Mostrando las entradas con la etiqueta zoología. Mostrar todas las entradas
Mostrando las entradas con la etiqueta zoología. Mostrar todas las entradas

martes, marzo 03, 2009

Homeosis de dedos de dinosaurios: Cuando la evolución predice las posibilidades del desarrollo

En el desarrollo del ala de las aves, es patente que los dedos se desarrollan a partir de primordios cartilaginosos que se convierten en los dedos 2,3 y 4 (indice, medio, y anular) en otros amniotos. Incluso se puede observar transitoriamente una pequeña condensación cartilaginosa anterior que sería un vestigio del dedo 1 (pulgar) 

Sin embargo, el registro fósil documenta con detalle la transición de dinosaurios terópodos a aves, y en este caso nos cuenta una historia completamente distinta, ya que en esta transición los dedos 4 y 5 (anular y meñique) se hicieron más pequeños y desaparecieron, quedando sólo las morfologías de los dedos 1,2 y 3. 

Para explicar esta peculiar situación, Wagner y Gauthier (1999) hipotetizaron que había ocurrido un desplazamiento homeótico en serie en la evolución del linaje de las aves, tal que los dedos 1,2, y 3 pasaron a desarrollarse de los primordios 2, 3, y 4. Esto implicaba asumir que al correrse la identidad de los digitos, el primordio que normalmente se desarrolla en el dedo 1 quedó "sin identidad" y que en esta posición "vacante" se desarrolla una condensación "truncada". Este evento podría coincididir con la pérdida del dedo 4, ocurrida hacia el origen de los dinosaurios tetanuros, "C" en la figura de abajo. A es Alligator, B es un dinosaurio temprano Coelophysis.


Tomado de Vargas y Wagner 2009

Hubo quienes rechazaron esta hipótesis ya que implicaba un cambio que no tenía ninguna "ventaja adaptativa"... 

Pese a desarrollarse a partir del primordio del dedo 2, el dedo anterior del ala tiene la morfología bifalangeal que es propia al dedo 1 de amniotos. Se ha demostrado además que en este dedo no hay transcriptos de los genes HoxD-11 y HoxD-12, tal como se observa sólo en el dedo 1 de la mano del ratón. También en crocodilia el dedo 1 carece de transcriptos de HoxD-11. Esto sugiere que el dedo anterior del ala  es un dedo 1.  Esta correspondencia de la transcripción de estos genes con el desarrollo de un dedo 1 bifalangeal se mantiene bajo una variedad de alteraciones moleculares-genéticas en ratón y pollo (amniotos máximamente distantes).

Ahora, un artículo en Evolution & Development ha demostrado que, por medio de la aplicación de cyclopamina en el ala del pollo, es posible producir de manera experimental un desplazamiento homeótico bastante similar al que se había inferido previamente para la evolución: dedos que normalmente se desarrollan de los primordios  2 y 3 ahora se desarrollan de los primordios 3 y 4. Esto es interesante porque antes sólo se habían obtenido de manera experimental transformaciones de dedos únicos, pero no así desplazamientos en serie de más de un dedo.  También es muy interesante que el primordio del dedo 2, al quedar vacante, se desarrolla como una condensacion vestigial, tal como se había inferido para la evolución de las aves. 
Fenotipo normal

Tratado con Cyclopamina, indicando condensación vestigial

 
Close-up de la condensación vestigial 


Referencia:
Vargas, AO y Wagner, GP. 2009. Frame-shifts of digit identity in bird evolution and Cyclopamine-treated wings. Evolution & Development 11(2): 163-9

