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Kupronis, R.

Publications and source records attributed to Kupronis, R..

3 recordsLinked to original sources

A versatile cryopreservation method for peri-gastrulation squamate embryos optimised using the veiled chameleon (C. calyptratus)

Stem cell technologies have become a vital component of conservation efforts around the globe. Biobanks and pluripotent stem cell lines help to ensure species and their genetic diversity are preserved. These efforts have however, focussed mostly on mammals and birds, and the cryopreservation protocols for embryos and cells were developed decades ago laying the basis for artificial reproductive techniques for species conservation. With over 20% of non-avian reptile species facing extinction, it is imperative to establish protocols for reptiles to ensure species preservation and also to facilitate the establishment of new reptile model organisms to match the standard of mammals. Here, we have generated a cryopreservation method for preserving early gastrulating veiled chameleon embryos as a representative squamate species. To this end, we first developed a tissue culture method for maintaining cells extracted from peri-gastrulation chameleon embryos and then tested different cryopreservation methods altering the concentration of the penetrating cryoprotectant DMSO and assessing the effect of the addition of non-penetrating cryoprotectants Trehalose and Sucrose. We then optimised a protocol for whole embryo vitrification in 20% DMSO with added Trehalose or Sucrose that can easily be adapted for fieldwork. Taken together, our method not only provides a protocol for conservation efforts but also lays the basis for mechanistic studies of early squamate embryo development by enabling cryopreservation of whole embryos in a fieldwork setting, which facilitates their live transport back to a laboratory for functional experiments or molecular analyses.

developmental biology↗

Epiblast Lumenogenesis is not a mammalian-specific trait

Epiblast lumenogenesis, which leads to amniotic cavity formation, is a hallmark of mammalian embryogenesis, and required for crucial developmental processes such as anterior-posterior patterning and gastrulation. Based on avian model-organisms, the epiblast in reptiles is thought to form a monolayered flat disc that undergoes anterior-posterior patterning and gastrulation. Here, we report that the squamate, veiled chameleon (Chameleo calyptratus), exhibits epiblast lumenogenesis and amniogenesis prior to anterior-posterior patterning. Using SEM, immunofluorescence, and histology techniques, we demonstrate that chameleon epiblast lumenogenesis occurs via a purse-string-like mechanism involving the formation of supracellular actin cables in concentric rings around the epiblast followed by constriction that closes the epiblast lumen. Through expression analyses of Nodal1, Nodal2, Cerberus, Lefty, Brachyury, Wnt3A, and Bmp2, and immunostaining for Brachyury, we uncovered a Wnt3a- and Brachyury-positive ring at the edge of the epiblast concomitant with lumenogenesis, and preceding anterior-posterior patterning and gastrulation. Furthermore, we report anterior-posterior patterning in veiled chameleons occurs independently of Cerberus and Lefty. These processes that mediate epiblast lumenogenesis in chameleons, result in a morphology remarkably similar to human embryos, despite 300 million years of evolutionary separation. Taken together, we show that pre-gastrulation epiblast lumenogenesis is not mammalian-specific, but also occurs in some non-avian reptiles.

developmental biology↗

Chamaeleo calyptratus (veiled chameleon) chromosome-scale genome assembly and annotation provides insights into the evolution of reptiles and developmental mechanisms.

The family Chamaeleonidae comprises 228 species, boasting an extensive geographic spread and an array of evolutionary novelties and adaptations, but a paucity of genetic and molecular analyses. Veiled chameleon (Chamaeleo calyptratus) has emerged as a tractable research organism for the study of squamate early development and evolution. Here we report a chromosomal-level assembly and annotation of the veiled chameleon genome. We note a remarkable chromosomal conservation across squamates, but comparisons to more distant genomes reveal GC peaks correlating with ancestral chromosome fusion events. We subsequently identified the XX/XY region on chromosome 5, confirming environmental-independent sex determination in veiled chameleons. Furthermore, our analysis of the Hox gene family indicates that veiled chameleons possess the most complete set of 41 Hox genes, retained from an amniote ancestor. Lastly, the veiled chameleon genome has retained both ancestral paralogs of the Nodal gene, but is missing Dand5 and several other genes, recently associated with the loss of motile cilia during the establishment of left-right patterning. Thus, a complete veiled chameleon genome provides opportunities for novel insights into the evolution of reptilian genomes and the molecular mechanisms driving phenotypic variation and ecological adaptation.

genomics↗