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1.
Proc Natl Acad Sci U S A ; 120(19): e2219757120, 2023 05 09.
Article in English | MEDLINE | ID: mdl-37126698

ABSTRACT

The development of modern birds provides a window into the biology of their dinosaur ancestors. We investigated avian postnatal development and found that sterile inflammation drives formation of the pygostyle, a compound structure resulting from bone fusion in the tail. Inflammation is generally induced by compromised tissue integrity, but here is involved in normal bone development. Transcriptome profiling and immuno/histochemistry reveal a robust inflammatory response that resembles bone fracture healing. The data suggest the involvement of necroptosis and multiple immune cell types, notably heterophils (the avian equivalent of neutrophils). Additionally, nucleus pulposus structures, heretofore unknown in birds, are involved in disc remodeling. Anti-inflammatory corticosteroid treatment inhibited vertebral fusion, substantiating the crucial role of inflammation in the ankylosis process. This study shows that inflammation can drive developmental skeletogenesis, in this case leading to the formation of a flight-adapted tail structure on the evolutionary path to modern avians.


Subject(s)
Birds , Inflammation , Animals , Biological Evolution , Spine , Neutrophils
2.
Dev Dyn ; 250(9): 1229-1235, 2021 09.
Article in English | MEDLINE | ID: mdl-33548113

ABSTRACT

Amniote tails display a wide variety of features for adaptation to diverse environments. Each feature originates from its own distinct developmental processes, and these processes in turn attest to an organism's evolutionary history. In this perspective, we discuss the ontogeny of tails from embryonic to adult stages, amniote tail regeneration, the mechanisms underlying tail length and neural systems, and the benefits of studying tails across vertebrates, in mammals, birds, and non-avian reptiles.


Subject(s)
Reptiles , Vertebrates , Animals , Biological Evolution , Birds , Mammals
3.
J Histochem Cytochem ; 68(9): 607-620, 2020 09.
Article in English | MEDLINE | ID: mdl-32794420

ABSTRACT

Here, we describe an ethylenediaminetetraacetic acid (EDTA)-based bone demineralization procedure that uses cation-exchange resin and dialysis tubing. This method does not require solution changes or special equipment, is faster than EDTA alone, is cost-effective, and is environmentally friendly. Like other EDTA-based methods, this procedure yields superior tissue preservation than formic acid demineralization. Greater protein antigenicity using EDTA as opposed to formic acid has been described, but we also find significant improvements in carbohydrate-based histological staining. Histological staining using this method reveals cartilage layers that are not distinguishable with formic acid demineralization. Carbohydrate preservation is relevant to many applications of bone demineralization, including the assessment of osteoarthritis from bone biopsies and the use of demineralized bone powder for tissue culture and surgical implants. The improvements in time, expense, and tissue quality indicate this method is a practical and often superior alternative to formic acid demineralization.


Subject(s)
Bone Demineralization Technique , Bone and Bones/chemistry , Cation Exchange Resins/chemistry , Edetic Acid/chemistry , Animals , Chickens , Formates/chemistry , Time Factors , Tissue Preservation
4.
Sci Rep ; 10(1): 6303, 2020 04 14.
Article in English | MEDLINE | ID: mdl-32286419

ABSTRACT

The avian transition from long to short, distally fused tails during the Mesozoic ushered in the Pygostylian group, which includes modern birds. The avian tail embodies a bipartite anatomy, with the proximal separate caudal vertebrae region, and the distal pygostyle, formed by vertebral fusion. This study investigates developmental features of the two tail domains in different bird groups, and analyzes them in reference to evolutionary origins. We first defined the early developmental boundary between the two tail halves in the chicken, then followed major developmental structures from early embryo to post-hatching stages. Differences between regions were observed in sclerotome anterior/posterior polarity and peripheral nervous system development, and these were consistent in other neognathous birds. However, in the paleognathous emu, the neognathous pattern was not observed, such that spinal nerve development extends through the pygostyle region. Disparities between the neognaths and paleognaths studied were also reflected in the morphology of their pygostyles. The ancestral long-tailed spinal nerve configuration was hypothesized from brown anole and alligator, which unexpectedly more resembles the neognathous birds. This study shows that tail anatomy is not universal in avians, and suggests several possible scenarios regarding bird evolution, including an independent paleognathous long-tailed ancestor.