miércoles, noviembre 26, 2008

Quick comments on Odontochelys

Odontochelys is the new basalmost triassic turtle, with a plesiomorphic ("primitive") presence of teeth (hence the name) and a most remarkable transitional aspect: It has a perfectly formed plastron yet no carapace. Odontochelys only presents the dorsal midline of the neural plates of the carapace, that are close to the neural spines but remain separate (which is not the case in more derived turtles).
Lets briefly recall what some evil saltationists (paleos and evo-devo's) have said about this. I remember Bob Bakker's book "The dinosaur heresies" (1986). There, he mentions the fact that in turtles the pectoral girdle is actually under the ribs, and points out that this qualitative aspect is hard to imagine to have occurred in more than a single step.
What can development tell us of all this? First, the plastron is derived from the neural crest, unlike the carapace, which is derived from a mixture of dermal bone and ribs. Second, the plastron ossifies before the carapace. Odontochelys reveals that this embryological and temporal separation also reflects a phylogenetic sequence. Scott Gilbert (yes, the book guy) points out that in turtles, the ribs have shifted dorsally, to developing within the dermis, a unique trait within amniotes. If an embryonic rib is experimentally inserted in the dermis of a chicken embryo, the result is ossification of the dermis surrounding the rib. Because of this paracrine effect on the dermis, Gilbert hypothesized that a single-step shift of the ribs to the dermis could have induced the origin of a well-formed carapace.

Some regard this hypothesis as incompatible with the hypothesis that an exoskeleton of separate dermal bones preceded the origin of the carapace. This incompatibility in my opinion is not quite so; dermal bones could have existed or not previous to the shift of the ribs closer to the dermis; the shift could have led to a single carapace. Critics to Gilbert's hypothesis have pointed out that in the carapace of the early (very fragmentary) triassic turtle Chinlechelys, ribs are not "immersed" in the carapace but run immediately below the surface of the dermal plates. However it is possible that this was sufficient for the paracrine effect leading to a single carapace "shell". Unfortunately we cannot know if the pectoral girdle was already under the ribs in Chinlechelys.

Even admitting the possibility of previous ostederms, Odontochelys is certainly something unexpected from the more "gradualist" perspective, which was "hoping" early stages of dermal armor would go back to remote Pareiasaur-like ancestors (see figure below). The full plastron of Odontochelys is pretty derived, yet this species has no "coat" of osteoderms.


From Joyce et al 2007. Odontochelys indicates that "coats" of osteoderms as in a) and b) did not precede the origin of the plastron
Odontochelys is consistent with the notion that a shift in the position of the ribs to greater proximity to the dermis could have induced a"radical" extension of dermal bone, from mere dorsal midline of neural plates, to a full carapace; as a third step, superficially attached ribs and dermal bones, became fully integrated with the dermal bone conforming the "true" carapace.

References:

Li C, Wu X-C, Rieppel O, Wang L-T, Zhao L-J (2008) An ancestral turtle from the Late Triassic of southwestern China. Nature 456: 497-501

Joyce WG, SG Lucas, TM Scheyer, AB Heckert, AP Hunt (2008). A thin-shelled reptile from the Late Triassic of North America and the origin of the turtle shell Proceedings of the Royal Society B DOI: 10.1098/rspb.2008.1196

Cebra-Thomas JA, Betters E, Yin M, Plafkin C, McDow K, Gilbert SF. 2007 Evidence that a late-emerging population of trunk neural crest cells forms the plastron bones in the turtle Trachemys scripta. Evol Dev. 9(3):267-77.

Cebra-Thomas J, Tan F, Sistla S, Estes E, Bender G, Kim C, Riccio P, Gilbert SF. 2005. How the turtle forms its shell: a paracrine hypothesis of carapace formation. J Exp Zoolog B Mol Dev Evol. Nov 15;304(6):558-69.

lunes, octubre 06, 2008

Homeosis en dedos de dinosaurios


Estimados, los que me conocen ya saben que el asunto de las homeosis me gusta, y por varias razones (no sólo por las razones freaky-estéticas de ver una mosca con patas en la cabeza). Otras buenas razones son: 1) que demuestran la posibilidad de que distintas partes en el cuerpo de un embrión pueden cursar la misma vía epigenética 2) que muchas son eventos de transformación cualitativa, un sólo evento que no encaja con la noción de "acumulación selectiva" (véase esto y esto) 3) que muchas veces no tienen absolutamente ninguna consecuencia adaptativa que no sea rebuscada y poco creíble 4) que son demostrablemente ubicuas en la evolución cuando se hacen comparaciones filogenéticas (véase por ejemplo esto)

