, are able to twist onto their sides without problem. The third is that the largest terrestrial mammals - hippos, elephants, rhinos - have extremely reduced, if not absent, lumbar regions. Big thoracic ribs are found within 1-2 verts of the pelvis, and yet they still routinely rest on their sides. So while lumbars might help getting into and out of lounging postures, it seems they aren't essential.
Well, at least we more or less know how Mesozoic MAMMALS rested. Therian (ie "marsupials" and "placentals") fossils are generally found laying on the side, while other mammals like multituberculates and eutriconodonts are generally found laying on their bellies, with the limbs to the side.
ReplyDeleteWell, at least we more or less know how Mesozoic MAMMALS rested. Therian (ie "marsupials" and "placentals") fossils are generally found laying on the side, while other mammals like multituberculates and eutriconodonts are generally found laying on their bellies, with the limbs to the side.
ReplyDeleteWell, at least we more or less know how Mesozoic MAMMALS rested. Therian (ie "marsupials" and "placentals") fossils are generally found laying on the side, while other mammals like multituberculates and eutriconodonts are generally found laying on their bellies, with the limbs to the side.
ReplyDeleteBrush turkeys are megapodes, not galliforms.
ReplyDeleteMegapodes ARE galliformes.
DeleteNice summary Mark. I'm very much with you on the 'dying in a pose does not equal resting' issue - in the recent Rogers et al. on some of the Chinese volcanic beds we made a point of saying things like Mei and various Psittacosaurs were not necessarily sleeping and we shouldn't type them as such. We used a more generic 'at rest' term, though I'd missed Almaner and Ball which might have been a useful reference to explore these issues a little further. In these cases specifically I think the anti-predator arm of that figure is likely to be an important one, lots of animals go into a still crouch when threatened presumably to minimise their profile and avoid being seen and I can easily imagine animals doing this in response to looming disasters (though it's not the thing you can easily test, or at least not ethically! :) ).
ReplyDeleteModern big carnivores like lions spend vast amounts of time asleep or otherwise resting, so it seems highly likely that large carnivorous dinosaurs would have been very similarly inclined (perhaps even more so, if their metabolic rates were lower). As such, I would expect that big carnivores would have an extensive repertoire of sleeping, dozing, half-dozing and generally deeply relaxed postures, and these ought to be more noticeable on their skeletons than on the similarly bipedal skeletons of, say, Iguanadons or Hadrosaurs.
ReplyDeleteI would also expect that, as carnivores were for most of their lives potential prey themselves, they would be pretty nifty and rapid at going from asleep to up and running for their lives postures, which ought to be similarly noticeable (as opposed to the herbivores, which likely only rarely fell deeply asleep).
I have seen on several occasions many chikens in a resting pose very similar to the draw of Torvosaurus, specialy when they ares taking a dust bath... I agree that the challenge is to visualize the resting pose of the large quadrupeds...it could be an alternative a sitting-dog posture, like theresting pose of Giraffatitan from John Conway?
ReplyDeleteOne thing nobody quite approaches: many RELAXED modern dinosaurs lie down! I have been a falconer and pigeon fancier for over 40 years and all will lie on their sides to dry out after bathing etc. My present falcon, an Aplomado , will lie on her side with her head tucked under on a flat surface at night.
ReplyDeleteAnother unusual example of birds lying flat at rest are English Budgies, a behavior I found so odd I had to ask more experienced bird owners if the pictured birds were healthy.
ReplyDelete