Subject(s)
Chickens/physiology , Genetic Speciation , Spinal Nerves/growth & development , Tail/innervation , Alligators and Crocodiles/anatomy & histology , Animals , Chick Embryo , Chickens/anatomy & histology , Embryonic Development/physiology , Fossils/anatomy & histology , Lizards/anatomy & histology , Phylogeny , Spinal Nerves/anatomy & histology , Tail/growth & development
5.
Sci Rep ; 8(1): 9014, 2018 06 13.
Article in English | MEDLINE | ID: mdl-29899503

ABSTRACT

The avian tail played a critical role in the evolutionary transition from long- to short-tailed birds, yet its ontogeny in extant birds has largely been ignored. This deficit has hampered efforts to effectively identify intermediate species during the Mesozoic transition to short tails. Here we show that fusion of distal vertebrae into the pygostyle structure does not occur in extant birds until near skeletal maturity, and mineralization of vertebral processes also occurs long after hatching. Evidence for post-hatching pygostyle formation is also demonstrated in two Cretaceous specimens, a juvenile enantiornithine and a subadult basal ornithuromorph. These findings call for reinterpretations of Zhongornis haoae, a Cretaceous bird hypothesized to be an intermediate in the long- to short-tailed bird transition, and of the recently discovered coelurosaur tail embedded in amber. Zhongornis, as a juvenile, may not yet have formed a pygostyle, and the amber-embedded tail specimen is reinterpreted as possibly avian. Analyses of relative pygostyle lengths in extant and Cretaceous birds suggests the number of vertebrae incorporated into the pygostyle has varied considerably, further complicating the interpretation of potential transitional species. In addition, this analysis of avian tail development reveals the generation and loss of intervertebral discs in the pygostyle, vertebral bodies derived from different kinds of cartilage, and alternative modes of caudal vertebral process morphogenesis in birds. These findings demonstrate that avian tail ontogeny is a crucial parameter specifically for the interpretation of Mesozoic specimens, and generally for insights into vertebrae formation.


Subject(s)
Birds/growth & development , Fossils , Morphogenesis , Tail/growth & development , Amber/chemistry , Animals , Biological Evolution , Birds/anatomy & histology , Chickens/anatomy & histology , Chickens/growth & development , Feathers/anatomy & histology , Feathers/growth & development , Spine/anatomy & histology , Spine/growth & development , Tail/anatomy & histology , Time Factors , X-Ray Microtomography
6.
Evodevo ; 5: 25, 2014.
Article in English | MEDLINE | ID: mdl-25621146

ABSTRACT

A particularly critical event in avian evolution was the transition from long- to short-tailed birds. Primitive bird tails underwent significant alteration, most notably reduction of the number of caudal vertebrae and fusion of the distal caudal vertebrae into an ossified pygostyle. These changes, among others, occurred over a very short evolutionary interval, which brings into focus the underlying mechanisms behind those changes. Despite the wealth of studies delving into avian evolution, virtually nothing is understood about the genetic and developmental events responsible for the emergence of short, fused tails. In this review, we summarize the current understanding of the signaling pathways and morphological events that contribute to tail extension and termination and examine how mutations affecting the genes that control these pathways might influence the evolution of the avian tail. To generate a list of candidate genes that may have been modulated in the transition to short-tailed birds, we analyzed a comprehensive set of mouse mutants. Interestingly, a prevalent pleiotropic effect of mutations that cause fused caudal vertebral bodies (as in the pygostyles of birds) is tail truncation. We identified 23 mutations in this class, and these were primarily restricted to genes involved in axial extension. At least half of the mutations that cause short, fused tails lie in the Notch/Wnt pathway of somite boundary formation or differentiation, leading to changes in somite number or size. Several of the mutations also cause additional bone fusions in the trunk skeleton, reminiscent of those observed in primitive and modern birds. All of our findings were correlated to the fossil record. An open question is whether the relatively sudden appearance of short-tailed birds in the fossil record could be accounted for, at least in part, by the pleiotropic effects generated by a relatively small number of mutational events.

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