En este sentido durante los últimos tres años lejos de chile (felizmente ya estoy de vuelta) me he dedicado al tema de la inferencia de un "desplazamiento homeótico" que habria ocurrido en la evolución del ala de las aves, tal que los dedos 1,2 y 3 comenzaron a desarrollarse a partir de las condensaciones cartilaginosas que en otros amniotos se convierten en los dedos 2,3 y 4; este evento sólo puede concebirse como algo de un sólo paso, y su valor adaptativo está lejos de ser comprensible. Cabe recordar que existen publicadas opiniones adaptacionistas que pese a la contundende evidencia de la filogenia y de la embriología, morfología y expresión genética comparadas, han puesto en duda la ocurrencia de este evento sólo porque no tendría valor adapataivo, o peor aún, se ha dicho que este tipo de cambio requeriría mutaciones con efectos pleiotrópicos carcameativos que deteriorarían seriamente el fitness.

Bueno, pues a la pamplina panadaptacionista hay que responder con comparaciones filogenéticas bien hechas, nada más. Donde manda cladograma, no manda la especulación adaptacionista (tendencia que se impone, duélale donde les duela a los ecólogos evolutivos más "clásicos")

Así es como con gusto les presento mi más visible publicación hasta el momento, gratis para la descarga de Ud, familia y amigos, en PLoS ONE (journal de libre acceso que rápidamente se ha perfilado como el "nature de los pobres")

Sin más, les dejo el link para que los más curiosillos se lean este simpático ( y no muy largo!) artículo.
Saludos,
Alexander Vargas (aka Sander)

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lunes, septiembre 22, 2008

Más sobre filogenia animal: el mundo de las placas

Ya reclamábamos en este blog por la falta de los legendarios Placozoa en los "grandes muestreos gran" de filogenómica animal. Los placozoa, han sido tildados de animal ancestral mientras que otros han insitido en que se trata de una simplificación secundaria. A mí me ha parecido siempre que sí, que es un linaje antiguo; los tipos celulares que presenta son más o menos típicos de phyla basales de animales (incluso el aparato de actina-miosina de células contráctiles de placozoa pre-existe en "protozoa") Las dos capas celulares de placozoa, ventral y dorsal, son notablemente diferentes. La condición de dos capas diferenciadas con un espacio al medio la vemos además en larvas de esponjas y tampoco es muy diferente a lo que se ve en la larva plánula de cnidarios. Otto Bütshcli en el sigo XIX, probablemente usando la más pura doctrina recapitulacionista, había adivinado (cuevazo más o cuevazo menos) una "plakula" ancestral y su invaginación en una gastrea antes de que se descubriera a los placozoa y su particular forma de invaginarse.
Podemos decir que los placozoa son una simplificación a partir de la larva de un animal más complejo, una esponja o cnidarios; o podríamos decir que se trata del metazoo más primordial conocido, cuyo perfil persiste en el embrión temprano de la ontogenia de los demás grupos (incluso blástula y gástrula temprana de bilateria).

En mi opinión las dos ideas contienen semilla de verdad. Consideremos la propuesta (aún vigente) el origen coanozooide de los primeros metazoa, que va de la mano con la idea que los porifera serían parafiléticos, es decir, descendemos de las esponjas (Oh dioses del NSF: secuenciad esponajas hexactinélidas, YA!!!). Si todo eso está en lo correcto, entre un "coanozoa" colonial filtrador y esponjas, quizás no hay mucho lugar para una etapa placozoaria.Donde sí parece haber más espacio, es en la transición de esponjas a epitheliozoa. Los adultos son muy diferentes, pero las larvas son parecidas; pueden descender los unos de los otros por vía de un estado paedomórfico en que la larva es el adulto.... exactamente, como placozoa. Y ESTE ancestro placozooide, ahora sí que sí, persistiría al más puro gusto de Haeckel en las plánulas y blástulas de la ontogenia de los cnidarios y bilateria.

