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Noonan, J. P.

Publications and source records attributed to Noonan, J. P..

3 recordsLinked to original sources

Evidence against tetrapod-wide digit identities and for a limited frame shift in bird wings

In crown group tetrapods, individual digits are homologized in relation to a pentadactyl ground plan. However, testing hypotheses of digit homology is challenging because it is unclear whether digits develop with distinct and conserved gene regulatory states. Here we show dramatic evolutionary dynamism in the gene expression profiles of digits, challenging the notion that five digit identities are conserved across amniotes. Transcriptomics of developing limbs shows diversity in the patterns of genetic differentiation of digits, although the anterior-most digit of the pentadactyl limb has a unique, conserved expression profile. Further, we identify a core set of transcription factors that are differentially expressed among the digits of amniote limbs; their spatial expression domains, however, vary between species. In light of these results, we reevaluate the frame shift hypothesis of avian wing evolution and conclude that only the identity of the anterior-most digit has shifted position, suggesting a 1,3,4 digit identity in the bird wing.

evolutionary biology

Disrupting Pitx1 Regulatory Topology Results In Overtly Normal Limb Development

Gene expression patterns during development are orchestrated in part by thousands of distant-acting transcriptional enhancers. However, identifying enhancers that are essential for expression of their target genes has proven challenging. Genetic perturbation of individual enhancers in some cases results in profound molecular and developmental phenotypes, but in mild or no phenotypes in others. Topological maps of long-range regulatory interactions may provide the means to identify enhancers critical for developmental gene expression. Here, we leveraged chromatin topology to characterize and disrupt the major promoter-enhancer interaction for Pitx1, which is essential for hindlimb development. We found that Pitx1 primarily interacts with a single distal enhancer in the hindlimb. Using genome editing, we deleted this enhancer in the mouse. Although loss of the enhancer completely disrupts the predominant topological interaction in the Pitx1 locus, Pitx1 expression in the hindlimb is only reduced by ~14%, with no apparent changes in spatial distribution or evidence of regulatory compensation. Pitx1 enhancer null mice did not exhibit any of the characteristic morphological defects of the Pitx1-/- mutant. Our results indicate that Pitx1 expression is robust to the loss of its primary enhancer interaction, suggesting disruptions of regulatory topology at essential developmental genes may have mild phenotypic effects.

genetics

High Resolution Epigenomic Atlas of Early Human Craniofacial Development

Defects in embryonic patterning resulting in craniofacial abnormalities are common birth defects affecting up to 1 in 500 live births worldwide, and are mostly non-syndromic. The regulatory programs that build and shape the craniofacial complex are thought to be controlled by information encoded in the genome between genes and within intronic sequences. Early stages of human craniofacial development have not been interrogated with modern functional genomics techniques, preventing systematic analysis of genetic associations with craniofacial-specific regulatory sequences. Here we describe a comprehensive resource of craniofacial epigenomic annotations and systematic, integrative analysis with a variety of human tissues and cell types. We identified thousands of novel craniofacial enhancers and provide easily accessible genome annotations for craniofacial researchers and clinicians. We demonstrate the utility of our data to find likely causal variants for craniofacial abnormalities and identify a large enhancer cluster that interacts with HOXA genes during craniofacial development.

genomics