Y cómo anda todo esto con las grandiosas nuevas filogenias moleculares? Pues no tan mal, sin bien los infaltables agujeros en el muestreo taxoómico aún dejan las cosas medio inestables. Tenemos este trabajo reciente, altamente publicitado, basado en genomas completos:







Aunque placozoa sale como grupo hermano de epitheliozoa, todavía me aguantaré de saltar en una pata, debido al defectuoso muestreo taxonómico (La ínica esponja muestreada es una demospongita, Amphimedon. Monosiga es un coanoflagelado, Lottia es un grastrópodo. Nótese que con este muestreo no hay forma de descartar que los placozoa sean la larva paedomoórfica de una esponja. Esa hipótesis sigue vigente

Esta filogenia reciente de los coanozoa en cambio tiene un rico muestreo taxonómico y viene a confirmar con bastante seguridad que los coanoflagelados son el grupo hermano de los metazoa.




















Referencias:

Srivastava, M., Begovic, E., Chapman, J., Putnam, N.H., Hellsten, U., Kawashima, T., Kuo, A., Mitros, T., Salamov, A., Carpenter, M.L., Signorovitch, A.Y., Moreno, M.A., Kamm, K., Grimwood, J., Schmutz, J., Shapiro, H., Grigoriev, I.V., Buss, L.W., Schierwater, B., Dellaporta, S.L., Rokhsar, D.S. (2008) The Trichoplax genome and the nature of placozoans. Nature 454:955-960. [doi:10.1038/nature07191]

Shalchian-Tabrizi K, Minge MA, Espelund M, Orr R, Ruden T, et al. (2008) Multigene Phylogeny of Choanozoa and the Origin of Animals. PLoS ONE 3(5): e2098. doi:10.1371/journal.pone.0002098

P.D. Hagamos un nucleo decenio de carne y hueso!! Sanders en Chile Lunes 29 de Septiembre, lo trae mote con huesillos light

domingo, julio 27, 2008

Phyloepigenetics IV: Lagartija y nemátodo

Herrel et al 2008. Rapid large-scale evolutionary divergence in morphology and performance associated with exploitation of a different dietary resource. Proc Natl Acad Sci U S A. Mar 25;105(12):4792-5.

Excerpts!

"In 1971 five adult pairs of this species were moved from the small islet of Pod Kopiste (0.09 km2) to the nearby Pod Mrcaru (0.03 km2) by Nevo and coworkers (...). Although the islet of Pod Mrcaru was originally inhabited by another lacertid lizard species (Podarcis melisellensis), repeated visits (twice yearly over the past three years, beginning in 2004) show that this species has become extinct on Pod Mrcaru. Genetic mitochondrial DNA analyses indicate that the lizards currently on Pod Mrcaru are indeed P. sicula and are genetically indistinguishable from lizards from the source population"


"Differences in head size and shape also translate into significant dif ferences in bite force bet ween populations. Our data show that P. sicula lizards consume more plant material on Pod Mrcaru compared with the ancestral population on Pod Kopiste"


"This shift to a predominantly plant-based diet has resulted in the dramatic evolution of intestinal morpholog y. Morphological analysis of preserved specimens shows the presence of cecal valves (Fig. 4) in all individuals, including a hatchling (26.4-mm snout-vent length, umbilical scar present) and a very young juvenile (33.11-mm snout-vent length) examined from Pod Mrcaru."


"The fact that 1% of all currently known species of squamates have cecal valves (13, 14) illustrates the unusual nature of these structures in this population"

"Cecal valves slow down food passage and provide for fermenting chambers, allowing commensal microorganisms to convert cellulose to volatile fatt y acids (15, 16). Indeed, in the lizards f rom Pod Mrcaru, nematodes were common in the hindgut but absent from individuals f rom PodKopiste"

"Because of the larger food base available and the increase in the predict abilit y of the food source, lizard densities on Pod Mrcaru are much greater (..) lizards on Pod Mrcaru do no longer appear to defend territories. Moreover, changes in foraging style (browsing versus active pursuit of mobile prey) and social structure may also have resulted in the dramatic changes in limb proportions and maximal sprint speed previously documented for this population"

"Although the presence of cecal valves and large heads in hatchlings and juveniles suggests a genetic basis for these differences, further studies investigating the potential role of phenotypic plasticity and/or maternal effects in the divergence bet ween populations are needed"

Herrell no discute mucho qué tan relevante puede ser la simbiosis con un nemátodo. Veamos un ejemplo de anfibios


Effects of the nematode Gyrinicola batrachiensis on development, gut morphology, and fermentation in bullfrog tadpoles (Rana catesbeiana): a novel mutualism


Gregory S. Pryor *, Karen A. Bjorndal J. Exp. Zool. 303A:704-712, 2005.


Abstract

We describe a novel mutualism between bullfrog tadpoles (Rana catesbeiana) and a tadpole-specific gastrointestinal nematode (Gyrinicola batrachiensis). Groups of tadpoles were inoculated with viable or nonviable nematode eggs, and development, morphology, and gut fermentation activity were compared between nematode-infected and uninfected tadpoles. Nematode infection accelerated tadpole development; the mean time to metamorphosis was 16 d shorter and the range of times to metamorphosis was narrower in nematode-infected tadpoles than in uninfected tadpoles. At metamorphosis, infected and uninfected bullfrogs did not differ in body size or condition. Colon width, wet mass of colon contents, and concentrations of most fermentation byproducts (short-chain fatty acids: SCFAs) in the hindgut were greater in infected tadpoles. Furthermore, in vitro fermentation yields for all SCFAs combined were over twice as high in infected tadpoles than in uninfected tadpoles. One explanation for accelerated development in infected tadpoles is the altered hindgut fermentation associated with the nematodes. Energetic contributions of fermentation were estimated to be 20% and 9% of the total daily energy requirement for infected and uninfected tadpoles, respectively. Infection by G. batrachiensis nematodes potentially confers major ecological and evolutionary advantages to R. catesbeiana tadpoles. The mutualism between these species broadens our understanding of the taxonomic diversity and physiological contributions of fermentative gut symbionts and suggests that nematodes inhabiting the gut regions of other ectothermic herbivores might have beneficial effects in those hosts.


Si bien algunos nemátodos son parásitos en reptiles, otros no lo son:


Oecologia. 2006 Dec;150(3):355-61. Epub 2006

O'Grady SP, Dearing MD. Isotopic insight into host-endosymbiont relationships in Liolaemid lizards

Nitrogen isotopes have been widely used to investigate trophic levels in ecological systems. Isotopic enrichment of 2-5 per thousand occurs with trophic level increases in food webs. Host-parasite relationships deviate from traditional food webs in that parasites are minimally enriched relative to their hosts. Although this host-parasite enrichment pattern has been shown in multiple systems, few studies have used isotopic relationships to examine other potential symbioses. We examined the relationship between two gut-nematodes and their lizard hosts. One species, Physaloptera retusa, is a documented parasite in the stomach, whereas the relationship of the other species, Parapharyngodon riojensis (pinworms), to the host is putatively commensalistic or mutualistic. Based on the established trophic enrichments, we predicted that, relative to host tissue, parasitic nematodes would be minimally enriched (0-1 per thousand), whereas pinworms, either as commensals or mutualists, would be significantly enriched by 2-5 per thousand. We measured the (15)N values of food, digesta, gut tissue, and nematodes of eight lizard species in the family Liolaemidae. Parasitic worms were enriched 1+/-0.2 per thousand relative to host tissue, while the average enrichment value for pinworms relative to gut tissue was 6.7+/-0.2 per thousand. The results support previous findings that isotopic fractionation in a host-parasite system is lower than traditional food webs. Additionally, the larger enrichment of pinworms relative to known parasites suggests that they are not parasitic and may be several trophic levels beyond the host.



Correlating diet and digestive tract specialization: Examples from the lizard family Liolaemidae

Shannon P. O’Gradya, Mariana Morandob, Luciano Avilab and M. Denise Dearinga
Zoology 2005, 108 : 201-210

Abstract

A range of digestive tract specializations were compared among dietary categories in the family Liolaemidae to test the hypothesis that herbivores require greater gut complexity to process plant matter. Additionally, the hypothesis that herbivory favors the evolution of larger body size was tested. Lastly, the association between diet and hindgut nematodes was explored. Herbivorous liolaemids were larger relative to omnivorous and insectivorous congeners and consequently had larger guts. In addition, small intestine length of herbivorous liolaemids was disproportionately longer than that of congeners. Significant interaction effects between diet and body size among organ dimensions indicate that increases in organ size occur to a greater extent in herbivores than other diet categories. For species with plant matter in their guts, there was a significant positive correlation between the percentage of plant matter consumed and small intestine length. Herbivorous liolaemids examined in this study lacked the gross morphological specializations (cecum and colonic valves) found in herbivores in the families Iguanidae and Agamidae. A significantly greater percentage of herbivorous species had nematodes in their gut. Of the species with nematodes, over 95% of herbivores had nematodes only in the hindgut. Prevalence of nematodes in the hindgut of herbivores was 2× that of omnivores and 4× that of insectivores.


Los dichosos nemátodos se encuentran en todas las especies de reptil que tienen válvulas cecales


Preguntas:


Todo este cambio, en sólo 34 años.... es acaso una acumulación por selección direccional de varios genes? Grano fino, o grano grueso?

Cuánto de este cambios fenotípico drástico se debe más bien al efecto inmediato de diferentes condiciones epigenéticas, como la mentada asociación con el nemátodo?

sábado, junio 21, 2008

Is everything OK with Olfactores? A call to properly assess morphological implications

When molecular phylogenies do not coincide with the morphological phylogenies, this is a serious problem. Experience tells us that its not a matter of assuming the morphological data is equivocal; specially if it is completely uncontroversial within (morphological) phylogenetic systematics. Many times the conflict thereafter disappears, specially upon better taxon sampling of molecular data (Note: increasing the number of adequate taxa seems to be of much greater consequence than increasing the number of genes). We all remember that "sharks are teleosts" thing. This is why it is good to know the exact "morphological cost", or extra morphological transformations, that are implied by molecular hypotheses that openly conflict with morphological phylogenies. If the conflict shows no resolution by further studies, it is not a matter of assuming the molecular data must be "the correct one"; or at least, if you are going to make that assumption, KNOW the implications for the evolution of morphology!

Is something smelling fishy about the phylogeny of the chordates? Or is everything OK? At record speed, the evo-devo community has accepted the results of the latest molecular phylogenies, that vertebrates are closer to urochordates than to cephalochordates. Olfactores = Urochordates + Vertebrates. This term was born in the context of a marginal theory of Jefferies (1981) within his interpretation that the fossil Homalozoa ("calcichordates") are the ancestors of chordates (other paleontologists consider Homalozoa to be basal echinoderms).

The recent publication of the entire genome of Amphioxus has further repeated this result for the comparison of an astounding 1090 genes in a phylogenetic analysis (Putnam et al 2008) that included important groups that are frequently left out, such as an acorn-worm, and a larvacean urochordate.
Given that the Olfactores are becoming accepted as some "new truth", it is interesting to review why never before had this notion attained popularity, the most common assumption being that cephalochordates and vertebrates were closest, conforming a clade Euchordata (also called "Myomerozoa" for the presence of somites). Actually, just a glance at amphioxus, a very fish-looking creature, should make us immediately suspect that the olfactores is probably not consistent with the most parsimonious morphological history; that is, that we may have the proverbial case of a clash of molecular vs morphological phylogenies.

Everybody agrees that urochordates have secondarily lost traits. This is obvious when the traits absent in urochordates are present even in hemichordates , such as coelomic cavities, and several (not just one) pairs of branchial openings. However, the list of things lost in urochordates increases substantially if we consider Olfactores to be real: for instance, the loss of somites, and several vertebrate-like gene expression patterns in the developing neural tube.

In this sense, it is important to point out that the exact morphological cost of the olfactores, in terms of assuming extra steps beyond parsimony, has not being adequately discussed or investigated yet. An important conflict with morphology and gene expression is looming, but people are failing to see it.

For instance, a recent comment (Swalla and Smith 2006) says "an extensive cladistic reanalysis of morphological data found strong support for Olfactores ( Ruppert 2005)". However, the cited work of Ruppert is not a cladistic analysis at all, but a "homology analysis", the mere mapping of proposed events assuming that Olfactores is real, for a limited set of traits. Further, the morphological cost of the olfactores is hardly rescued by Ruppert 2005, which cites only a few of the most notorious losses we must assume occurred in the urochordates (for instance, Ruppert fails to mention any of the similarities of gene expression between the neural tube of cephalochordates and vertebrates)

In good faith, we must assume that Swalla and Smith were thinking about another morphological analysis that is cited as support for the olfactores, namely the cladistic analysis of all metazoa made by Zrzávy et al (1998). While indeed Zrzávy et al. is an extensive analysis (238 traits), it does not specifically address the question of the phylogeny of chordates , but of metazoa in general. So actually only a minority of these traits are bound to be relevant to the question of chordate phylogeny. Further, despite the non-traditional placement of the urochordates retrieved by this analysis, Zrzávy et al did not make any mention of this result in their discussion, concentrating on other aspects of animal phylogeny. No list of "Olfactorian" synapomorphies was discussed. The analysis by Zrzávy has been criticized at length by Jenner 2001 on various grounds, such as the assumptions made in the definition and polarization of traits.

With no explicit cladistic analysis of chordates for an alternative phylogeny , the review by Rowe (2004) of chordate phylogeny does not even mention the work by Zrzávy or the possibility of the olfactores. Indeed, the best references for a cladistic analysis specifically focused on the chordates are earlier works (Maisey 1986, and Schaeffer 1987), which support the euchordata, and are largely accepted within the community of phylogenetic systematics. However, these studies will fail to collect numerous newly described traits shared by cephalochordates and vertebrates, from gene expression patterns to fine structure of the nervous system. So, in fact, a new updated cladistic phylogenetic analysis of the cephalochordates is needed to establish the precise consequences of the Olfactoria for the morphological history of the chordates.

It is certainly possible that this new analysis may show the history implied by olfactores to be too absurd, implying too many reversals or convergences. If this is the case, it is not just a matter of going with the molecular phylogeny over the morphological; rather, the possibility of an artifact in the molecular studies must be taken into account (yes, even with 1090 genes! )


This is the tree of the 1090 genes (Putnam et al 2008). Some observations:

1) As usual, the longest branches of the chordates are the Urochordates. Also, notice that this effect is not mitigated by the large amount of genes; that is, abnormally high substitution rates is a genome-wide phenomenon. Is it possible that high substitution rates may distort the phylogenetic signal of entire genomes? Also, notice the low 76.4 % bootstrap value support for the monophyly of chordates. Traditionally, molecular evidence has had some problems retrieving this node, which is, from a morphological perspective, a very straight-forward conclusion

2) Hagfish, morphologically the most basal vertebrates , were not included in this analysis. In fact, the position of hagfishes haunts this entire issue, since it is a case in which a clear conflict of molecules vs morphology still lives on

3) Despite the general trend of nuclear genes to support the olfactoria, the comparison of entire mitochondrial genomes supports the classic hypothesis of euchordata (Bourlat et al. 2006). Further, this is also the case when discussing the relationships of Hagfishes, supporting them as basalmost vertebrates (Yu et al. 2008). Why this diference ? Is it possible that the mitochondrial genomes have been spared from some source of artifact affecting the phylogenetic signal of nuclear genes?

References.

Bourlat et al 2006 Nature 444:85-8

Jefferies 1981 Zool. J. of Linnean Soc. 73, 351-396

Jenner 2001 Syst. Biol. 50(5):730-742

Putnam et al 2008 Nature 453: 1064-1070 doi:10.1038/nature06967

Rowe 2004 In: Cracraft & Donoghue, Ed. Assembling the tree of life. Oxford. pp 384-409

Ruppert 2005 Can. J. Zool. 83: 8–23

Swalla & Smith 2006 Phil. Trans. R. Soc. B doi:10.1098/rstb.2007.2246

Yu et al. 2008 J. Genet. Genomics 35: 285-290

Zrzávy et al. 1998 Cladistics 14, 249 -285

miércoles, enero 16, 2008

Epitoquía del alma mía (segunda parte -la venganza)


Lo prometido es deuda gracias a Mr. Sanders, acá les puedo dejar los dibujitos para que se fijen en la gran modificación de las sedas natatorias en el epitoco, Además puse el detalle del comportamiento del epitoco macho en donde le "realiza una danza" a la luz de la luna antes de ambos liberar los gametos.

Roberto